REVIEW 2 major objections 4 minor 101 references
The paper argues that the existing 21 km UNK tunnel, through the magnetic-rigidity relation, can host a muon collider with 10–20 TeV centre-of-mass energy—reaching the international 10 TeV reference with conventional dipoles and exceeding i
Reviewed by Pith at T0; open to challenge. T0 means a machine referee read the full paper against a public rubric. the ladder, T0–T4 →
T0 review · deepseek-v4-flash
2026-08-01 19:34 UTC pith:HHQQNKXI
load-bearing objection A mostly-review paper with an honest UNK siting extrapolation; the Eq. (4) luminosity scaling error is real but fixable, and the energy claim rests on an assumed packing fraction that the paper itself caveats. the 2 major comments →
The muon collider: expected physics, technological solutions, and the prospect of a 21 km ring at the UNK site
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
The paper's central claim is that the existing 21 km UNK ring is quantitatively plausible as a muon-collider site on energy-reach grounds. The magnetic-rigidity relation p[GeV/c]=0.2998 B[T]ρ[m], with two beams (√s=2p), radius R≈3306 m, and dipole packing fractions f=0.59 (as-built), f=0.66 (matching the international 10 TeV reference), and f=0.8 (optimistic), maps conventional 7–8.3 T dipoles to √s≈8–11 TeV and 10–16 T high-temperature-superconductor (HTS) dipoles to √s≈12–21 TeV. The paper stresses this is an extrapolation, not a design, intended to motivate a dedicated design study; the open questions it names are the achievable packing fraction in a 5.1 m bore and neutrino-radiation miti
What carries the argument
The load-bearing object is the magnetic-rigidity relation p = 0.2998 B ρ, combined with the dipole packing fraction f—the fraction of the ring circumference occupied by bending magnets, the rest being interaction regions, RF systems, and neutrino-mitigation inserts. The machinery works in three steps: the fixed circumference fixes the geometric radius R ≈ 3306 m; the field B and packing fraction f set the effective bending radius ρ = fR; and two beams of momentum p give √s = 2p. The paper calibrates f against an as-built 3 TeV proton-ring design (f≈0.59) and the international 10 TeV muon-collider reference lattice (f≈0.66), then tabulates the resulting energies for conventional and HTS dipol
Load-bearing premise
The load-bearing premise is that a muon-collider lattice can fit in the 21 km tunnel with the assumed fractions of the ring occupied by bending magnets (0.59 to 0.80); if the real fraction is lower because of the 5.1 m bore, interaction regions, and neutrino shielding, the conventional-dipole energy drops below the 10 TeV reference.
What would settle it
A dedicated lattice and siting study for the 21 km tunnel would settle the claim: if it finds an achievable dipole packing fraction below about 0.55, or that the 5.1 m bore cannot accommodate the dipoles, cryostats, and neutrino shielding together, the conventional-dipole scenario falls below about 9 TeV and the claim that conventional magnets reach the 10 TeV reference fails. Finding f ≥ 0.66 at 8.3 T, together with an acceptable off-site neutrino dose after beam sweeping, would confirm it.
If this is right
- A 10 TeV reference muon-collider program can be reached in a pre-existing 21 km ring with series-produced conventional dipoles, removing the largest long-lead civil-engineering item.
- With 10–16 T high-temperature-superconductor dipoles the same ring reaches 12–21 TeV, where the trilinear Higgs coupling precision improves to about 2–3% and both the thermal wino and higgsino dark-matter targets are covered.
- The luminosity penalty of the large fixed circumference (roughly 0.55 of the reference at 10 TeV) is compensated by running at the top of the energy range, because the number of stored turns depends only on the average bending field.
- Neutrino-radiation mitigation becomes the leading siting constraint: the flux is more forward-peaked and energetic at higher centre-of-mass energy, the tunnel is shallower than reference assumptions, and the surfacing distance of decay-plane neutrinos crosses populated districts, so a site-specific dose study is mandatory.
- The same muon-source complex yields non-collider physics—muon-catalyzed fusion, muography, muonic-atom analysis, muon spin spectroscopy, and a high-energy neutrino beamline—so scientific payoff does not wait for the collider.
