REVIEW 2 major objections 5 minor 131 references
Radio Observations as a Probe of Cosmic Web Magnetism
T0 review · 2 major / 5 minor · reviewed 2026-08-07 · deepseek-v4-flash
Pith's one-line read Low-frequency radio observations of cosmic filaments favour a primordial origin for cosmic magnetism, and place the average filament field at 10–60 nG at z=0.
desk verdict Useful update with a genuinely new joint test, but the 43±7 nG headline is soft because it rests on an assumed γ=5 astrophysical shape that the LOFAR data do not constrain. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The machinery is the residual rotation measure (RRM) that remains after subtracting the Milky Way contribution, treated as a redshift-dependent statistic: the observed rms is fit to $\langle RRM^2\rangle^{1/2}=A_{rrm}/(1+z)^\gamma+\langle RRM_f^2\rangle^{1/2}$, where the astrophysical term is a power law and the filament term is computed by integrating $0.812\, n_e B_\parallel/(1+z)^2$ along simulated lines of sight. The filament field itself is parametrized as $B_f=B_{f,0}(1+z)^\alpha$, with electron densities drawn from the cosmological MHD simulations. The second, independent probe is the stacked synchrotron surface brightness of massive simulated filaments at about 118 MHz, computed with the shock-acceleration formula (Equation (1)), which responds approximately as $B^2$ and therefore breaks degeneracies that the RM alone leaves open. The third probe, the median-absolute-deviation radial profile of RRM around group-mass halos, is simulated and compared but is not yet conclusive.
What would settle it
Measure the redshift dependence of the astrophysical RM contribution directly at gigahertz frequencies, where this component dominates over the cosmic web. If an independent survey finds the astrophysical rms to be roughly proportional to $(1+z)^{-1}$ instead of $(1+z)^{-5}$, the best-fit filament field at $z=0$ shifts from $43\pm7$ nG to roughly $11$–$14$ nG, and the RRM-vs-redshift argument for a dominant primordial seed loses its quantitative support.
Extended reading notes
Core claim
The paper's central claim is that the low-frequency radio data already select a magnetogenesis scenario: a dominant primordial field, specifically a stochastic seed with spectral slope $n_B=-1$ and $\langle B\rangle_{\rm 1Mpc}=0.37$ nG combined with the most realistic astrophysical feedback model, while a purely astrophysical origin is disfavoured. In this combined model the average proper magnetic field in cosmic filaments is $B_{f,0}=43\pm7$ nG at $z=0$ with a redshift slope $\alpha=0.8\pm0.5$, and the astrophysical term in the rotation-measure budget declines quickly with redshift. The paper also claims a scenario-independent range of $10$–$60$ nG for the filament field at $z=0$, and argues that the same radio observables can discriminate among primordial models more sensitively than current CMB analyses for inflationary-like spectra. The third probe, the rotation-measure radial profile around group-mass halos, is still inconclusive because the simulations fall short of the observed amplitude by roughly a factor of two.
Load-bearing premise
The load-bearing premise is an unmeasured assumption about the redshift evolution of the astrophysical part of the rotation-measure signal: the paper prefers the steep form $A_{rrm}/(1+z)^5$ because it matches the observed $21\%$ astrophysical fraction, but if the true astrophysical component evolves more mildly the inferred filament field drops from roughly $43$ nG to about $11$–$14$ nG and the preferred combined model is no longer forced by the data.
Editorial extensions
If this is right
- If the preferred model is correct, the bulk of the magnetic field energy in cosmic filaments at $z \lesssim 3$ is a relic of an early-universe seed, and galaxy feedback contributes at most about a quarter of the observed low-frequency rotation-measure scatter.
- Low-frequency radio surveys would then already constrain inflationary-like primordial field spectra roughly five times more tightly, in amplitude terms, than present CMB analyses.
- The causal ($n_B=2$) phase-transition scenario would be excluded by the joint RM-plus-synchrotron test unless its seed amplitude exceeds CMB limits by about an order of magnitude, an exclusion that sharper CMB constraints can confirm.
- The best-matching combined model predicts a rapidly decreasing astrophysical RM component, so high-redshift observations ($z>1$) should show almost purely primordial filament signal; this is a direct prediction of the model.
- Pinpointing the redshift shape of the astrophysical RM component with gigahertz-frequency surveys is the single most informative next observation, because the current factor-of-four spread between the two shapes dominates the uncertainty in the filament field.
Reading between the lines
- Beyond the paper: if the steep $\gamma=5$ astrophysical shape is right, astrophysical magnetization of the intergalactic medium is essentially a low-redshift phenomenon, which would imply that the magnetization of cosmic voids probed by gamma-ray pair-echo limits is also almost entirely primordial; the paper does not pursue this connection.
- Beyond the paper: the paper's exclusion of the causal $n_B=2$ model is weakened by finite numerical resolution at about $41.5$ kpc cells; a higher-resolution rerun could determine whether artificially damped small-scale field energy accounts for the required factor of $\sim100$–$200$ in magnetic energy, which would be a cleaner test than rescaling seed amplitudes.
- Beyond the paper: the persistent factor-of-two shortfall near galaxy groups suggests the simulated feedback bubbles are too sparse or too weak, so observing the same group RM profiles with a full treatment of depolarization at low frequency could independently calibrate the astrophysical contribution and might shift the primordial/astrophysical balance at low redshift.
- Beyond the paper: a direct cross-check would be to apply the same joint test to fast-radio-burst rotation and dispersion measures, whose simultaneous measurement maps $n_e B_\parallel$ along individual lines of sight through filaments rather than statistically.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper compares three radio observables of cosmic filaments—LOFAR RRM rms versus redshift, stacked synchrotron emission, and POSSUM MAD RRM radial profiles around galaxy groups—with predictions from cosmological MHD simulations of astrophysical and primordial magnetic seeding scenarios. Using an analytical fit with a power-law filament field and an ad hoc astrophysical RM component, the authors find that a combined primordial (nB = -1) plus astrophysical model best matches the first two probes, yielding B_f,0 = 43 ± 7 nG at z = 0 for a rapidly decreasing astrophysical component (γ = 5), while a solely astrophysical model fails at high redshift. The third probe is inconclusive, and the paper recommends independent measurement of the astrophysical RM shape.
Significance. If the main inference holds, radio observations of the cosmic web would provide competitive constraints on primordial magnetic fields, potentially more sensitive than CMB studies for inflationary-like spectra, and would support a dominant primordial component in filament magnetization. The paper's strengths include the use of recent high-quality LOFAR data, an updated astrophysical simulation (B4) calibrated to multiple galaxy observables, careful treatment of line-of-sight selection and high-density flagging, and an honest discussion of the third probe's inconclusiveness. The data availability statement provides access to the simulated LOS data. However, the quantitative headline and the model-selection step are conditional on an unconstrained shape of the astrophysical RM component and on a seed normalization calibrated to the same LOFAR data, so the specific 43 ± 7 nG claim is currently not as robust as the abstract suggests.
major comments (2)
- [§4.1, Eq. (9), Tables 2–3; §6] The headline result B_f,0 = 43 ± 7 nG (abstract; §6) is obtained only for γ = 5, one of two arbitrarily chosen shapes for the astrophysical component. The data do not constrain γ: with γ = 1, the same fits give B_f,0 = 11–14 ± 4 nG (Table 2). The choice of γ = 5 is justified partly by matching the observed 21 ± 4% astrophysical fraction, but that integrated fraction does not fix the redshift dependence of the astrophysical term; since both terms in Eq. (9) are power laws in (1+z) added in quadrature, the RRM(z) data alone are degenerate in γ. Thus the abstract's 'best-matching combined model' and the 'rapidly decreasing astrophysical component' are not robust. The paper's own §6 calls independent knowledge of the astrophysical RM shape 'much-needed,' which correctly identifies the load-bearing uncertainty.
- [§3 (seed normalization) and §4.1/Figs. 4–5] The nB = -1 seed amplitude, <B>_1Mpc = 0.37 nG, is set from comparison with LOFAR RRMs (Section 3, citing Ref. [18]), not from CMB constraints. The same LOFAR RRM-z data are then used in Section 4.1 to fit Eq. (9) and in Figures 4–5 to identify this model as the unique match. This is a circular validation: the model is normalized to the very data set used to test it, so the statement in Section 5 that this model is 'the only scenario that is consistent with both the z ≤ 3 cosmic web and CMB limits' is true partly by construction. A non-circular test would require leaving the seed amplitude free (or using a CMB-only prior) and showing that the other models cannot be brought into agreement without violating CMB limits; the paper only performs this approximately for the stacked-emission test in Section 4.2.
minor comments (5)
- [Reference list] The reference list contains duplicates that should be merged: [32] and [68] are the same Vernstrom et al. 2017 paper, [36] and [66] are the same Locatelli et al. 2021 paper, and [31] and [41] are the same Vernstrom et al. 2023 paper.
