REVIEW 2 major objections 5 minor 2 cited by
Kinematic evidence of magnetospheric accretion for Herbig Ae stars with JWST NIRSpec
T0 review · 2 major / 5 minor · reviewed 2026-08-11 · deepseek-v4-flash
Pith's one-line read Hydrogen emission lines from three Herbig Ae stars trace magnetospheric infall, not disc winds.
desk verdict A genuinely new kinematic dataset that makes a plausible case for magnetospheric accretion in three Herbig Ae stars, but the case rests on an under-tested Stark broadening assumption. 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 central diagnostic is the FWHM-versus-$n_{\mathrm{up}}$ ladder read across three hydrogen series, combined with line-pair optical-depth ratios. For each source, at least fifteen Paschen, Brackett, and Pfund lines are measured after subtracting synthetic photospheric absorption; the ratio of two spectrally resolved lines ($\mathrm{Br}_{11}/\mathrm{Br}_{6}$ and $\mathrm{Pf}_{17}/\mathrm{Pf}_{11}$) is then compared with Case B recombination and optically thick limits to map optical depth against velocity. The paper also computes the free-fall velocity expected from magnetospheric accretion, using a truncation radius of $3\pm1\,R_*$, and the Keplerian velocity of disc gas, and uses these as yardsticks for the observed $\mathrm{Br}_{11}$ FWHM.
What would settle it
Re-observe the same sources at resolving power $\lambda/\Delta\lambda \gtrsim 10^4$ and fit the line wings for a Lorentzian (pressure-broadening) component; if a significant Stark component appears, or if a non-accreting comparison star with a hot inner disc shows the same FWHM-$n_{\mathrm{up}}$ and optically-thick-wing pattern, the magnetospheric accretion interpretation would lose its kinematic support.
Extended reading notes
Core claim
Across all five sources, lines with high upper energy level $n_{\mathrm{up}}$ are systematically broader than lines with low $n_{\mathrm{up}}$, and line-ratio maps for $\mathrm{Br}_{11}/\mathrm{Br}_{6}$ and $\mathrm{Pf}_{17}/\mathrm{Pf}_{11}$ show that the high-velocity wings are the most optically thick while the low-velocity cores are optically thin. The paper interprets this pair of trends as the signature of a magnetospheric accretion flow, where gas nears free-fall speed and high density close to the stellar surface produces both the broadest and the most optically thick emission. It rules out magneto-centrifugal winds on the grounds that those predict the opposite ordering, and demonstrates that a Keplerian disc cannot supply the observed widths: comparing $\mathrm{Br}_{11}$ FWHMs with expected free-fall velocities (truncation radius $3\pm 1\,R_*$) and Keplerian velocities shows that sources 185, 238, and 823 are too broad even for an edge-on disc, while sources 251 and 469 remain ambiguous. The paper concludes that hydrogen line emission from the three Herbig Ae stars most plausibly originates in magnetospheric accretion, while cautioning that a five-source sample is too small to generalise.
Load-bearing premise
The argument assumes Stark broadening is negligible for the Paschen, Brackett, and Pfund lines, so the measured FWHMs trace bulk gas motion rather than pressure broadening; the paper itself notes in Section 7.4 that Stark broadening acts more strongly on high-$n_{\mathrm{up}}$ transitions and could mimic the observed trend.
Editorial extensions
If this is right
- Hydrogen-line accretion-rate calibrations for Herbig Ae stars would rest on a more secure physical basis, because the lines are tracing actual infall rather than outflow in at least some systems.
- The same kinematic test can be applied to existing archival spectra of other Herbig AeBe stars, so the sample can grow without new JWST observations.
- For all five sources, magneto-centrifugal wind emission is excluded as the dominant hydrogen-line mechanism, so angular-momentum loss through such winds is not required to explain these lines.
- For sources 251 and 469, only higher spatial or spectral resolution observations can distinguish magnetospheric accretion from a Keplerian disc.
Reading between the lines
- Beyond the paper: the FWHM-vs-$n_{\mathrm{up}}$ ladder could be used to revisit T Tauri spectra, where Stark broadening is weaker, to see whether the same trend cleanly separates accretion from wind dominance in lower-mass stars.