Where Pith is reading between the lines
- Editorial: If the option proceeds, the ring's fixed circumference makes the top of its energy range the natural operating point; the design study's priority should therefore be high-field HTS dipoles and their cryogenics in a 5.1 m bore, not optimizing a 10 TeV baseline.
- Editorial: The same magnetic-rigidity framework applied to other large existing tunnels would allow a systematic comparison of tunnel-reuse options; the paper mentions a 27 km tunnel reuse scenario only in passing.
- Editorial: The paper's reframing of the neutrino flux as a potential aimed neutrino beamline suggests a testable siting criterion: survey exit corridors for a depopulated azimuth where a straight section could serve a parasitic high-energy neutrino detector.
- Editorial: The luminosity-scaling argument implies that a future lattice study should report the achievable packing fraction as a headline number; if f falls below about 0.55, the conventional-dipole scenario drops below 9 TeV and HTS becomes necessary rather than an upgrade.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This review argues that the existing 21 km UNK tunnel at Protvino could house a multi-TeV muon collider. It first summarizes the physics case and technology status of the IMCC muon-collider programme, then derives the centre-of-mass energy of a muon collider in the UNK ring from the magnetic-rigidity relation with adopted dipole packing factors f=0.59/0.66/0.8, obtaining √s≈8.2–25.4 TeV depending on field and filling. It extends the published energy-dependent physics reach to these energies, flags the luminosity and neutrino-mitigation caveats, and reviews muon-beam applications. The explicit message is that the estimates motivate a dedicated design study rather than substitute for one.
Significance. If the energy-reach estimate holds, the paper establishes a concrete, quantitatively grounded reason to consider reusing the UNK tunnel: with IMCC-consistent packing and HTS dipoles the ring reaches 13–21 TeV, above the IMCC 10 TeV reference. The paper is honest about its limitations — no conceptual design, no UNK-specific lattice, luminosity is assumed via the reference-programme scaling — and the rigidity arithmetic in Table 5 is correct. The review also usefully consolidates the physics/technology case and the non-collider applications. These strengths make it a valuable contribution despite the issues below.
major comments (2)
- [§4.3, Eq. (4)] The luminosity-scaling derivation contains an algebra error. From n_turns ∝ \bar{B} (Eq. 3) and L ∝ n_turns f_rev with f_rev=c/C, one has L ∝ \bar{B}/C. At fixed √s, the rigidity relation gives \bar{B}∝1/C, so L|_{fixed√s} ∝ 1/C^2, not ∝1/C as stated in Eq. (4). The quoted penalty factor C_ref/C_UNK≈0.55 for a 20.8 km ring at 10 TeV should be (C_ref/C_UNK)^2≈0.30. The subsequent discussion of the deficit closing at higher energy is accordingly too optimistic: at √s≈21 TeV (\bar{B}≈10.5 T), L is ≈(10.5/20.8)/(9.2/11.4)≈0.63 of the 10 TeV reference for equal brightness and bunch intensity, even though the per-fill turn count is larger. Please correct Eq. (4), the penalty estimate, and the surrounding text in §4.3 and Table 6.
- [§4.2, Table 5; Abstract] The claim that conventional dipoles reach the IMCC 10 TeV reference depends on the assumed packing factor. The only UNK-anchored value, the as-built UNK-II f=0.59, gives √s=9.7 TeV for 8.3 T NbTi — just below 10 TeV. The IMCC-consistent f=0.66 is transferred from a 11.4 km lattice with 14 T dipoles and is not derived for the 5.1 m UNK bore, its interaction regions, RF, injection, and neutrino-mitigation inserts. Since the abstract and conclusion present the 10–20 TeV range as the central justification, the abstract's 'reaching the IMCC 10 TeV reference with conventional dipoles' is not yet supported unless f≳0.60. Please either provide a UNK-specific packing-factor estimate (or an explicit lattice-informed bound) or soften the headline to 'around the IMCC reference', and state that the as-built f=0.59 places conventional dipoles below 10 TeV.
minor comments (4)
- [§4.3] After correcting Eq. (4), the Table 6 note 'L ∝ 1/C (Eq. 4)' must be updated to L ∝ 1/C^2.