- [§4.3] The citation for the splashback radius is missing; the text contains a placeholder '[? ]' that should be replaced with the proper reference (likely Diemer et al. 2017, which appears in the bibliography).
- [§4.1] The criterion for flagging high-density points along the LOS is not specified; please state the quantitative threshold or give an explicit pointer to the exact procedure in Ref. [18] so that the analysis is reproducible.
- [§2.2 and Table 1] The text states an upper limit of 1.5 nG from Ref. [50] for the RM pair-difference experiment, while Table 1 lists ≤ 9 nG for the same entry; please reconcile this apparent inconsistency (e.g., proper versus comoving values or different filtering choices).
- [Abstract and §6] The phrase 'Independently of the scenario and the shape of the astrophysical component RM' overstates the support from the analysis, because only two shapes (γ = 1 and γ = 5) are tested; the range 10–60 nG should be qualified as covering the two adopted shapes.
Circularity Check
The preferred nB=-1 model's seed amplitude is calibrated on the same LOFAR RRM data later used to declare it the unique match; the γ=5 astrophysical shape is selected to reproduce the observed 21% fraction and then described as predicting it.
-
fitted input called prediction
[Section 3 (Latest Simulations of Cosmic Magnetism) and Section 5 (Discussion)]
"We notice that the last case is the only one where, based on our previous work [18], the normalization is not set by the CMB analysis, but from the comparison with LOFAR RRMs, which yields a normalization ∼ 5 times below CMB constraints. ... The amplitude of RRM rms of the scenario nB = −1 well matches the observed RRMs, provided that the normalization is set ≈ 5 times lower than the existing upper limit from CMB observations. The nB = −1 model is therefore the only scenario that is consistent with both the best constraints of cosmic magnetism from the z ≤ 3 cosmic web and the CMB limits."
The seed-field normalization of the preferred nB=-1 model is explicitly fitted to the LOFAR RRM data in the authors' previous work [18], which is self-cited here. The same LOFAR RRM rms(z) relation is then used in Figures 4-5 and in the discussion to identify nB=-1 as the unique model matching the cosmic-web constraints. The RRM part of that agreement is therefore enforced by construction rather than predicted. Some independent support remains from the synchrotron stacking observable, which was not used in the calibration, so the circularity is partial rather than total.
-
fitted input called prediction
[Section 4.1 (Eq. 9, Tables 2-3) and Section 5 (Discussion)]
"The latter gives a decreasing term and a match with the observed fractional contribution of the astrophysical component of21 ± 4 percent better than the values obtained with the shapes used in our previous work, which are all larger than the observed value. ... This shape also has the relevant benefit of predicting a fractional contribution of the astrophysical component that is consistent with the observed 21 percent."
The γ=5 shape of the astrophysical term is chosen partly because it reproduces the observed 21±4% astrophysical fraction from the LOFAR data, and the same fraction is then described as 'predicted'. The headline result B_f,0=43±7 nG and the claim that the astrophysical RRM component decreases rapidly with redshift are taken from the γ=5 fit (Table 3). Since γ=1 gives B_f,0≈11-14 nG, the quantitative conclusion is conditional on a functional form that was selected to match the target summary statistic, not independently constrained by the data. The paper acknowledges the need for independent knowledge of the astrophysical RRM shape in Section 6, but the 'predicted' fraction is circular by construction.
full rationale
The paper has genuine external anchors: the synchrotron stacking of filaments (Vernstrom et al. 2021) is an independent observable not used to set the nB=-1 normalization, and CMB limits plus gamma-ray void constraints provide outside benchmarks. However, the central model-selection claim that nB=-1 is the unique scenario consistent with the z≤3 cosmic-web constraints is partially circular, because the nB=-1 seed amplitude was itself calibrated on the LOFAR RRM data in the authors' previous work [18], and the same RRM-z relation is then used to show that this model matches. The γ=5 astrophysical shape is likewise selected to reproduce the observed 21±4% astrophysical fraction, and that fraction is then called 'predicted'; the headline 43±7 nG and the rapidly-decreasing astrophysical RM conclusion are conditional on this choice, while γ=1 gives roughly a factor-of-four lower filament field. These are not fully forced: the synchrotron-stacking test gives the nB=-1 model nontrivial independent support, and the paper is transparent about the need for independent knowledge of the astrophysical RRM shape. The overall circularity is therefore partial, not complete: one central 'prediction' reduces by construction to a fitted input, while another part of the evidence chain retains independent content. Score 6.
Assumptions & free parameters
free parameters (5)
- B_f,0 (filament field at z=0) =
43±7 nG (best combined model); 10-60 nG overall
- alpha (redshift slope of proper filament field) =
0.8±0.5 (best); 0.1-2.6 depending on gamma
- A_rrm (astrophysical RM normalization) =
1.08-1.17 rad/m^2
- gamma (astrophysical component shape exponent) =
1 and 5 (hand-chosen)
- Seed amplitude <B>_1Mpc for nB=-1 model =
0.37 nG
assumptions (5)
- standard math Faraday rotation formula and the decomposition of observed RM into galactic, extragalactic, and noise components (Eqs. 3-5).
- domain assumption Diffusive shock acceleration operates in cosmic filaments with the same efficiency as in clusters, so Eq. (1) predicts synchrotron emission.
- domain assumption Simulated electron density and magnetic fields from ENZO at 41.5 kpc resolution represent the real cosmic web along observed sight lines.
- ad hoc to paper The astrophysical RRM component has the smooth power-law form A_rrm/(1+z)^gamma added in quadrature, with gamma either 1 or 5.
- ad hoc to paper The nB=-1 primordial stochastic seed with <B>_1Mpc = 0.37 nG is an appropriate model of inflationary magnetogenesis.
Cite this review
Pith. "Pith review of Radio Observations as a Probe of Cosmic Web Magnetism." pith.science (2026). https://pith.science/paper/4T5YPTFG
@misc{pith2026250518619,
author = {Pith},
title = {Pith review of: Radio Observations as a Probe of Cosmic Web Magnetism},
year = {2026},
howpublished = {\url{https://pith.science/paper/4T5YPTFG}},
note = {Machine review of arXiv:2505.18619}
}
abstract
The Universe's magnetogenesis can be investigated with radio observations of cosmic filaments, where the information on the initial magnetic field seeds is expected to be preserved in time. In this work, we update the comparison between recent observational results in filaments with the predictions from recent cosmological simulations to check whether one of them is favoured. The radio probes we use are the rotation measure (RM) of filaments as a function of the redshift ($z$), stacking of synchrotron emission from filaments, and the RM radial profile away from galaxy groups. The first two probes favour the presence of a dominant primordial magnetic field component and disfavour a sole astrophysical scenario, the third probe does not yet give an unambiguous outcome. We also estimate the average field strength in filaments. Independently of the scenario and the shape of the astrophysical component RM, it is in the range 10--60 nG at $z=0$, while, when restricted to the model that gives the best match to the simulations, it gives $43\pm 7$ nG, with an astrophysical component RM rapidly decreasing with the redshift.