- A direct test of the environmental hypothesis would be to run the identical analysis on isolated Herbig Ae stars: if wind signatures appear preferentially among isolated sources, the extreme UV field of NGC 3603 is likely suppressing winds.
- If the magnetospheric signature correlates with measured stellar magnetic field strengths across a larger sample, that would tie the kinematic diagnostic to the physical condition (a truncating magnetosphere) responsible for the accretion flow.
- The optically thin cores and optically thick wings could be modeled with radiative transfer to estimate electron densities and infall velocities directly, giving a stronger quantitative test than the FWHM comparison alone.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This manuscript presents JWST NIRSpec 1.66–3.2 μm spectra of five pre-main-sequence sources in NGC 3603. The authors fit HST optical photometry with MCMC plus Phoenix model spectra to derive Teff, M*, R*, and A(V), classify three objects as Herbig Ae stars, and then measure Gaussian FWHMs and line-profile ratios for Paschen, Brackett, and Pfund transitions. They find that FWHM increases with upper principal quantum number nup and that the high-velocity wings are more optically thick than the line cores. Comparing the measured FWHMs with expected magnetospheric free-fall velocities (Eq. 2, Table 4) and Keplerian velocities (Eq. 3, Table 5), they conclude that the three Herbig Ae sources (185, 238, 823) are inconsistent with Keplerian disc emission and with magneto-centrifugal wind emission, and favour magnetospheric accretion; the remaining two sources are left ambiguous between accretion and disc emission.
Significance. If the central conclusion holds, this is one of the first kinematic, multi-series demonstrations that magnetospheric accretion can dominate hydrogen line emission in Herbig Ae stars, and it directly challenges the wind-dominated picture inferred from earlier spectro-interferometric and modelling work. The paper's strengths are its systematic use of a large number of hydrogen lines across three series, Monte Carlo error propagation on the measured FWHMs, explicit photospheric absorption subtraction, a control Class I source with the opposite kinematic trend, and a conservative 3-sigma treatment of stellar parameter uncertainties when computing expected velocities. The main weakness is that the kinematic interpretation assumes Doppler broadening throughout; the paper itself concedes in Sect. 7.4 that Stark broadening can induce qualitatively similar FWHM-versus-nup trends, and the quantitative case against Stark broadening is not made for the high-nup Pfund lines that drive the trend.
major comments (2)
- The treatment of Stark broadening is the load-bearing weakness of the kinematic argument. The authors acknowledge that Stark broadening 'can induce qualitatively similar FWHM trends as those that we have presented', but the dismissal is based on literature calculations for Hα and Brγ, a non-quantitative statement that the observed wings extend only to ~300 km/s, and the fact that photospheric subtraction did not change the trend. None of these directly constrains the electron density and temperature in the actual magnetospheric accretion flows of these five sources, where the high-nup Pfund lines are most vulnerable to Stark broadening. Since the Keplerian-disc exclusion in §7.3.4/Table 5 and the free-fall comparison in §7.2/Table 4 use the measured FWHMs as Doppler velocity indicators, an unmodelled pressure-broadening contribution would directly weaken the conclusion that sources 185, 238, and 823 require magnetospheric accretion. I request a quantitative estimate or model of Stark-broadened widths and profile wings for the observed Paschen, Brackett, and Pfund transitions over a plausible range of electron densities and temperatures in the accretion column, so that the measured FWHM trend and wing shapes can be used to place an explicit upper limit on the Stark contribution.
- The comparison of measured FWHMs to v_ff and v_kep implicitly equates a Gaussian FWHM with a maximum line-of-sight velocity. FWHM is not the terminal velocity of the flow: it depends on the optical depth, the line profile shape, the spatial distribution of the emitting gas, and the unresolved 70 km/s instrumental line spread function. For Keplerian rotation in particular, the toy model in §7.3.4 shows a double-peaked profile whose FWHM and peak-to-peak separation are different quantities; comparing FWHM directly with the single value v_kep sin(i) in Table 5 is therefore not a full forward-model test. The 3-sigma stellar parameter uncertainties and edge-on geometry make the exclusion numerically conservative for sources 238 and 823, and probably also for 185, but the authors should state this limitation explicitly and, ideally, compute the FWHM predicted by the toy disc model at NIRSpec resolution for the relevant inclinations rather than comparing with a single kinematic velocity.
minor comments (5)
- The discussion of the point-source resolving power of ~4300 and the statement that the LSF is not Nyquist sampled should be clarified: the current text reads as if the 'side effect' is a cause rather than a consequence of the higher resolution for point sources.