- [§4.2] The terms 'packing factor' and 'filling factor' are used interchangeably; define one and use it consistently.
- [Figure 5] The figure legend is clear, but it would help to label the dashed/dotted curves directly with f values in the plot area.
- [§4.4] The sentence 'the muon collider is the only route that places a full-energy point-like collision at the frontier' is a strong statement; a qualifying phrase such as 'among the proposals considered here' would be more precise.
Circularity Check
No significant circularity: the UNK energy-reach estimate is an external rigidity calculation with transparently labeled packing factors, and the physics-reach table is an explicitly labeled interpolation of published studies.
full rationale
The paper's central derivation is self-contained and not circular. Section 4.2 computes UNK energy reach from the external PDG magnetic-rigidity relation (Eq. 1), the fixed UNK circumference (R = 3306 m), and a dipole packing factor f. The three f values are not fitted to the target energy: f = 0.59 is quoted from the as-built UNK-II calibration [76], f = 0.66 is obtained by inverting the external IMCC 10 TeV reference parameters (B = 14 T, C = 11.4 km), and f = 0.8 is explicitly labeled an optimistic upper value. The resulting Table 5 is arithmetic from those inputs. The physics-reach entries in Table 6 are explicitly described as interpolations or energy-extrapolations of published energy-dependent studies, not as outputs of a fit, and every row carries the luminosity caveat. The luminosity penalty Eq. (4) is derived independently from the muon lifetime and rigidity relation, not from the target claim. The paper repeatedly states that no UNK conceptual design report exists and that the estimates are meant to motivate a design study. The weakest assumption, the transferred packing fraction, is an honest engineering uncertainty rather than a claim that reduces to its own input. There are no self-citations carrying the argument and no fitted parameter is renamed as a prediction.
Axiom & Free-Parameter Ledger
free parameters (3)
- Dipole packing fraction f = 0.66 =
0.66
- Dipole packing fraction f = 0.8 =
0.8
- Reference luminosity scaling integral Ldt = 10 ab^-1 * (sqrt(s)/10 TeV)^2 =
17, 29, 44 ab^-1 at 13, 17, 21 TeV
axioms (4)
- standard math Magnetic rigidity p[GeV/c] = 0.2998 B[T] rho[m] for a stored beam (Eq. 1)
- domain assumption The UNK tunnel has circumference 20,772 m, bore 5.1 m, depth 20–60 m, and was fully excavated
- domain assumption Luminosity of a muon collider at fixed beam brightness and bunch intensity scales as L ∝ n_turns f_rev
- domain assumption Published energy-dependent muon-collider sensitivity curves extrapolate to UNK energies
read the original abstract
A multi-TeV muon collider has emerged as one of the most compelling options for the post-LHC energy frontier. Because the muon is an elementary particle that radiates $\sim\!10^9$ times less synchrotron power than an electron of the same energy, a circular muon collider delivers the full beam energy to the hard collision in a remarkably compact ring, combining the energy reach of a $100$~TeV-class proton machine with the clean final states of a lepton collider. This review summarizes the expected physics results -- Higgs couplings and self-couplings, electroweak and vector-boson-fusion processes, the top quark, a broad beyond-the-Standard Model programme, and a near-complete closure of the thermal window for electroweak WIMP dark matter -- and the status of the enabling technologies, emphasizing for each challenge how it is being solved and where the solution is documented: muon production, ionization cooling (demonstrated in the transverse plane by MICE), rapid acceleration, high-field HTS magnets, the machine-detector interface, and the neutrino-flux constraint. Building on this foundation, this review examines the prospect of housing a muon collider in the existing 21~km UNK tunnel near Protvino, where the magnetic-rigidity relation maps realistic arc fields onto a centre-of-mass energy of order $10$-$20$ TeV -- reaching the IMCC 10~TeV reference with conventional dipoles and exceeding it with high-temperature-superconductor dipoles. It closes with a discussion of non-collider applications of the intense muon beams such a facility would develop -- muon-catalyzed fusion, muography, muonic-atom isotopic analysis, and muon spin spectroscopy -- several with a long tradition in the Russian physics institutes.