Figures
Figures from the paper (3 more)
Reference graph
Works this paper leans on
-
[18]
Carretti, E.; Vazza, F.; O’Sullivan, S.P .; Vacca, V .; Bonafede, A.; Heald, G.; Horellou, C.; Mtchedlidze, S.; Vernstrom, T. The nature of LOFAR rotation measures and new constraints on magnetic fields in cosmic filaments and on magnetogenesis scenarios. A&A 2025, 693, A208. https://doi.org/10.1051/0004-6361/202451333
-
[1]
The origin, evolution and signatures of primordial magnetic fields
Subramanian, K. The origin, evolution and signatures of primordial magnetic fields. Rep. Prog. Phys. 2016, 79, 076901. https://doi.org/10.1088/0034-4885/79/7/076901
-
[2]
Paoletti, D.; Finelli, F. Constraints on primordial magnetic fields from magnetically-induced perturbations: Current status and future perspectives with LiteBIRD and future ground based experiments. JCAP 2019, 2019, 028. https://doi.org/10.1088/1475-7 516/2019/11/028
doi:10.1088/1475-7 2019
-
[3]
Stringent Limit on Primordial Magnetic Fields from the Cosmic Microwave Background Radiation
Jedamzik, K.; Saveliev, A. Stringent Limit on Primordial Magnetic Fields from the Cosmic Microwave Background Radiation. PRL 2019, 123, 021301. https://doi.org/10.1103/PhysRevLett.123.021301
-
[4]
The Gamma-Ray Window to Intergalactic Magnetism
Alves Batista, R.; Saveliev, A. The Gamma-Ray Window to Intergalactic Magnetism. Universe 2021, 7, 223. https://doi.org/10.3 390/universe7070223
2021
-
[5]
Progress on cosmological magnetic fields
Vachaspati, T. Progress on cosmological magnetic fields. Rep. Prog. Phys. 2021, 84, 074901. https://doi.org/10.1088/1361-6633/ ac03a9
-
[6]
Arámburo-García, A.; Bondarenko, K.; Boyarsky, A.; Nelson, D.; Pillepich, A.; Sokolenko, A. Magnetization of the intergalactic medium in the IllustrisTNG simulations: The importance of extended, outflow-driven bubbles. MNRAS 2021, 505, 5038–5057. https://doi.org/10.1093/mnras/stab1632
-
[7]
Vazza, F.; Paoletti, D.; Banfi, S.; Finelli, F.; Gheller, C.; O’Sullivan, S.P .; Brüggen, M. Simulations and observational tests of primordial magnetic fields from Cosmic Microwave Background constraintsok. MNRAS 2021, 500, 5350–5368. https: //doi.org/10.1093/mnras/staa3532
Show all 131 references
-
[8]
Constraints on the intergalactic magnetic field from Fermi/LAT observations of the ‘pair echo’ of GRB 221009A
Vovk, I.; Korochkin, A.; Neronov, A.; Semikoz, D. Constraints on the intergalactic magnetic field from Fermi/LAT observations of the ‘pair echo’ of GRB 221009A. A&A 2024, 683, A25. https://doi.org/10.1051/0004-6361/202347310
2024 doi
-
[9]
Inflation-produced, large-scale magnetic fields
Turner, M.S.; Widrow, L.M. Inflation-produced, large-scale magnetic fields. PRD 1988, 37, 2743–2754. https://doi.org/10.1103/ PhysRevD.37.2743
1988
-
[10]
Extragalactic magnetic fields
Kronberg, P .P . Extragalactic magnetic fields. Rep. Prog. Phys. 1994, 57, 325–382. https://doi.org/10.1088/0034-4885/57/4/001
1994 doi
-
[13]
The evolution of cosmic ray electrons in the cosmic web: Seeding by AGN, star formation and shocks
Vazza, F.; Gheller, C.; Zanetti, F.; Tsizh, M.; Carretti, E.; Mtchedlidze, S.; Brueggen, M. The evolution of cosmic ray electrons in the cosmic web: Seeding by AGN, star formation and shocks. A&A 2025, 696, A58. https://ui.adsabs.harvard.edu/abs/2025A&A... 696A..58V
2025
-
[14]
Origin of Magnetic Field in the Intracluster Medium: Primordial or Astrophysical? ApJ 2014, 797, 133
Cho, J. Origin of Magnetic Field in the Intracluster Medium: Primordial or Astrophysical? ApJ 2014, 797, 133. https: //doi.org/10.1088/0004-637X/797/2/133
2014 doi
-
[15]
Simulations of extragalactic magnetic fields and of their observables
Vazza, F.; Brüggen, M.; Gheller, C.; Hackstein, S.; Wittor, D.; Hinz, P .M. Simulations of extragalactic magnetic fields and of their observables. Class. Quantum Gravity 2017, 34, 234001. https://doi.org/10.1088/1361-6382/aa8e60
2017 doi
-
[16]
Discovery of magnetic fields along stacked cosmic filaments as revealed by radio and X-ray emission
Vernstrom, T.; Heald, G.; Vazza, F.; Galvin, T.J.; West, J.L.; Locatelli, N.; Fornengo, N.; Pinetti, E. Discovery of magnetic fields along stacked cosmic filaments as revealed by radio and X-ray emission. MNRAS 2021, 505, 4178–4196. https://doi.org/10.1093/ mnras/stab1301
2021
-
[17]
Magnetic field evolution in cosmic filaments with LOFAR data
Carretti, E.; O’Sullivan, S.P .; Vacca, V .; Vazza, F.; Gheller, C.; Vernstrom, T.; Bonafede, A. Magnetic field evolution in cosmic filaments with LOFAR data. MNRAS 2023, 518, 2273–2286. https://doi.org/10.1093/mnras/stac2966
2023 doi
-
[19]
Evidence for Strong Extragalactic Magnetic Fields from Fermi Observations of TeV Blazars
Neronov, A.; Vovk, I. Evidence for Strong Extragalactic Magnetic Fields from Fermi Observations of TeV Blazars. Science 2010, 328, 73–, https://doi.org/10.1126/science.1184192
2010 doi
-
[20]
Evolution of Primordial Magnetic Fields during Large-scale Structure Formation
Mtchedlidze, S.; Domínguez-Fernández, P .; Du, X.; Brandenburg, A.; Kahniashvili, T.; O’Sullivan, S.; Schmidt, W.; Brüggen, M. Evolution of Primordial Magnetic Fields during Large-scale Structure Formation. ApJ 2022, 929, 127. https://doi.org/10.3847/15 38-4357/ac5960
2022 doi
-
[21]
Revision of upper bound on volume-filling intergalactic magnetic fields with LOFAR
Neronov, A.; Vazza, F.; Mtchedlidze, S.; Carretti, E. Revision of upper bound on volume-filling intergalactic magnetic fields with LOFAR. arXiv 2024, arXiv:2412.14825
2024 arXiv
-
[22]
Radio signature of cosmological structure formation shocks
Hoeft, M.; Brüggen, M. Radio signature of cosmological structure formation shocks. MNRAS 2007, 375, 77–91. https: //doi.org/10.1111/j.1365-2966.2006.11111.x
2007
-
[23]
The acceleration of cosmic rays in shock fronts
Bell, A.R. The acceleration of cosmic rays in shock fronts. I. MNRAS 1978, 182, 147–156
1978
-
[24]
Hydromagnetic shock structure in the presence of cosmic rays
Drury, L.O.; Voelk, J.H. Hydromagnetic shock structure in the presence of cosmic rays. ApJ 1981, 248, 344–351. https: //doi.org/10.1086/159159
1981 doi
-
[25]
Self-similar evolution of cosmic-ray-modified quasi-parallel plane shocks
Kang, H.; Jones, T.W. Self-similar evolution of cosmic-ray-modified quasi-parallel plane shocks. Astropart. Phys. 2007, 28, 232–246. https://doi.org/10.1016/j.astropartphys.2007.05.007
2007 doi
-
[26]
Cosmological Shock Waves in the Large-Scale Structure of the Universe: Nongravitational Effects
Kang, H.; Ryu, D.; Cen, R.; Ostriker, J.P . Cosmological Shock Waves in the Large-Scale Structure of the Universe: Nongravitational Effects. ApJ 2007, 669, 729–740. https://doi.org/10.1086/521717
2007 doi
-
[27]
Non-thermal Electron Acceleration in Low Mach Number Collisionless Shocks
Guo, X.; Sironi, L.; Narayan, R. Non-thermal Electron Acceleration in Low Mach Number Collisionless Shocks. I. Particle Energy SpectrAAcceleration Mechanism. ApJ 2014, 794, 153. https://doi.org/10.1088/0004-637X/794/2/153
2014 doi
-
[28]
Shocks and Non-thermal Particles in Clusters of Galaxies
Bykov, A.M.; Vazza, F.; Kropotina, J.A.; Levenfish, K.P .; Paerels, F.B.S. Shocks and Non-thermal Particles in Clusters of Galaxies. SSRv 2019, 215, 14. https://doi.org/10.1007/s11214-019-0585-y
2019 doi
-
[29]
Electron Acceleration at Quasi-parallel Nonrelativistic Shocks: A 1D Kinetic Survey
Gupta, S.; Caprioli, D.; Spitkovsky, A. Electron Acceleration at Quasi-parallel Nonrelativistic Shocks: A 1D Kinetic Survey. ApJ 2024, 976, 10. https://doi.org/10.3847/1538-4357/ad7c4c
2024 doi
-
[30]
Simulations of Ion Acceleration at Non-relativistic Shocks
Caprioli, D.; Spitkovsky, A. Simulations of Ion Acceleration at Non-relativistic Shocks. I. Acceleration Efficiency. ApJ 2014, 783, 91. https://doi.org/10.1088/0004-637X/783/2/91
2014 doi
-
[33]
The Murchison Widefield Array: The Square Kilometre Array Precursor at Low Radio Frequencies
Tingay, S.J.; Goeke, R.; Bowman, J.D.; Emrich, D.; Ord, S.M.; Mitchell, D.A.; Morales, M.F.; Booler, T.; Crosse, B.; Wayth, R.B.; et al. The Murchison Widefield Array: The Square Kilometre Array Precursor at Low Radio Frequencies. Publ. Astron. Soc. Aust. 2013, 30, 7. https://...