- The figure captions describe the series colours but not the dashed-versus-solid line styles for pre- and post-photospheric-subtraction measurements; a legend or a more explicit caption entry would make the figures easier to interpret.
- The transition notation is inconsistent: the main text refers to Br11 and Pf17, while the appendix tables use labels such as Br11−4 and Pf17−5; please unify the notation and define it once in the text.
- There are typographical errors in §4.1 ('This is especially for true for Herbig stars') and a subject-verb agreement issue in 'The high luminosities and lack of absorption features ... is naturally explained'; these should be corrected during language editing.
- In the optical-depth diagrams, the boundary between 'optically thin', 'partially optically thick', and 'fully optically thick' regimes depends on Eq. (1) and on the adopted Storey & Hummer values, but the caption does not state the numerical limits used for each line pair; adding these values would make the diagrams reproducible.
Circularity Check
No significant circularity: expected MA and Keplerian velocities are computed from SED-fitted stellar parameters and scanned inclinations, not fitted to the measured line widths; the wind-vs-MA discrimination rests on external models and an independent wind source (TMC1A), and the self-citations and H-alpha target selection do not force the kinematic conclusion.
full rationale
Walking the derivation chain, no step reduces to its own inputs by construction. The kinematic test is not a fit: v_ff (Eq. 2) and v_kep (Eq. 3) are computed from stellar parameters obtained by an MCMC SED fit to HST photometry (Section 4.2, benchmarked against MUSE spectroscopy in Section 4.3) and from scanned inclinations, then compared to independently measured FWHMs and line-profile ratios; the velocity scales are never adjusted to match the line widths. The MA-versus-wind discrimination is anchored externally: the accelerating-wind expectation (narrow high-excitation lines, optically thick cores, thin wings) comes from external models (Muzerolle et al. 1998a; Lima et al. 2010), and the wind case is demonstrated with archival TMC1A data (Section 7.1) whose opposite FWHM and optical-depth patterns were independently attributed to an outflow by Harsono et al. (2023). Self-citations (Rogers et al. 2024a,b,c) supply target selection, flux calibration, M_acc, and M*/R* inputs, but those inputs were not derived from the target conclusion, and the central comparison (FWHM > v_kep for sources 185, 238, 823) does not reduce to them. Two manuscript-flagged limitations are robustness concerns rather than circularity: (1) Section 7.4 concedes Stark broadening 'can induce qualitatively similar FWHM trends as those that we have presented' and dismisses it via external literature and a non-quantitative wing check - a physical degeneracy in the Doppler assumption, not a self-referential reduction; (2) the sample was pre-selected as accretion-active from photometric H-alpha (Section 2.1), biasing the sources toward accreting objects without determining the MA-versus-wind distinction actually tested. The Keplerian exclusion also compares FWHM directly to v_kep at the stellar surface rather than to a rotationally broadened profile; this is a modelling choice relevant to correctness, not circularity. Score 2: the derivation is essentially self-contained; the self-citations are present but not load-bearing.
Assumptions & free parameters
free parameters (7)
- Teff per source (MCMC SED fit) =
185: 7553 K; 238: 9893 K; 251: 6282 K; 469: 5276 K; 823: 8967 K
- M* per source (evolutionary tracks) =
185: 6.78; 238: 7.06; 251: 6.12; 469: 4.24; 823: 5.54 M_sun
- R* per source (evolutionary tracks) =
185: 15.35; 238: 12.27; 251: 17.18; 469: 9.96; 823: 9.46 R_sun
- A(V) per source (MCMC SED fit) =
185: 5.82; 238: 6.88; 251: 5.67; 469: 4.83; 823: 8.09 mag
- r_lambda veiling per source =
185: 3.6; 238: 0.73; 251: 5.91; 469: 12.9; 823: 5.65
- Rtrunc (magnetospheric truncation radius) =
3 ± 1 R*
- Inclination i =
not fitted; 0-90 deg scanned
assumptions (6)
- domain assumption The magnetospheric accretion flow can be approximated by free-fall from a truncation radius of 3 ± 1 R* (Eq. 2).