Figures
Reference graph
Works this paper leans on
-
[1]
J. P. Delahaye, M. Diemoz, K. Long, B. Mansouli´ e, N. Pastrone, L. Rivkin, D. Schulte, A. Skrin- sky, A. Wulzer, Muon colliders, arXiv:1901.06150 [physics.acc-ph] (2019).doi:10.48550/arXiv. 1901.06150
-
[2]
Al Ali, et al., The muon smasher’s guide, Rept
H. Al Ali, et al., The muon smasher’s guide, Rept. Prog. Phys. 85 (2022) 084201.doi:10.1088/ 1361-6633/ac6678
2022
-
[3]
K. Long, D. Lucchesi, M. Palmer, N. Pastrone, D. Schulte, V. Shiltsev, Muon colliders to expand frontiers of particle physics, Nat. Phys. 17 (2021) 289–292.doi:10.1038/s41567-020-01130-x
-
[4]
Costantini, et al., Vector boson fusion at multi-TeV muon colliders, JHEP 09 (2020) 080
A. Costantini, et al., Vector boson fusion at multi-TeV muon colliders, JHEP 09 (2020) 080. doi:10.1007/JHEP09(2020)080
-
[5]
Accettura, et al., Towards a muon collider, Eur
C. Accettura, et al., Towards a muon collider, Eur. Phys. J. C 83 (2023) 864.doi:10.1140/ epjc/s10052-023-11889-x
2023
-
[6]
F. F. Tikhonin, On the effects at colliding muon beams, Tech. Rep. JINR-P2-4120, Joint Institute for Nuclear Research, Dubna, in Russian; digitised as arXiv:0805.3961 (1968).doi:10.48550/ arXiv.0805.3961
work page internal anchor Pith review Pith/arXiv arXiv doi:10.48550/arxiv.0805.3961 1968
-
[7]
G. I. Budker, Accelerators and colliding beams, in: Proceedings of the 7th International Confer- ence on High-Energy Accelerators, Yerevan, 1969, pp. 33–39, reprinted in AIP Conf. Proc. 352 (1996) 4. URLhttps://inspirehep.net/literature/931295
1969
-
[8]
Y. M. Ado, V. I. Balbekov, Use of ionization friction in the storage of heavy particles, Sov. Atom. Energy 31 (1971) 731–736, [At. Energ. 31 (1971) 40].doi:10.1007/BF01123390. 21 L. V. Dudko Natural Science Review0000 (2026)
-
[9]
A. N. Skrinsky, V. V. Parkhomchuk, Cooling methods for beams of charged particles, Sov. J. Part. Nucl. 12 (1981) 223–247, [Fiz. Elem. Chast. Atom. Yadra 12 (1981) 557]
1981
-
[10]
Neuffer, Principles and applications of muon cooling, Part
D. Neuffer, Principles and applications of muon cooling, Part. Accel. 14 (1983) 75–90, fERMILAB-FN-0378.doi:10.2172/1156195
-
[11]
J. C. Gallardo, R. B. Palmer, A. V. Tollestrup, et al.,µ+µ− collider: A feasibility study, Tech. Rep. BNL-52503, FERMILAB-CONF-96-092, LBNL-38946, BNL / Fermilab / LBNL, eConf C960625, R4 (1996). URLhttps://inspirehep.net/literature/422722
1996
-
[12]
C. M. Ankenbrandt, et al., Status of muon collider research and development and future plans, Phys. Rev. ST Accel. Beams 2 (1999) 081001.doi:10.1103/PhysRevSTAB.2.081001
-
[13]
R. B. Palmer, Muon colliders, Rev. Accel. Sci. Tech. 7 (2014) 137–159.doi:10.1142/ S1793626814300072
2014
-
[14]
M. Bogomilov, et al., Demonstration of cooling by the Muon Ionization Cooling Experiment, Nature 578 (2020) 53–59.doi:10.1038/s41586-020-1958-9
-
[15]
Bogomilov, et al., Transverse emittance reduction in muon beams by ionization cooling, Nat
M. Bogomilov, et al., Transverse emittance reduction in muon beams by ionization cooling, Nat. Phys. 20 (2024) 1558–1563.doi:10.1038/s41567-024-02547-4
-
[16]