2013 doi
-
[35]
S-band Polarization All-Sky Survey (S-PASS): survey description and maps
Carretti, E.; Haverkorn, M.; Staveley-Smith, L.; Bernardi, G.; Gaensler, B.M.; Kesteven, M.J.; Poppi, S.; Brown, S.; Crocker, R.M.; Purcell, C.; et al. S-band Polarization All-Sky Survey (S-PASS): survey description and maps. MNRAS 2019, 489, 2330–2354. https://doi.org/10.1093...
2019 doi
-
[37]
A search for intercluster filaments with LOFAR and eROSITA
Hoang, D.N.; Brüggen, M.; Zhang, X.; Bonafede, A.; Liu, A.; Liu, T.; Shimwell, T.W.; Botteon, A.; Brunetti, G.; Bulbul, E.; et al. A search for intercluster filaments with LOFAR and eROSITA. MNRAS 2023, 523, 6320–6335. https://doi.org/10.1093/mnras/stad1702. Universe 2024, 1, ...
2023 doi
-
[38]
The Radio Sky at Meter Wavelengths: m-mode Analysis Imaging with the OVRO-LWA
Eastwood, M.W.; Anderson, M.M.; Monroe, R.M.; Hallinan, G.; Barsdell, B.R.; Bourke, S.A.; Clark, M.A.; Ellingson, S.W.; Dowell, J.; Garsden, H.; et al. The Radio Sky at Meter Wavelengths: m-mode Analysis Imaging with the OVRO-LWA. AJ 2018, 156, 32. https://doi.org/10.3847/1538...
2018 doi
-
[39]
GaLactic and Extragalactic All-sky Murchison Widefield Array (GLEAM) survey - I
Hurley-Walker, N.; Callingham, J.R.; Hancock, P .J.; Franzen, T.M.O.; Hindson, L.; Kapi ´ nska, A.D.; Morgan, J.; Offringa, A.R.; Wayth, R.B.; Wu, C.; et al. GaLactic and Extragalactic All-sky Murchison Widefield Array (GLEAM) survey - I. A low-frequency extragalactic catalogu...
2017 doi
-
[40]
ROSAT: A New Look at the X-ray Sky
Truemper, J. ROSAT: A New Look at the X-ray Sky. QJRAS 1992, 33, 165
1992
-
[41]
Polarized accretion shocks from the cosmic web.Sci
Vernstrom, T.; West, J.; Vazza, F.; Wittor, D.; Riseley, C.J.; Heald, G. Polarized accretion shocks from the cosmic web.Sci. Adv. 2023, 9, eade7233. https://doi.org/10.1126/sciadv.ade7233
2023 doi
-
[42]
The Global Magneto-ionic Medium Survey: A Faraday Depth Survey of the Northern Sky Covering 1280–1750 MHz
Wolleben, M.; Landecker, T.L.; Douglas, K.A.; Gray, A.D.; Ordog, A.; Dickey, J.M.; Hill, A.S.; Carretti, E.; Brown, J.C.; Gaensler, B.M.; et al. The Global Magneto-ionic Medium Survey: A Faraday Depth Survey of the Northern Sky Covering 1280–1750 MHz. AJ 2021, 162, 35
2021
-
[43]
Nine-year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Final Maps and Results
Bennett, C.L.; Larson, D.; Weiland, J.L.; Jarosik, N.; Hinshaw, G.; Odegard, N.; Smith, K.M.; Hill, R.S.; Gold, B.; Halpern, M.; et al. Nine-year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Final Maps and Results. ApJS 2013, 208, 20. https://doi.org/10.1088/0067-...
2013 doi
-
[44]
On the depolarization of discrete radio sources by Faraday dispersion
Burn, B.J. On the depolarization of discrete radio sources by Faraday dispersion. MNRAS 1966, 133, 67. https://doi.org/10.1093/ mnras/133.1.67
1966
-
[45]
Planck intermediate results
Planck Collaboration.; Adam, R.; Ade, P .A.R.; Alves, M.I.R.; Ashdown, M.; Aumont, J.; Baccigalupi, C.; Banday, A.J.; Barreiro, R.B.; Bartolo, N.; et al. Planck intermediate results. XLII. Large-scale Galactic magnetic fields. A&A 2016, 596, A103. https://doi.org/10.1051/0004-...
2016 doi
-
[46]
Structure in the Magnetic Field of the Milky Way Disk and Halo Traced by Faraday Rotation
Dickey, J.M.; West, J.; Thomson, A.J.M.; Landecker, T.L.; Bracco, A.; Carretti, E.; Han, J.L.; Hill, A.S.; Ma, Y.K.; Mao, S.A.; et al. Structure in the Magnetic Field of the Milky Way Disk and Halo Traced by Faraday Rotation. ApJ 2022, 940, 75. https://doi.org/10.3847/1538-4357/ac94ce
2022 doi
-
[47]
Detection of magnetic fields in the circumgalactic medium of nearby galaxies using Faraday rotation
Heesen, V .; O’Sullivan, S.P .; Brüggen, M.; Basu, A.; Beck, R.; Seta, A.; Carretti, E.; Krause, M.G.H.; Haverkorn, M.; Hutschenreuter, S.; et al. Detection of magnetic fields in the circumgalactic medium of nearby galaxies using Faraday rotation. A&A 2023, 670, L23. https://d...
2023 doi
-
[48]
Probing magnetic fields in the circumgalactic medium using polarization data from MIGHTEE
Böckmann, K.; Brüggen, M.; Heesen, V .; Basu, A.; O’Sullivan, S.P .; Heywood, I.; Jarvis, M.; Scaife, A.; Stil, J.; Taylor, R.; et al. Probing magnetic fields in the circumgalactic medium using polarization data from MIGHTEE. A&A 2023, 678, A56. https://doi.org/10.1051/0004-63...