- domain assumption In an accelerating magneto-centrifugal wind, high-excitation lines form near the launch point and are narrow, while low-excitation lines are broad; line cores are optically thick and wings thin (Section 7.1).
- domain assumption Stark broadening does not contribute significantly to the widths of the Paschen, Brackett, and Pfund lines (Section 7.4).
- domain assumption Phoenix stellar models, fixed metallicity [Fe/H]=0, log g=4.0, and the Gordon et al. (2023) extinction curve with R(V)=4.8 adequately describe the photospheres (Section 4.2).
- standard math Case B recombination (Storey and Hummer 1995) gives the optically thin ratio for the Br11/Br6 and Pf17/Pf11 line pairs (Section 6.2).
- domain assumption The He I-scaled nebular subtraction removes all nebular and ionisation-front hydrogen emission without changing the stellar line profiles (Section 3.2).
Cite this review
Pith. "Pith review of Kinematic evidence of magnetospheric accretion for Herbig Ae stars with JWST NIRSpec." pith.science (2026). https://pith.science/paper/XFSH6ZRM
@misc{pith2026241205668,
author = {Pith},
title = {Pith review of: Kinematic evidence of magnetospheric accretion for Herbig Ae stars with JWST NIRSpec},
year = {2026},
howpublished = {\url{https://pith.science/paper/XFSH6ZRM}},
note = {Machine review of arXiv:2412.05668}
}
abstract
Hydrogen emission lines have been used to estimate the mass accretion rate of pre-main-sequence stars for over $25$ years, although the physical origin of these lines is still unclear. Magnetospheric accretion (MA) and magneto-centrifugal winds are the two most often invoked mechanisms. Using a combination of HST photometry and new JWST NIRSpec spectra in the range $1.66 - 3.2 \; \mu m$, we analysed the emission line spectra of five sources to attempt to reveal the physical origin of their hydrogen emission lines. These sources reside in NGC 3603, a Galactic massive star forming region. We performed fits of the SEDs of the five sources employing a Markov chain Monte Carlo exploration to estimate $T_{eff}$, $R_{*}$, $M_{*}$, and $A(V)$ for each source. We performed a kinematic analysis across three spectral series of hydrogen lines (Paschen, Brackett, and Pfund). We studied the full width at half maximum and optical depth of the lines in order to constrain the emission origin. We calculated the expected velocities from MA as well as gas in Keplerian orbit for our sources. All five sources have SEDs consistent with young intermediate-mass stars. We classified three of these sources as Herbig Ae type stars based on their $T_{eff}$. Hydrogen lines with high upper energy levels $n_{up}$ tend to be significantly broader than lines with a lower $n_{up}$. The optical depth of the emission lines is also highest for the high-velocity component of each line, and it becomes optically thin in the low-velocity component. Emission from magneto-centrifugal winds is not consistent with any of our observations. Two sources are consistent with emission from a Keplerian disc, or MA. The remaining three sources are only consistent with emission from MA. In the future, this approach can be applied to more statistically significant samples of Herbig AeBe spectra, including existing archival observations.
Figures
Figures from the paper (6 more)
Forward citations
Cited by 2 Pith papers
-
XUE. JWST spectroscopy of externally irradiated disks around young intermediate-mass stars
Externally irradiated intermediate-mass disks in NGC 6357 retain molecular richness comparable to isolated T Tauri disks, with hot water common and no clear irradiation chemistry.
-
Externally irradiated young stars in NGC 3603. A JWST NIRSpec catalogue of pre-main-sequence stars in a massive star formation region
A JWST NIRSpec catalog of 42 accreting pre-main-sequence stars in NGC 3603 shows accretion rates higher, and ages older, than typical low-mass star-forming regions.