CERN Council, 2020 Update of the European Strategy for Particle Physics, Tech. Rep. CERN- ESU-015-2020, CERN (2020).doi:10.17181/ESU2020
doi:10.17181/esu2020 2020
-
[17]
Adolphsen, et al., European Strategy for Particle Physics — Accelerator R&D Roadmap, CERN Yellow Rep
C. Adolphsen, et al., European Strategy for Particle Physics — Accelerator R&D Roadmap, CERN Yellow Rep. Monogr. 1 (2022) 1–270.doi:10.23731/CYRM-2022-001
-
[18]
Accettura, et al., Interim report for the International Muon Collider Collaboration, Tech
C. Accettura, et al., Interim report for the International Muon Collider Collaboration, Tech. Rep. CERN-2024-002, CERN (2024).doi:10.23731/CYRM-2024-002
-
[19]
C.Accettura, etal., Themuoncollider, arXiv:2504.21417[physics.acc-ph](2025).doi:10.48550/ arXiv.2504.21417
-
[20]
Taylor, et al., MuCol Milestone Report No
R. Taylor, et al., MuCol Milestone Report No. 7: consolidated parameters, arXiv:2510.27437 [physics.acc-ph] (2025).doi:10.48550/arXiv.2510.27437
-
[21]
rep., DOE/NSF HEPAP (2023)
Particle Physics Project Prioritization Panel (P5), Exploring the Quantum Universe: Pathways to Innovation and Discovery in Particle Physics, Tech. rep., DOE/NSF HEPAP (2023). URLhttps://www.usparticlephysics.org/2023-p5-report/
2023
-
[22]
K. M. Black, et al., Muon collider forum report, JINST 19 (2024) T02015.doi:10.1088/ 1748-0221/19/02/T02015
2024
-
[23]
M. Begel, et al., United States muon collider community white paper for the European Strat- egy for Particle Physics update, arXiv:2503.23695 [hep-ex] (2025).doi:10.48550/arXiv.2503. 23695
-
[24]
A. de Gouvˆ ea, et al., US national input to the 2026 update of the European Strategy for Particle Physics, arXiv:2602.15295 [hep-ex] (2026).doi:10.48550/arXiv.2602.15295
-
[25]
rep., The National Academies Press, Washington, DC (2025)
National Academies of Sciences, Engineering, and Medicine, Elementary Particle Physics: Progress and Promise, Tech. rep., The National Academies Press, Washington, DC (2025). doi:10.17226/28909
-
[26]
D. Buttazzo, R. Franceschini, A. Wulzer, Two paths towards precision at a very high energy lepton collider, JHEP 05 (2021) 219.doi:10.1007/JHEP05(2021)219
-
[27]
T. Roser, et al., Report of the Snowmass 2021 collider implementation task force, JINST 18 (2023) P05018.doi:10.1088/1748-0221/18/05/P05018
-
[28]
Aim` e, et al., Muon collider physics summary, arXiv:2203.07256 [hep-ph] (2022).doi:10
C. Aim` e, et al., Muon collider physics summary, arXiv:2203.07256 [hep-ph] (2022).doi:10. 48550/arXiv.2203.07256
-
[29]
T. Han, D. Liu, I. Low, X. Wang, Electroweak scattering at the muon shot, Phys. Rev. D 110 (2024) 013005.doi:10.1103/PhysRevD.110.013005
-
[30]
T. Han, Y. Ma, K. Xie, High energy leptonic collisions and electroweak parton distribution functions, Phys. Rev. D 103 (2021) L031301.doi:10.1103/PhysRevD.103.L031301. 22 L. V. Dudko Natural Science Review0000 (2026)
-
[31]
Arduini, et al., Comparative evaluation of future collider options, CERN Yellow Rep
G. Arduini, et al., Comparative evaluation of future collider options, CERN Yellow Rep. Monogr. CERN-2025-011 (2025).doi:10.23731/CYRM-2025-0011
-
[32]