2023 doi
-
[49]
Structures of the magnetoionic media around the Fanaroff-Riley Class I radio galaxies 3C31 and Hydra A
Laing, R.A.; Bridle, A.H.; Parma, P .; Murgia, M. Structures of the magnetoionic media around the Fanaroff-Riley Class I radio galaxies 3C31 and Hydra A. MNRAS 2008, 391, 521–549. https://doi.org/10.1111/j.1365-2966.2008.13895.x
2008
-
[50]
The redshift evolution of extragalactic magnetic fields
Pomakov, V .P .; O’Sullivan, S.P .; Brüggen, M.; Vazza, F.; Carretti, E.; Heald, G.H.; Horellou, C.; Shimwell, T.; Shulevski, A.; Vernstrom, T. The redshift evolution of extragalactic magnetic fields. MNRAS 2022, 515, 256–270. https://doi.org/10.1093/ mnras/stac1805
2022
-
[51]
Covariant polarized radiative transfer on cosmological scales for investigating large-scale magnetic field structures.MNRAS 2019, 484, 1427–1455
Chan, J.Y .H.; Wu, K.; On, A.Y .L.; Barnes, D.J.; McEwen, J.D.; Kitching, T.D. Covariant polarized radiative transfer on cosmological scales for investigating large-scale magnetic field structures.MNRAS 2019, 484, 1427–1455. https://doi.org/10.1093/mnras/sty3498
2019 doi
-
[52]
Polarized radiative transfer, rotation measure fluctuations, and large-scale magnetic fields
On, A.Y.L.; Chan, J.Y.H.; Wu, K.; Saxton, C.J.; van Driel-Gesztelyi, L. Polarized radiative transfer, rotation measure fluctuations, and large-scale magnetic fields. MNRAS 2019, 490, 1697–1713. https://doi.org/10.1093/mnras/stz2683
2019 doi
-
[53]
Simulating cosmic rays in clusters of galaxies—I
Pfrommer, C.; Enßlin, T.A.; Springel, V .; Jubelgas, M.; Dolag, K. Simulating cosmic rays in clusters of galaxies—I. Effects on the Sunyaev–Zel’dovich effect and the X-ray emission. MNRAS 2007, 378, 385–408. https://doi.org/10.1111/j.1365-2966.2007.11732.x
2007
-
[55]
Constraining the efficiency of cosmic ray acceleration by cluster shocks
Vazza, F.; Brüggen, M.; Wittor, D.; Gheller, C.; Eckert, D.; Stubbe, M. Constraining the efficiency of cosmic ray acceleration by cluster shocks. MNRAS 2016, 459, 70–83. https://doi.org/10.1093/mnras/stw584
2016 doi
-
[56]
Energetic Particles and High-Energy Processes in Cosmological Filaments and Their Astronomical Implications
Wu, K.; Owen, E.R.; Han, Q.; Inoue, Y.; Luo, L. Energetic Particles and High-Energy Processes in Cosmological Filaments and Their Astronomical Implications. Universe 2024, 10, 287. https://doi.org/10.3390/universe10070287
2024 doi
-
[57]
Simulating the LOcal Web (SLOW): III
Böss, L.M.; Dolag, K.; Steinwandel, U.P .; Hernández-Martínez, E.; Khabibullin, I.; Seidel, B.; Sorce, J.G. Simulating the LOcal Web (SLOW): III. Synchrotron emission from the local cosmic web.A&A 2024, 692, A232. https://doi.org/10.1051/0004-6361/202348339
2024 doi
-
[58]
Cosmic Rays Masquerading as Hot CGM Gas: An Inverse-Compton Origin for Diffuse X-ray Emission in the Circumgalactic Medium
Hopkins, P .F.; Quataert, E.; Ponnada, S.B.; Silich, E. Cosmic Rays Masquerading as Hot CGM Gas: An Inverse-Compton Origin for Diffuse X-ray Emission in the Circumgalactic Medium. arXiv 2025, arXiv:2501.18696
2025
-
[59]
Search for Cosmic-Ray-induced Gamma-Ray Emission in Galaxy Clusters
Ackermann, M.; Ajello, M.; Albert, A.; Allafort, A.; Atwood, W.B.; Baldini, L.; Ballet, J.; Barbiellini, G.; Bastieri, D.; Bechtol, K.; et al. Search for Cosmic-Ray-induced Gamma-Ray Emission in Galaxy Clusters. ApJ 2014, 787, 18. https://doi.org/10.1088/0004 -637X/787/1/18
2014 doi
-
[60]
New Limits on Gamma-Ray Emission from Galaxy Clusters
Griffin, R.D.; Dai, X.; Kochanek, C.S. New Limits on Gamma-Ray Emission from Galaxy Clusters. ApJL 2014, 795, L21. https://doi.org/10.1088/2041-8205/795/1/L21
2014 doi
-
[61]
Filaments of galaxies as a clue to the origin of ultrahigh-energy cosmic rays
Kim, J.; Ryu, D.; Kang, H.; Kim, S.; Rey, S.C. Filaments of galaxies as a clue to the origin of ultrahigh-energy cosmic rays. Sci. Adv. 2019, 5, eaau8227. https://doi.org/10.1126/sciadv.aau8227. Universe 2024, 1, 0 21 of 23
2019 doi
-
[62]
Magnetic field strength in cosmic web filaments.MNRAS 2022, 512, 945–959
Carretti, E.; Vacca, V .; O’Sullivan, S.P .; Heald, G.H.; Horellou, C.; Röttgering, H.J.A.; Scaife, A.M.M.; Shimwell, T.W.; Shulevski, A.; Stuardi, C.; et al. Magnetic field strength in cosmic web filaments.MNRAS 2022, 512, 945–959. https://doi.org/10.1093/mnras/ stac384
2022 doi
-
[63]
Probing the magnetized gas distribution in galaxy groups and the cosmic web with POSSUM Faraday rotation measures
Anderson, C.S.; McClure-Griffiths, N.M.; Rudnick, L.; Gaensler, B.M.; O’Sullivan, S.P .; Bradbury, S.; Akahori, T.; Baidoo, L.; Bruggen, M.; Carretti, E.; et al. Probing the magnetized gas distribution in galaxy groups and the cosmic web with POSSUM Faraday rotation measures. ...
2024 doi
-
[64]
Survey Science with ASKAP: Polarization Sky Survey of the Universe’s Magnetism (POSSUM)
Gaensler, B.M.; Landecker, T.L.; Taylor, A.R.; POSSUM Collaboration. Survey Science with ASKAP: Polarization Sky Survey of the Universe’s Magnetism (POSSUM). Am. Astron. Soc. Meet. Abstr. 2010, 215, 470.13
2010
-
[65]
A radio ridge connecting two galaxy clusters in a filament of the cosmic web
Govoni, F.; Orrù, E.; Bonafede, A.; Iacobelli, M.; Paladino, R.; Vazza, F.; Murgia, M.; Vacca, V .; Giovannini, G.; Feretti, L.; et al. A radio ridge connecting two galaxy clusters in a filament of the cosmic web. Science 2019, 364, 981–984. https: //doi.org/10.1126/science.aat7500
2019 doi
-
[66]
New constraints on the magnetic field in cosmic web filaments⋆
Locatelli, N.; Vazza, F.; Bonafede, A.; Banfi, S.; Bernardi, G.; Gheller, C.; Botteon, A.; Shimwell, T. New constraints on the magnetic field in cosmic web filaments⋆. A&A 2021, 652, A80. https://doi.org/10.1051/0004-6361/202140526
2021 doi
-
[67]
Constraints on the magnetic field in the intercluster bridge A399–A401
Balboni, M.; Bonafede, A.; Bernardi, G.; Wittor, D.; Vazza, F.; Botteon, A.; Carretti, E.; Shimwell, T.; Vacca, V .; van Weeren, R.J. Constraints on the magnetic field in the intercluster bridge A399–A401. A&A 2023, 679, A107. https://doi.org/10.1051/0004-636 1/202346303
2023 doi
-
[68]
Low-frequency radio constraints on the synchrotron cosmic web
Vernstrom, T.; Gaensler, B.M.; Brown, S.; Lenc, E.; Norris, R.P . Low-frequency radio constraints on the synchrotron cosmic web. MNRAS 2017, 467, 4914–4936. https://doi.org/10.1093/mnras/stx424
2017 doi
-
[69]
Limiting magnetic fields in the cosmic web with diffuse radio emission
Brown, S.; Vernstrom, T.; Carretti, E.; Dolag, K.; Gaensler, B.M.; Staveley-Smith, L.; Bernardi, G.; Haverkorn, M.; Kesteven, M.; Poppi, S. Limiting magnetic fields in the cosmic web with diffuse radio emission. MNRAS 2017, 468, 4246–4253. https: //doi.org/10.1093/mnras/stx746
2017 doi
-
[70]
Detection of magnetic fields in superclusters of galaxies
Pignataro, G.V .; O’Sullivan, S.P .; Bonafede, A.; Bernardi, G.; Vazza, F.; Carretti, E. Detection of magnetic fields in superclusters of galaxies. arXiv 2025, arXiv:2503.08765
2025 arXiv
-
[71]
Differences in Faraday Rotation between Adjacent Extragalactic Radio Sources as a Probe of Cosmic Magnetic Fields
Vernstrom, T.; Gaensler, B.M.; Rudnick, L.; Andernach, H. Differences in Faraday Rotation between Adjacent Extragalactic Radio Sources as a Probe of Cosmic Magnetic Fields. ApJ 2019, 878, 92. https://doi.org/10.3847/1538-4357/ab1f83
2019 doi
-
[72]
New constraints on the magnetization of the cosmic web using LOFAR Faraday rotation observations
O’Sullivan, S.P .; Brüggen, M.; Vazza, F.; Carretti, E.; Locatelli, N.T.; Stuardi, C.; Vacca, V .; Vernstrom, T.; Heald, G.; Horellou, C.; et al. New constraints on the magnetization of the cosmic web using LOFAR Faraday rotation observations. MNRAS 2020, 495, 2607–2619. https...