Reference graph
Works this paper leans on
-
[1]
Abbott, D. C. 1982, Astrophysical Journal, Part 1, vol. 259, Aug. 1, 1982, p. 282-301., 259, 282
1982
-
[2]
2021, Astronomy & Astrophysics, 652, A72
Alcal \'a , J., Gangi, M., Biazzo, K., et al. 2021, Astronomy & Astrophysics, 652, A72
2021
-
[3]
2017, Astronomy & Astrophysics, 600, A20
Alcal \'a , J., Manara, C., Natta, A., et al. 2017, Astronomy & Astrophysics, 600, A20
2017
-
[4]
2014, Astronomy & Astrophysics, 561, A2
Alcal \'a , J., Natta, A., Manara, C., et al. 2014, Astronomy & Astrophysics, 561, A2
2014
-
[5]
2017, Astronomy & Astrophysics, 606, A48
Antoniucci, S., Nisini, B., Biazzo, K., et al. 2017, Astronomy & Astrophysics, 606, A48
2017
-
[6]
Baker, J. G. & Menzel, D. H. 1938, Astrophysical Journal, vol. 88, p. 52, 88, 52
work page 1938
-
[7]
2010, The Astrophysical Journal, 720, 1108
Beccari, G., Spezzi, L., De Marchi, G., et al. 2010, The Astrophysical Journal, 720, 1108
work page 2010
-
[8]
P., Naylor, T., Mayne, N., Jeffries, R., & Littlefair, S
Bell, C. P., Naylor, T., Mayne, N., Jeffries, R., & Littlefair, S. 2013, Monthly Notices of the Royal Astronomical Society, 434, 806
work page 2013
Show all 85 references
-
[9]
Blandford, R. D. & Payne, D. 1982, Monthly Notices of the Royal Astronomical Society, 199, 883
1982
-
[10]
& Catala, C
B \"o hm, T. & Catala, C. 1995, Astronomy and Astrophysics, v. 301, p. 155, 301, 155
1995
-
[11]
2007, Astronomy & Astrophysics, 463, 1017
Bouvier, J., Alencar, S., Boutelier, T., et al. 2007, Astronomy & Astrophysics, 463, 1017
2007
-
[12]
1995, Monthly Notices of the Royal Astronomical Society, 272, 346
Bunn, J., Hoare, M., & Drew, J. 1995, Monthly Notices of the Royal Astronomical Society, 272, 346
1995
-
[13]
Cauley, P. W. & Johns-Krull, C. M. 2014, The Astrophysical Journal, 797, 112
2014
-
[14]
Cauley, P. W. & Johns-Krull, C. M. 2015, The Astrophysical Journal, 810, 5
2015
-
[15]
A., Kessler-Silacci, J
Cieza, L. A., Kessler-Silacci, J. E., Jaffe, D. T., Harvey, P. M., & Evans II, N. J. 2005, The Astrophysical Journal, 635, 422
2005
-
[16]
M., Mandel, K
Czekala, I., Andrews, S. M., Mandel, K. S., Hogg, D. W., & Green, G. M. 2015, The Astrophysical Journal, 812, 128
2015
-
[17]
2024, Astronomy & Astrophysics, 684, A87
de Graaff, A., Rix, H.-W., Carniani, S., et al. 2024, Astronomy & Astrophysics, 684, A87
2024
-
[18]
2007, in Solar and Stellar Physics Through Eclipses, Vol
Dimitrijevic, M. 2007, in Solar and Stellar Physics Through Eclipses, Vol. 370, 270
2007
-
[19]
2016, Astronomy & Astrophysics, 592, A113
Dorner, B., Giardino, G., Ferruit, P., et al. 2016, Astronomy & Astrophysics, 592, A113
2016
-
[20]
2019, Monthly Notices of the Royal Astronomical Society, 486, 1034
Drew, J., Mongui \'o , M., & Wright, N. 2019, Monthly Notices of the Royal Astronomical Society, 486, 1034
2019
-
[21]
F., Walborn, N
Drissen, L., Moffat, A. F., Walborn, N. R., & Shara, M. M. 1995, Astronomical Journal v. 110, p. 2235, 110, 2235
1995
-
[22]
K., Brickhouse , N
Dupree , A. K., Brickhouse , N. S., Smith , G. H., & Strader , J. 2005, , 625, L131
2005
-
[23]
2006, The Astrophysical Journal, 646, 319