V. D. Barger, M. S. Berger, J. F. Gunion, T. Han, Higgs boson physics in the s-channel atµ+µ− colliders, Phys. Rept. 286 (1997) 1–51.doi:10.1016/S0370-1573(96)00041-5
-
[33]
M. Forslund, P. Meade, Precision Higgs width and couplings with a high energy muon collider, JHEP 01 (2024) 182.doi:10.1007/JHEP01(2024)182
-
[34]
Castelli, Higgs physics at the muon collider, Physics 8 (2025) 28.doi:10.3390/ physics8010028
L. Castelli, Higgs physics at the muon collider, Physics 8 (2025) 28.doi:10.3390/ physics8010028
2025
-
[35]
Andreetto, et al., Higgs physics at a√s= 3TeV muon collider with detailed detector simu- lation, Eur
P. Andreetto, et al., Higgs physics at a√s= 3TeV muon collider with detailed detector simu- lation, Eur. Phys. J. C 85 (2025) 221.doi:10.1140/epjc/s10052-025-13923-6
-
[36]
E. Celada, T. Han, W. Kilian, N. Kreher, Y. Ma, F. Maltoni, D. Pagani, J. Reuter, T. Striegl, K. Xie, Probing Higgs-muon interactions at a multi-TeV muon collider, JHEP 08 (2024) 021. doi:10.1007/JHEP08(2024)021
-
[37]
D. Buttazzo, P. Paradisi, Probing the muong−2anomaly with the Higgs boson at a muon collider, Phys. Rev. D 104 (2021) 075021.doi:10.1103/PhysRevD.104.075021
-
[38]
P. Li, Z. Liu, K.-F. Lyu, Higgs width and couplings at high energy muon colliders with forward muon detection, Phys. Rev. D 109 (2024) 073009.doi:10.1103/PhysRevD.109.073009
-
[39]
M. Ruhdorfer, E. Salvioni, A. Wulzer, Why detect forward muons at a muon collider, Phys. Rev. D 111 (2025) 053010.doi:10.1103/PhysRevD.111.053010
-
[40]
FCC Collaboration, Future Circular Collider Feasibility Study Report: Volume 1 — Physics, Experiments, Detectors, Tech. Rep. CERN-FCC-PHYS-2025-0001, CERN, arXiv:2505.00272 (2025).doi:10.48550/arXiv.2505.00272
-
[41]
J. de Blas, et al., The physics case of a 3 TeV muon collider stage, arXiv:2203.07261 [hep-ph] (2022).doi:10.48550/arXiv.2203.07261
-
[42]
Chiesa, F
M. Chiesa, F. Maltoni, L. Mantani, B. Mele, F. Piccinini, E. Vryonidou, Measuring the quar- tic Higgs self-coupling at a multi-TeV muon collider, JHEP 09 (2020) 098.doi:10.1007/ JHEP09(2020)098
2020
-
[43]
F. Cornet-Gomez, V. Miralles, M. Miralles L´ opez, M. Moreno Ll´ acer, M. Vos, Future collider constraints on top-quark operators, JHEP 10 (2025) 156.doi:10.1007/JHEP10(2025)156
-
[44]
T. Han, D. Liu, S. Wang, Top-quark electroweak dipole moment at a high-energy muon collider, Phys. Rev. D 111 (2025) 035015.doi:10.1103/PhysRevD.111.035015
-
[45]
Frixione, et al., Precision phenomenology at multi-TeV muon colliders, JHEP 09 (2025) 036
S. Frixione, et al., Precision phenomenology at multi-TeV muon colliders, JHEP 09 (2025) 036. doi:10.1007/JHEP09(2025)036
-
[46]
T. Han, M. Low, T. A. Wu, K. Xie, Colorful particle production at high-energy muon colliders, JHEP 06 (2025) 109.doi:10.1007/JHEP06(2025)109
-
[47]
R. Franceschini, G. Greco, Higgs and BSM physics at the future muon collider, Symmetry 13 (2021) 851.doi:10.3390/sym13050851
-
[48]
R. Bedi, T. Gherghetta, S. Kumar, P. Li, Z. Liu, Heavy QCD axions at high-energy muon colliders, JHEP 01 (2026) 003.doi:10.1007/JHEP01(2026)003
-
[49]
P. Asadi, H. Bagherian, K. Fraser, S. Homiller, Q. Lu, Lepton flavor violation: from muon decays to muon colliders, Phys. Rev. D 113 (2026) 015003.doi:10.1103/bg4z-dmgb