2020 doi
-
[73]
Constraints on large-scale magnetic fields in the intergalactic medium using cross-correlation methods
Amaral, A.D.; Vernstrom, T.; Gaensler, B.M. Constraints on large-scale magnetic fields in the intergalactic medium using cross-correlation methods. MNRAS 2021, 503, 2913–2926. https://doi.org/10.1093/mnras/stab564
2021 doi
-
[74]
Constraint on primordial magnetic fields in the light of ARCADE 2 and EDGES observations.Eur
Natwariya, P .K. Constraint on primordial magnetic fields in the light of ARCADE 2 and EDGES observations.Eur. Phys. J. C 2021, 81, 394. https://doi.org/10.1140/epjc/s10052-021-09155-z
2021 doi
-
[75]
The Protogalactic Origin for Cosmic Magnetic Fields
Kulsrud, R.M.; Cen, R.; Ostriker, J.P .; Ryu, D. The Protogalactic Origin for Cosmic Magnetic Fields. ApJ 1997, 480, 481–491. https://doi.org/10.1086/303987
1997 doi
-
[76]
Magnetic Field Evolution in Merging Clusters of Galaxies
Roettiger, K.; Stone, J.M.; Burns, J.O. Magnetic Field Evolution in Merging Clusters of Galaxies. ApJ 1999, 518, 594–602
1999
-
[77]
SPH simulations of magnetic fields in galaxy clusters
Dolag, K.; Bartelmann, M.; Lesch, H. SPH simulations of magnetic fields in galaxy clusters. A&A 1999, 348, 351–363
1999
-
[78]
Correlation of the magnetic field and the intra-cluster gas density in galaxy clusters
Dolag, K.; Schindler, S.; Govoni, F.; Feretti, L. Correlation of the magnetic field and the intra-cluster gas density in galaxy clusters. A&A 2001, 378, 777–786. https://doi.org/10.1051/0004-6361:20011219
2001 doi
-
[79]
Simulations of Magnetic Fields in Filaments
Brüggen, M.; Ruszkowski, M.; Simionescu, A.; Hoeft, M.; Dalla Vecchia, C. Simulations of Magnetic Fields in Filaments. ApJL 2005, 631, L21–L24. https://doi.org/10.1086/497004
2005 doi
-
[80]
A non-ideal magnetohydrodynamic GADGET: simulating massive galaxy clusters
Bonafede, A.; Dolag, K.; Stasyszyn, F.; Murante, G.; Borgani, S. A non-ideal magnetohydrodynamic GADGET: simulating massive galaxy clusters. MNRAS 2011, 418, 2234–2250. https://doi.org/10.1111/j.1365-2966.2011.19523.x
2011
-
[81]
Cosmological Magnetohydrodynamic Simulations of Cluster Formation with Anisotropic Thermal Conduction
Ruszkowski, M.; Lee, D.; Brüggen, M.; Parrish, I.; Oh, S.P . Cosmological Magnetohydrodynamic Simulations of Cluster Formation with Anisotropic Thermal Conduction. ApJ 2011, 740, 81. https://doi.org/10.1088/0004-637X/740/2/81
2011 doi
-
[82]
On the amplification of magnetic fields in cosmic filaments and galaxy clusters
Vazza, F.; Brüggen, M.; Gheller, C.; Wang, P . On the amplification of magnetic fields in cosmic filaments and galaxy clusters. MNRAS 2014, 445, 3706–3722. https://doi.org/10.1093/mnras/stu1896
2014 doi
-
[83]
Simulations of the Small-Scale Turbulent Dynamo
Schekochihin, A.A.; Cowley, S.C.; Taylor, S.F.; Maron, J.L.; McWilliams, J.C. Simulations of the Small-Scale Turbulent Dynamo. ApJ 2004, 612, 276–307. https://doi.org/10.1086/422547
2004 doi
-
[84]
The Turbulent Dynamo in Highly Compressible Supersonic Plasmas
Federrath, C.; Schober, J.; Bovino, S.; Schleicher, D.R.G. The Turbulent Dynamo in Highly Compressible Supersonic Plasmas. ApJL 2014, 797, L19. https://doi.org/10.1088/2041-8205/797/2/L19
2014 doi
-
[85]
Magnetic field amplification during a turbulent collapse
Brandenburg, A.; Ntormousi, E. Magnetic field amplification during a turbulent collapse. arXiv 2025, arXiv:2505.02885
2025 arXiv
-
[86]
Turbulent Amplification and Structure of the Intracluster Magnetic Field
Beresnyak, A.; Miniati, F. Turbulent Amplification and Structure of the Intracluster Magnetic Field. ApJ 2016, 817, 127. https://doi.org/10.3847/0004-637X/817/2/127
2016 doi
-
[87]
Magnetic Field Amplification in Galaxy Clusters and Its Simulation
Donnert, J.; Vazza, F.; Brüggen, M.; ZuHone, J. Magnetic Field Amplification in Galaxy Clusters and Its Simulation. SSRv 2018, 214, 122. https://doi.org/10.1007/s11214-018-0556-8
2018 doi
-
[88]
Resolved magnetic dynamo action in the simulated intracluster medium
Vazza, F.; Brunetti, G.; Brüggen, M.; Bonafede, A. Resolved magnetic dynamo action in the simulated intracluster medium. MNRAS 2018, 474, 1672–1687. https://doi.org/10.1093/mnras/stx2830
2018 doi
-
[89]
Cosmic magnetic fields with masclet: An application to galaxy clusters
Quilis, V .; Martí, J.M.; Planelles, S. Cosmic magnetic fields with masclet: An application to galaxy clusters. MNRAS 2020, 494, 2706–2717. https://doi.org/10.1093/mnras/staa877. Universe 2024, 1, 0 22 of 23
2020 doi
-
[90]
On the Small-scale Turbulent Dynamo in the Intracluster Medium: A Comparison to Dynamo Theory
Steinwandel, U.P .; Böss, L.M.; Dolag, K.; Lesch, H. On the Small-scale Turbulent Dynamo in the Intracluster Medium: A Comparison to Dynamo Theory. ApJ 2022, 933, 131. https://doi.org/10.3847/1538-4357/ac715c
2022 doi
-
[91]
Magnetic fields and Faraday rotation in clusters of galaxies
Murgia, M.; Govoni, F.; Feretti, L.; Giovannini, G.; Dallacasa, D.; Fanti, R.; Taylor, G.B.; Dolag, K. Magnetic fields and Faraday rotation in clusters of galaxies. A&A 2004, 424, 429–446. https://doi.org/10.1051/0004-6361:20040191
2004 doi
-
[92]
The Coma cluster magnetic field from Faraday rotation measures
Bonafede, A.; Feretti, L.; Murgia, M.; Govoni, F.; Giovannini, G.; Dallacasa, D.; Dolag, K.; Taylor, G.B. The Coma cluster magnetic field from Faraday rotation measures. A&A 2010, 513, A30+, https://doi.org/10.1051/0004-6361/200913696
2010 doi
-
[93]
Measurements and simulation of Faraday rotation across the Coma radio relic
Bonafede, A.; Vazza, F.; Brüggen, M.; Murgia, M.; Govoni, F.; Feretti, L.; Giovannini, G.; Ogrean, G. Measurements and simulation of Faraday rotation across the Coma radio relic. MNRAS 2013, 433, 3208–3226. https://doi.org/10.1093/mnras/stt960
2013 doi
-
[94]
Diffuse Radio Emission from Galaxy Clusters
van Weeren, R.J.; de Gasperin, F.; Akamatsu, H.; Brüggen, M.; Feretti, L.; Kang, H.; Stroe, A.; Zandanel, F. Diffuse Radio Emission from Galaxy Clusters. SSRv 2019, 215, 16. https://doi.org/10.1007/s11214-019-0584-z
2019 doi
-
[95]
Turbulent dynamo in a collisionless plasma.Proc
Rincon, F.; Califano, F.; Schekochihin, A.A.; Valentini, F. Turbulent dynamo in a collisionless plasma.Proc. Natl. Acad. Sci. USA 2016, 113, 3950–3953. https://doi.org/10.1073/pnas.1525194113
2016 doi
-
[96]
Generation of Near-Equipartition Magnetic Fields in Turbulent Collisionless Plasmas
Sironi, L.; Comisso, L.; Golant, R. Generation of Near-Equipartition Magnetic Fields in Turbulent Collisionless Plasmas. Phys. Rev. Lett. 2023, 131, 055201. https://doi.org/10.1103/PhysRevLett.131.055201
2023 doi
-
[97]
Magnetogenesis in a collisionless plasma: From Weibel instability to turbulent dynamo
Zhou, M.; Zhdankin, V .; Kunz, M.W.; Loureiro, N.F.; Uzdensky, D.A. Magnetogenesis in a collisionless plasma: From Weibel instability to turbulent dynamo. arXiv