Edwards, S., Fischer, W., Hillenbrand, L., & Kwan, J. 2006, The Astrophysical Journal, 646, 319
2006
-
[24]
& Owen, J
Ercolano, B. & Owen, J. E. 2010, Monthly Notices of the Royal Astronomical Society, 406, 1553
2010
-
[25]
R., Oudmaijer, R
Fairlamb, J. R., Oudmaijer, R. D., Mendigutia, I., Ilee, J. D., & van den Ancker, M. E. 2015, Monthly Notices of the Royal Astronomical Society, 453, 976
2015
-
[26]
& Doschek, G
Feldman, U. & Doschek, G. 1977, Astrophysical Journal, Vol. 212, pp. 913-922 (1977)., 212, 913
1977
-
[27]
2022, Astronomy & Astrophysics, 661, A81
Ferruit, P., Jakobsen, P., Giardino, G., et al. 2022, Astronomy & Astrophysics, 661, A81
2022
-
[28]
2014, Protostars and planets VI, 451
Frank, A., Ray, T., Cabrit, S., et al. 2014, Protostars and planets VI, 451
2014
-
[29]
D., Bohlin, R., Sloan, G., et al
Gordon, K. D., Bohlin, R., Sloan, G., et al. 2022, The Astronomical Journal, 163, 267
2022
-
[30]
D., Clayton, G
Gordon, K. D., Clayton, G. C., Decleir, M., et al. 2023, The Astrophysical Journal, 950, 86
2023
-
[31]
1998, The Astrophysical Journal, 492, 323
Gullbring, E., Hartmann, L., Briceno, C., & Calvet, N. 1998, The Astrophysical Journal, 492, 323
1998
-
[32]
2005, The Astrophysical Journal, 618, 360
Hamaguchi, K., Yamauchi, S., & Koyama, K. 2005, The Astrophysical Journal, 618, 360
2005
-
[33]
R., Millman, K
Harris, C. R., Millman, K. J., Van Der Walt, S. J., et al. 2020, Nature, 585, 357
2020
-
[34]
2023, The Astrophysical Journal Letters, 951, L32
Harsono, D., Bjerkeli, P., Ramsey, J., et al. 2023, The Astrophysical Journal Letters, 951, L32
2023
-
[35]
2016, Annual Review of Astronomy and Astrophysics, 54, 135
Hartmann, L., Herczeg, G., & Calvet, N. 2016, Annual Review of Astronomy and Astrophysics, 54, 135
2016
-
[36]
Herczeg, G. J. & Hillenbrand, L. A. 2008, The Astrophysical Journal, 681, 594
2008
-
[37]
& Dale, D
Hunter, J. & Dale, D. 2007, Matplotlib 0.90. 0 user’s guide, 487
2007
-
[38]
2013, Astronomy & Astrophysics, 553, A6
Husser, T.-O., Wende-von Berg, S., Dreizler, S., et al. 2013, Astronomy & Astrophysics, 553, A6
2013
-
[39]
2013, Monthly Notices of the Royal Astronomical Society, 429, 2960
Ilee, J., Wheelwright, H., Oudmaijer, R., et al. 2013, Monthly Notices of the Royal Astronomical Society, 429, 2960
2013
-
[40]
Johns-Krull, C. M. 2007, The Astrophysical Journal, 664, 975
2007
-
[41]
& Sato, T
Kageyama, A. & Sato, T. 1997, Physical review E, 55, 4617
1997
-
[42]
1991, Astrophysical Journal, Part 2-Letters (ISSN 0004-637X), vol
Koenigl, A. 1991, Astrophysical Journal, Part 2-Letters (ISSN 0004-637X), vol. 370, March 20, 1991, p. L39-L43. Research supported by Rockwell International Corp. and Illinois Space Institute., 370, L39
1991
-
[43]
2008, Astronomy & Astrophysics, 489, 1157
Kraus, S., Hofmann, K.-H., Benisty, M., et al. 2008, Astronomy & Astrophysics, 489, 1157
2008
-
[44]
2018, Monthly Notices of the Royal Astronomical Society, 476, 4520
Kreplin, A., Tambovtseva, L., Grinin, V., et al. 2018, Monthly Notices of the Royal Astronomical Society, 476, 4520
2018
-
[45]
& Puls, J
Kudritzki, R.-P. & Puls, J. 2000, Annual Review of Astronomy and Astrophysics, 38, 613
2000
-
[46]