-
[50]
P. Dehghani, M. Frank, B. Fuks, Vector boson fusion signatures of superheavy Majorana neutri- nos at muon colliders, Phys. Rev. D 112 (2025) 035020.doi:10.1103/3sxk-glsw
-
[51]
S. C. ˙Inan, A. V. Kisselev, Probe of a Randall-Sundrum-like model from muon pair production at a high energy muon collider, J. Phys. G 52 (2025) 025004.doi:10.1088/1361-6471/ada173
-
[52]
H. Amarkhail, S. C.˙Inan, A. V. Kisselev, Probing anomalousγγγγcouplings at a future muon collider, Nucl. Phys. B 1005 (2024) 116592.doi:10.1016/j.nuclphysb.2024.116592
arXiv 2024
-
[53]
H. Amarkhail, S. C.˙Inan, A. V. Kisselev, Probing anomalousZγγγcouplings at a future muon 23 L. V. Dudko Natural Science Review0000 (2026) collider, J. Phys. G 52 (2025) 015001.doi:10.1088/1361-6471/ad8cf3
-
[54]
S. C. ˙Inan, A. V. Kisselev, Probe of axion-like particles in vector boson scattering at a muon collider, J. Phys. G 50 (2023) 105002.doi:10.1088/1361-6471/ace3df
-
[55]
R. Capdevilla, F. Meloni, R. Simoniello, J. Zurita, Hunting wino and higgsino dark matter at the muon collider with disappearing tracks, JHEP 06 (2021) 133.doi:10.1007/JHEP06(2021)133
-
[56]
R. Capdevilla, F. Meloni, J. Zurita, Discovering electroweak interacting dark matter at muon colliders using soft tracks, Phys. Rev. Lett. 134 (2025) 181802.doi:10.1103/PhysRevLett.134. 181802
-
[57]
R. Franceschini, X. Zhao, Going all the way in the search for WIMP dark matter at the muon collider through precision measurements, Eur. Phys. J. C 83 (2023) 552.doi:10.1140/epjc/ s10052-023-11724-3
doi:10.1140/epjc/ 2023
-
[58]
T. Han, Z. Liu, L.-T. Wang, X. Wang, WIMPs at high energy muon colliders, Phys. Rev. D 103 (2021) 075004.doi:10.1103/PhysRevD.103.075004
-
[59]
J. Braathen, M. Gabelmann, T. Robens, P. Stylianou, Probing the inert doublet model via vector-boson fusion at a muon collider, JHEP 05 (2025) 055.doi:10.1007/JHEP05(2025)055
-
[60]
Aliberti, et al., The anomalous magnetic moment of the muon in the Standard Model: an update, Phys
R. Aliberti, et al., The anomalous magnetic moment of the muon in the Standard Model: an update, Phys. Rept. 1143 (2025) 1–158.doi:10.1016/j.physrep.2025.08.002
-
[61]
D. P. Aguillard, et al., Measurement of the positive muon anomalous magnetic moment to 127 ppb, Phys. Rev. Lett. 135 (2025) 101802.doi:10.1103/7clf-sm2v
-
[62]
R.Capdevilla, D.Curtin, Y.Kahn, G.Krnjaic, No-losetheoremfordiscoveringthenewphysicsof (g−2) µ atmuoncolliders, Phys.Rev.D105(2022)015028.doi:10.1103/PhysRevD.105.015028
-
[63]
R. Ding, A. Ruzi, S. Qian, A. Levin, Y. Wu, Q. Li, Quantum entanglement between gauge boson pairs at a muon collider, arXiv:2504.09832 [hep-ph] (2025).doi:10.48550/arXiv.2504.09832
-
[64]
C. Bell, et al., MAIA: a new detector concept for a 10 TeV muon collider, arXiv:2502.00181 [physics.ins-det] (2025).doi:10.48550/arXiv.2502.00181
-
[65]
P. Andreetto, et al., MUSIC: a multi-purpose detector concept for physics at the 10 TeV muon collider, Eur. Phys. J. C 86 (2026) 554.doi:10.1140/epjc/s10052-026-15654-8
-
[66]
D. Stratakis, N. Mokhov, M. Palmer, et al., A muon collider facility for physics discovery, arXiv:2203.08033 [physics.acc-ph] (2022).doi:10.48550/arXiv.2203.08033