-
[98]
Fluctuation Dynamo in a Collisionless, Weakly Magnetized Plasma
St-Onge, D.A.; Kunz, M.W. Fluctuation Dynamo in a Collisionless, Weakly Magnetized Plasma. ApJL 2018, 863, L25. https: //doi.org/10.3847/2041-8213/aad638
2018 doi
-
[99]
The effect of pressure-anisotropy-driven kinetic instabilities on magnetic field amplification in galaxy clusters
Rappaz, Y.; Schober, J. The effect of pressure-anisotropy-driven kinetic instabilities on magnetic field amplification in galaxy clusters. A&A 2024, 683, A35. https://doi.org/10.1051/0004-6361/202347497
2024 doi
-
[100]
Evolution of cosmic filaments and of their galaxy population from MHD cosmological simulations.MNRAS 2016, 462, 448–463
Gheller, C.; Vazza, F.; Brüggen, M.; Alpaslan, M.; Holwerda, B.W.; Hopkins, A.M.; Liske, J. Evolution of cosmic filaments and of their galaxy population from MHD cosmological simulations.MNRAS 2016, 462, 448–463. https://doi.org/10.1093/mnras/stw1595
2016 doi
-
[101]
Turbulence and Magnetic Fields in the Large-Scale Structure of the Universe
Ryu, D.; Kang, H.; Cho, J.; Das, S. Turbulence and Magnetic Fields in the Large-Scale Structure of the Universe. Science 2008, 320, 909. https://doi.org/10.1126/science.1154923
2008 doi
-
[102]
Statistical Techniques for Detecting the Intergalactic Magnetic Field from Large Samples of Extragalactic Faraday Rotation Data
Akahori, T.; Gaensler, B.M.; Ryu, D. Statistical Techniques for Detecting the Intergalactic Magnetic Field from Large Samples of Extragalactic Faraday Rotation Data. ApJ 2014, 790, 123. https://doi.org/10.1088/0004-637X/790/2/123
2014 doi
-
[103]
The large-scale properties of simulated cosmological magnetic fields
Marinacci, F.; Vogelsberger, M.; Mocz, P .; Pakmor, R. The large-scale properties of simulated cosmological magnetic fields. MNRAS 2015, 453, 3999–4019. https://doi.org/10.1093/mnras/stv1692
2015 doi
-
[104]
The Challenge of Detecting Intracluster Filaments with Faraday Rotation
Locatelli, N.; Vazza, F.; Domínguez-Fernández, P . The Challenge of Detecting Intracluster Filaments with Faraday Rotation. Galaxies 2018, 6, 128. https://doi.org/10.3390/galaxies6040128
2018 doi
-
[105]
Intercluster filaments in a ΛCDM Universe
Colberg, J.M.; Krughoff, K.S.; Connolly, A.J. Intercluster filaments in a ΛCDM Universe. MNRAS 2005, 359, 272–282. https: //doi.org/10.1111/j.1365-2966.2005.08897.x
2005
-
[106]
Proprieties of clumps and filaments around galaxy clusters
Angelinelli, M.; Ettori, S.; Vazza, F.; Jones, T.W. Proprieties of clumps and filaments around galaxy clusters. A&A 2021, 653, A171. https://doi.org/10.1051/0004-6361/202140471
2021 doi
-
[107]
Origin of strong magnetic fields in Milky Way-like galactic haloes
Beck, A.M.; Lesch, H.; Dolag, K.; Kotarba, H.; Geng, A.; Stasyszyn, F.A. Origin of strong magnetic fields in Milky Way-like galactic haloes. MNRAS 2012, 422, 2152–2163. https://doi.org/10.1111/j.1365-2966.2012.20759.x
2012
-
[108]
Magnetogenesis at Cosmic Dawn: Tracing the origins of cosmic magnetic fields
Katz, H.; Martin-Alvarez, S.; Devriendt, J.; Slyz, A.; Kimm, T. Magnetogenesis at Cosmic Dawn: Tracing the origins of cosmic magnetic fields. MNRAS 2019, 484, 2620–2631. https://doi.org/10.1093/mnras/stz055
2019 doi
-
[109]
Locatelli, N.; Rajpurohit, K.; Banfi, S.; Domínguez-Fernández, P .; Wittor, D.; Angelinelli, M.; Inchingolo, G.; Brienza, M.; Hackstein, S.; et al
Vazza, F. ; Locatelli, N.; Rajpurohit, K.; Banfi, S.; Domínguez-Fernández, P .; Wittor, D.; Angelinelli, M.; Inchingolo, G.; Brienza, M.; Hackstein, S.; et al. Magnetogenesis and the Cosmic Web: A Joint Challenge for Radio Observations and Numerical Simulations. Galaxies 2021,...
2021 doi
-
[110]
Intergalactic medium rotation measure of primordial magnetic fields
Mtchedlidze, S.; Domínguez-Fernández, P .; Du, X.; Carretti, E.; Vazza, F.; O’Sullivan, S.P .; Brandenburg, A.; Kahniashvili, T. Intergalactic medium rotation measure of primordial magnetic fields. arXiv 2024, arXiv:2406.16230
2024 arXiv
-
[111]
How primordial magnetic fields shrink galaxies
Martin-Alvarez, S.; Slyz, A.; Devriendt, J.; Gómez-Guijarro, C. How primordial magnetic fields shrink galaxies. MNRAS 2020, 495, 4475–4495. https://doi.org/10.1093/mnras/staa1438
2020 doi
-
[112]
Dwarf galaxies as a probe of a primordially magnetized Universe
Sanati, M.; Martin-Alvarez, S.; Schober, J.; Revaz, Y.; Slyz, A.; Devriendt, J. Dwarf galaxies as a probe of a primordially magnetized Universe. A&A 2024, 690, A59. https://doi.org/10.1051/0004-6361/202449822
2024 doi
-
[113]
Matter power spectrum induced by primordial magnetic fields: from the linear to the non-linear regime
Ralegankar, P .; Garaldi, E.; Viel, M. Matter power spectrum induced by primordial magnetic fields: from the linear to the non-linear regime. arXiv 2024, arXiv:2410.02676
2024
-
[114]
Constraints on Primordial Magnetic Fields from the Lyman-α forest
Paviˇ cevi´ c, M.; Iršiˇ c, V .; Viel, M.; Bolton, J.; Haehnelt, M.G.; Martin-Alvarez, S.; Puchwein, E.; Ralegankar, P . Constraints on Primordial Magnetic Fields from the Lyman-α forest. arXiv 2025, arXiv:2501.06299
2025 arXiv
-
[115]
Revision of Faraday rotation measure constraints on the primordial magnetic field using the IllustrisTNG simulation
Arámburo-García, A.; Bondarenko, K.; Boyarsky, A.; Neronov, A.; Scaife, A.; Sokolenko, A. Revision of Faraday rotation measure constraints on the primordial magnetic field using the IllustrisTNG simulation. MNRAS 2022, 515, 5673–5681. https://doi.org/10.1093/mnras/stac2058
2022 doi
-
[116]
Constraining the Astrophysical Origin of Intergalactic Magnetic Fields
Tjemsland, J.; Meyer, M.; Vazza, F. Constraining the Astrophysical Origin of Intergalactic Magnetic Fields. ApJ 2024, 963, 135. https://doi.org/10.3847/1538-4357/ad22dd
2024 doi
-
[117]
Hydrodynamic methods and sub-resolution models for cosmological simulations
Valentini, M.; Dolag, K. Hydrodynamic methods and sub-resolution models for cosmological simulations. arXiv 2025, arXiv:2502.06954. Universe 2024, 1, 0 23 of 23
2025 arXiv
-
[118]
Quantifying Baryonic Feedback on the Warm–Hot Circumgalactic Medium in CAMELS Simulations
Medlock, I.; Neufeld, C.; Nagai, D.; Anglés-Alcázar, D.; Genel, S.; Oppenheimer, B.D.; Sims, X.; Singh, P .; Villaescusa-Navarro, F. Quantifying Baryonic Feedback on the Warm–Hot Circumgalactic Medium in CAMELS Simulations. ApJ 2025, 980, 61. https://doi.org/10.3847/1538-4357/ada442
2025 doi
-
[119]
The Faraday Rotation Measure Grid of the LOFAR Two-metre Sky Survey: Data Release 2
O’Sullivan, S.P .; Shimwell, T.W.; Hardcastle, M.J.; Tasse, C.; Heald, G.; Carretti, E.; Brüggen, M.; Vacca, V .; Sobey, C.; Van Eck, C.L.; et al. The Faraday Rotation Measure Grid of the LOFAR Two-metre Sky Survey: Data Release 2. MNRAS 2023, 519, 5723–5742. https://doi.org/1...