2016, Astronomy & Astrophysics, 593, A78
Kuncarayakti, H., Galbany, L., Anderson, J., Kr \"u hler, T., & Hamuy, M. 2016, Astronomy & Astrophysics, 593, A78
2016
-
[47]
J., & Symington, N
Kurosawa, R., Harries, T. J., & Symington, N. H. 2006, Monthly Notices of the Royal Astronomical Society, 370, 580
2006
-
[48]
2010, Astronomy & Astrophysics, 522, A104
Lima, G., Alencar, S., Calvet, N., Hartmann, L., & Muzerolle, J. 2010, Astronomy & Astrophysics, 522, A104
2010
-
[49]
2012, Monthly Notices of the Royal Astronomical Society, 424, 1088
Lumsden, S., Wheelwright, H., Hoare, M., Oudmaijer, R., & Drew, J. 2012, Monthly Notices of the Royal Astronomical Society, 424, 1088
2012
-
[50]
& Pringle, J
Lynden-Bell, D. & Pringle, J. E. 1974, Monthly Notices of the Royal Astronomical Society, 168, 603
1974
-
[51]
2013, The Astrophysical Journal, 769, 73
McClure, M., Calvet, N., Espaillat, C., et al. 2013, The Astrophysical Journal, 769, 73
2013
-
[52]
2020, Galaxies, 8, 39
Mendigut \' a, I. 2020, Galaxies, 8, 39
2020
-
[53]
2015, Monthly Notices of the Royal Astronomical Society, 453, 2126
Mendigut \' a, I., de Wit, W., Oudmaijer, R., et al. 2015, Monthly Notices of the Royal Astronomical Society, 453, 2126
2015
-
[54]
2017, Monthly Notices of the Royal Astronomical Society, 464, 1984
Mendigut \' a, I., Oudmaijer, R., Mourard, D., & Muzerolle, J. 2017, Monthly Notices of the Royal Astronomical Society, 464, 1984
2017
-
[55]
F., Drissen, L., & Shara, M
Moffat, A. F., Drissen, L., & Shara, M. M. 1994, Astrophysical Journal, Part 1 (ISSN 0004-367X), vol. 436, no. 1, p. 183-193, 436, 183
1994
-
[56]
1998 a , The Astrophysical Journal, 492, 743
Muzerolle, J., Calvet, N., & Hartmann, L. 1998 a , The Astrophysical Journal, 492, 743
1998
-
[57]
2003, The Astrophysical Journal, 597, L149
Muzerolle, J., Calvet, N., Hartmann, L., & D’Alessio, P. 2003, The Astrophysical Journal, 597, L149
2003
-
[58]
2004, The Astrophysical Journal, 617, 406
Muzerolle, J., D’Alessio, P., Calvet, N., & Hartmann, L. 2004, The Astrophysical Journal, 617, 406
2004
-
[59]
1998 b , The Astronomical Journal, 116, 2965
Muzerolle, J., Hartmann, L., & Calvet, N. 1998 b , The Astronomical Journal, 116, 2965
1998
-
[60]
2004, Astronomy & Astrophysics, 421, 187
Nisini, B., Antoniucci, S., & Giannini, T. 2004, Astronomy & Astrophysics, 421, 187
2004
-
[61]
E., Clarke, C
Owen, J. E., Clarke, C. J., & Ercolano, B. 2012, Monthly Notices of the Royal Astronomical Society, 422, 1880
2012
-
[62]
2001, The Astrophysical Journal Supplement Series, 135, 109
Popovi \'c , L., Simi \'c , S., Milovanovi \'c , N., & Dimitrijevi \'c , M. 2001, The Astrophysical Journal Supplement Series, 135, 109
2001
-
[63]
& Bally, J
Reipurth, B. & Bally, J. 2001, Annual Review of Astronomy and Astrophysics, 39, 403
2001
-
[64]
A., & Devine, D
Reipurth, B., Bally, J., Fesen, R. A., & Devine, D. 1998, Nature, 396, 343
1998
-
[65]
J., Manara, C
Reiter, M., Haworth, T. J., Manara, C. F., et al. 2024, Monthly Notices of the Royal Astronomical Society, 527, 3220
2024
-
[66]
A., Smith, N., et al
Reiter, M., Morse, J. A., Smith, N., et al. 2022, Monthly Notices of the Royal Astronomical Society, 517, 5382