-
[67]
R. Al-Harthy, FLUKA-based optimization of muon production target design, arXiv:2602.16672 [physics.acc-ph] (2026).doi:10.48550/arXiv.2602.16672
-
[68]
Y. Hamada, R. Kitano, R. Matsudo, H. Takaura,µTRISTAN, Prog. Theor. Exp. Phys. 2022 (5) (2022) 053B02.doi:10.48550/arXiv.2201.06664
-
[69]
Stratakis, Essay: A path for the construction of a muon collider, Phys
D. Stratakis, Essay: A path for the construction of a muon collider, Phys. Rev. Lett. 134 (2025) 160001.doi:10.1103/PhysRevLett.134.160001
-
[70]
Magnet R&D for the Muon Collider -- European Strategy Input
L. Bottura, et al., Magnet R&D for the muon collider: a European Strategy input, arXiv:2503.21185 [physics.acc-ph] (2025).doi:10.48550/arXiv.2503.21185
work page internal anchor Pith review Pith/arXiv arXiv doi:10.48550/arxiv.2503.21185 2025
-
[71]
The 2025 Roadmaps for the US Magnet Development Program
L. Cooley, et al., The 2025 roadmaps for the US Magnet Development Program, arXiv:2508.19220 [physics.acc-ph] (2025).doi:10.48550/arXiv.2508.19220
work page internal anchor Pith review Pith/arXiv arXiv doi:10.48550/arxiv.2508.19220 2025
-
[72]
N. Bartosik, et al., Simulated detector performance at the muon collider, arXiv:2203.07964 [hep- ex] (2022).doi:10.48550/arXiv.2203.07964
-
[73]
D. Ally, L. Carpenter, T. Holmes, L. Lee, P. Wagenknecht, Strategies for beam-induced back- ground reduction at muon colliders, arXiv:2203.06773 [physics.ins-det] (2022).doi:10.48550/ arXiv.2203.06773
-
[74]
M. Casarsa, D. Lucchesi, L. Sestini, Experimentation at a muon collider, Ann. Rev. Nucl. Part. Sci. 74 (2024) 233–261.doi:10.1146/annurev-nucl-102622-011319
-
[75]
European Strategy Group, The European Strategy for Particle Physics: 2026 update — Recom- mendations by the European Strategy Group, Tech. Rep. CERN-ESU-2025-002, CERN, adopted 24 L. V. Dudko Natural Science Review0000 (2026) by the CERN Council on 22 May 2026 (2026). URLhttps://cds.cern.ch/record/2950671
arXiv 2026
-
[76]
Gurov, UNK status and plans, in: Proceedings of the 1995 Particle Accelerator Conference (PAC’95), Dallas, IEEE, 1996, pp
G. Gurov, UNK status and plans, in: Proceedings of the 1995 Particle Accelerator Conference (PAC’95), Dallas, IEEE, 1996, pp. 416–418. URLhttps://proceedings.jacow.org/p95/ARTICLES/MPG/MPG06.PDF
1995
-
[77]
D. Neuffer, V. Shiltsev, On the feasibility of a pulsed 14 TeV c.m.e. muon collider in the LHC tunnel, JINST 13 (2018) T10003.doi:10.1088/1748-0221/13/10/T10003
-
[78]
R. L. Workman, et al., Review of Particle Physics, Prog. Theor. Exp. Phys. 2022 (2022) 083C01. doi:10.1093/ptep/ptac097
-
[79]
N. V. Mokhov, A. Van Ginneken, Neutrino radiation at muon colliders and storage rings, J. Nucl. Sci. Technol. 37 (sup1) (2000) 172–179.doi:10.1080/00223131.2000.10874869
arXiv 2000
-
[80]
Geer, Neutrino beams from muon storage rings: Characteristics and physics potential, Phys
S. Geer, Neutrino beams from muon storage rings: Characteristics and physics potential, Phys. Rev. D 57 (1998) 6989–6997, [Erratum: Phys. Rev. D 59, 039903 (1999)].doi:10.1103/ PhysRevD.57.6989
1998
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