2023 doi
-
[120]
Properties of cosmological filaments extracted from Eulerian simulations
Gheller, C.; Vazza, F.; Favre, J.; Brüggen, M. Properties of cosmological filaments extracted from Eulerian simulations. MNRAS 2015, 453, 1164–1185. https://doi.org/10.1093/mnras/stv1646
2015 doi
-
[121]
The evolution of primordial magnetic fields since their generation
Kahniashvili, T.; Brandenburg, A.; Tevzadze, A.G. The evolution of primordial magnetic fields since their generation. Phys. Scr. 2016, 91, 104008. https://doi.org/10.1088/0031-8949/91/10/104008. More]2017ApJ...843..140D Diemer, B.; Mansfield, P .; Kravtsov, A.V .; More, S. The...
2016 doi
-
[122]
Cosmological simulations of galaxy formation.Nat
Vogelsberger, M.; Marinacci, F.; Torrey, P .; Puchwein, E. Cosmological simulations of galaxy formation.Nat. Rev. Phys. 2020, 2, 42–66. https://doi.org/10.1038/s42254-019-0127-2
2020 doi
-
[123]
Co-evolution of massive black holes and their host galaxies at high redshift: Discrepancies from six cosmological simulations and the key role of JWST
Habouzit, M.; Onoue, M.; Bañados, E.; Neeleman, M.; Anglés-Alcázar, D.; Walter, F.; Pillepich, A.; Davé, R.; Jahnke, K.; Dubois, Y. Co-evolution of massive black holes and their host galaxies at high redshift: Discrepancies from six cosmological simulations and the key role of...
2022 doi
-
[124]
Recent Progress in Modeling the Macro- and Micro-Physics of Radio Jet Feedback in Galaxy Clusters
Bourne, M.A.; Yang, H.Y.K. Recent Progress in Modeling the Macro- and Micro-Physics of Radio Jet Feedback in Galaxy Clusters. Galaxies 2023, 11, 73. https://doi.org/10.3390/galaxies11030073
2023 doi
-
[125]
The second data release from the European Pulsar Timing Array
EPTA Collaboration; InPTA Collaboration; Antoniadis, J.; Arumugam, P .; Arumugam, S.; Babak, S.; Bagchi, M.; Bak Nielsen, A.S.; Bassa, C.G.; Bathula, A.; et al. The second data release from the European Pulsar Timing Array. III. Search for gravitational wave signals. A&A 2023,...
2023 doi
-
[126]
Magnetic Fields from QCD Phase Transitions
Tevzadze, A.G.; Kisslinger, L.; Brandenburg, A.; Kahniashvili, T. Magnetic Fields from QCD Phase Transitions. ApJ 2012, 759, 54. https://doi.org/10.1088/0004-637X/759/1/54
2012 doi
-
[127]
NANOGrav signal from magnetohydrodynamic turbulence at the QCD phase transition in the early Universe
Neronov, A.; Pol, A.R.; Caprini, C.; Semikoz, D. NANOGrav signal from magnetohydrodynamic turbulence at the QCD phase transition in the early Universe. PRD 2021, 103, L041302. https://doi.org/10.1103/PhysRevD.103.L041302
2021 doi
-
[128]
Cosmic-void observations reconciled with primordial magnetogenesis
Hosking, D.N.; Schekochihin, A.A. Cosmic-void observations reconciled with primordial magnetogenesis. Nat. Commun. 2023, 14, 7523. https://doi.org/10.1038/s41467-023-43258-3
2023 doi
-
[129]
Resistively controlled primordial magnetic turbulence decay
Brandenburg, A.; Neronov, A.; Vazza, F. Resistively controlled primordial magnetic turbulence decay. A&A 2024, 687, A186. https://doi.org/10.1051/0004-6361/202449267
2024 doi
-
[130]
Filaments of the radio cosmic web: Opportunities and challenges for SKA
Vazza, F.; Ferrari, C.; Bonafede, A.; Brüggen, M.; Gheller, C.; Braun, R.; Brown, S. Filaments of the radio cosmic web: Opportunities and challenges for SKA. arXiv 2015, arXiv:1501.00315
2015 arXiv
-
[131]
Forecasts for the detection of the magnetised cosmic web from cosmological simulations
Vazza, F.; Ferrari, C.; Brüggen, M.; Bonafede, A.; Gheller, C.; Wang, P . Forecasts for the detection of the magnetised cosmic web from cosmological simulations. A&A 2015, 580, A119. https://doi.org/10.1051/0004-6361/201526228
2015 doi
-
[132]
Filaments in and between galaxy clusters at low and mid-frequency with the SKA
Vacca, V .; Govoni, F.; Murgia, M.; Loi, F.; Feretti, L.; Li, H.; Battistelli, E.; Enßlin, T.A.; Marchegiani, P . Filaments in and between galaxy clusters at low and mid-frequency with the SKA. A&A 2024, 691, A334. https://doi.org/10.1051/0004-6361/202349095
2024 doi
-
[133]
Observing Interstellar and Intergalactic Magnetic Fields
Han, J.L. Observing Interstellar and Intergalactic Magnetic Fields. ARAA 2017, 55, 111–157. https://doi.org/10.1146/annurev- astro-091916-055221
2017 doi
-
[134]
Fast Radio Bursts as Probes of Magnetic Fields in the Intergalactic Medium
Akahori, T.; Ryu, D.; Gaensler, B.M. Fast Radio Bursts as Probes of Magnetic Fields in the Intergalactic Medium. ApJ 2016, 824, 105. https://doi.org/10.3847/0004-637X/824/2/105
2016 doi
-
[135]
Fast radio burst dispersion measures and rotation measures and the origin of intergalactic magnetic fields
Hackstein, S.; Brüggen, M.; Vazza, F.; Gaensler, B.M.; Heesen, V . Fast radio burst dispersion measures and rotation measures and the origin of intergalactic magnetic fields. MNRAS 2019, 488, 4220–4238. https://doi.org/10.1093/mnras/stz2033
2019 doi
-
[136]
Fast Radio Bursts as Probes of Magnetic Fields in Galaxies at z < 0.5
Mannings, A.G.; Pakmor, R.; Prochaska, J.X.; van de Voort, F.; Simha, S.; Shannon, R.M.; Tejos, N.; Deller, A.; Rafelski, M. Fast Radio Bursts as Probes of Magnetic Fields in Galaxies at z < 0.5. ApJ 2023, 954, 179. https://doi.org/10.3847/1538-4357/ace7bb
2023 doi
-
[137]
Design concepts for the Cherenkov Telescope Array CTA: An advanced facility for ground-based high-energy gamma-ray astronomy
Actis, M.; Agnetta, G.; Aharonian, F.; Akhperjanian, A.; Aleksi´ c, J.; Aliu, E.; Allan, D.; Allekotte, I.; Antico, F.; Antonelli, L.A.; et al. Design concepts for the Cherenkov Telescope Array CTA: An advanced facility for ground-based high-energy gamma-ray astronomy. Exp. As...
2011 doi
-
[138]
https://doi.org/10.1142/10986
Cherenkov Telescope Array Consortium; Acharya, B.S.; Agudo, I.; Al Samarai, I.; Alfaro, R.; Alfaro, J.; Alispach, C.; Alves Batista, R.; Amans, J.P .; Amato, E.; et al.Science with the Cherenkov Telescope Array; The CTA Consortium: Island of La Palma, Spain, 2019. https://doi....
2019 doi
Reviewed August 7, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.