2022
-
[67]
& Smith, N
Reiter, M. & Smith, N. 2013, Monthly Notices of the Royal Astronomical Society, 433, 2226
2013
-
[68]
2016, Monthly Notices of the Royal Astronomical Society, 463, 4344
Reiter, M., Smith, N., & Bally, J. 2016, Monthly Notices of the Royal Astronomical Society, 463, 4344
2016
-
[69]
Ricci, L., Robberto, M., & Soderblom, D. R. 2008, The Astronomical Journal, 136, 2136
2008
-
[70]
2024 a , Astronomy & Astrophysics, 688, A111
Rogers, C., Brandl, B., & De Marchi, G. 2024 a , Astronomy & Astrophysics, 688, A111
2024
-
[71]
2024 b , Astronomy & Astrophysics, 684, L8
Rogers, C., de Marchi, G., & Brandl, B. 2024 b , Astronomy & Astrophysics, 684, L8
2024
-
[72]
2024 c , Externally irradiated young stars in NGC 3603
Rogers, C., de Marchi, G., & Brandl, B. 2024 c , Externally irradiated young stars in NGC 3603. A JWST NIRSpec catalogue of pre-main-sequence stars in a massive star formation region
2024
-
[73]
& Hummer, D
Storey, P. & Hummer, D. 1995, Monthly Notices of the Royal Astronomical Society, 272, 41
1995
-
[74]
P., Lodato, G., et al
Tabone, B., Rosotti, G. P., Lodato, G., et al. 2022, Monthly Notices of the Royal Astronomical Society: Letters, 512, L74
2022
-
[75]
2014, Astronomy & Astrophysics, 562, A104
Tambovtseva, L., Grinin, V., & Weigelt, G. 2014, Astronomy & Astrophysics, 562, A104
2014
-
[76]
2016, Astronomy & Astrophysics, 590, A97
Tambovtseva, L., Grinin, V., & Weigelt, G. 2016, Astronomy & Astrophysics, 590, A97
2016
-
[77]
D., Wichittanakom, C., et al
Vioque, M., Oudmaijer, R. D., Wichittanakom, C., et al. 2022, The Astrophysical Journal, 930, 39
2022
-
[78]
E., et al
Virtanen, P., Gommers, R., Oliphant, T. E., et al. 2020, Nature methods, 17, 261
2020
-
[79]
2020, Monthly Notices of the Royal Astronomical Society, 493, 234
Wichittanakom, C., Oudmaijer, R., Fairlamb, J., et al. 2020, Monthly Notices of the Royal Astronomical Society, 493, 234
2020
-
[80]
Williams, J. P. & Cieza, L. A. 2011, Annual Review of Astronomy and Astrophysics, 49, 67
2011
-
[81]
J., Matt, S., Harries, T., & Herczeg, G
Wilson, T. J., Matt, S., Harries, T., & Herczeg, G. 2022, Monthly Notices of the Royal Astronomical Society, 514, 2162
2022
-
[82]
Winter, A. J. & Haworth, T. J. 2022, The European Physical Journal Plus, 137, 1132
2022
-
[83]
& Preibisch, T
Zinnecker, H. & Preibisch, T. 1994, Astronomy and Astrophysics (ISSN 0004-6361), vol. 292, no. 1, p. 152-164, 292, 152
1994
-
[84]
, " * write output.state after.block = add.period write newline
ENTRY address archiveprefix author booktitle chapter edition editor howpublished institution eprint journal key month note number organization pages publisher school series title type volume year label extra.label sort.label short.list INTEGERS output.state before.all mid.sent...
-
[85]
write newline
" write newline "" before.all 'output.state := FUNCTION n.dashify 't := "" t empty not t #1 #1 substring "-" = t #1 #2 substring "--" = not "--" * t #2 global.max substring 't := t #1 #1 substring "-" = "-" * t #2 global.max substring 't := while if t #1 #1 substring * t #2 gl...
Reviewed August 11, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.