REVIEW 2 major objections 4 minor 2 cited by
ExoMol molecular line lists XXXVI: $X\ {}^2\Pi - X\ {}^2\Pi$ and $A\ {}^2\Sigma^+ - X\ {}^2\Pi$ transitions of SH
T0 review · 2 major / 4 minor · reviewed 2026-08-14 · deepseek-v4-flash
Pith's one-line read This paper presents the GYT line list, an accurate and complete set of 572,145 transitions for the SH radical spanning infrared to ultraviolet wavelengths down to 0.256 μm.
desk verdict Solid, well-documented A–X extension for SH with good fits to the measured low-v' bands, but the 'complete' UV claim leans on unvalidated extrapolation and the paper should qualify it. 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 load-bearing machinery is a coupled-channels rovibronic model built for the Duo program, which solves the coupled rovibronic Schrödinger equation for open-shell diatomic molecules. The model comprises three fitted potential energy curves (X ²Π, A ²Σ⁺, and a repulsive B ²Π), plus spin-orbit curves, electronic angular momentum curves, spin-rotation curves, and Born-Oppenheimer breakdown curves, all refined against measured transition frequencies, while intensities come from ab initio dipole moment and transition dipole moment curves. Fitting the curves directly to measured lines rather than to spectroscopic constants lets the model absorb perturbations from nearby electronic states, which is what makes the extrapolation to unmeasured higher vibrational levels plausible.
What would settle it
Measure the (3,0) A–X band of ³²SH under high resolution and compare band-head positions and relative intensities with the GYT predictions around 34,000–36,000 cm⁻¹; a systematic offset beyond the claimed 0.3 cm⁻¹ rms, or a band intensity pattern that disagrees with the computed oscillator strength f00 = 0.0017, would indicate the fitted A-state curves do not extend correctly.
Extended reading notes
Core claim
The central discovery claimed is that the GYT line list is an accurate and complete SH line list spanning the infrared to the ultraviolet: it reproduces measured X–X positions with rms error 0.06 cm⁻¹ and measured A–X positions with rms error 0.3 cm⁻¹, matching the quoted experimental uncertainties of ~0.03–0.3 cm⁻¹. The list contains 7686 rovibronic states and 572,145 transitions for ³²SH, extends to ~39,000 cm⁻¹ (0.256 μm) and to temperatures near 5000 K, and also provides lists for ³³SH, ³⁴SH, ³⁶SH, and ³²SD, the last incorporating non-Born-Oppenheimer corrections. The paper states that this list supersedes the SNaSH ground-state list and the experimentally limited Zahnle et al. (2009) absorption line list.
Load-bearing premise
The A-state model is fitted only to the (0,0), (1,0), and (2,0) A–X bands with rotational coverage up to J = 12.5, so the line list's predictions at higher vibrational levels, higher rotation, and near the A-state dissociation limit rest on those fitted curves extrapolating reliably, while predissociating crossings are neglected.
Editorial extensions
If this is right
- The A–X band lines at ~0.3 μm can now be included in opacity models of WASP-121b and other ultra-hot Jupiters, testing the proposed SH explanation of the observed ultraviolet rise.
- The line list provides computed Einstein A coefficients, g-factors, and lifetimes for every upper state, so radiative lifetimes from the model can be compared directly with experiments.
- Coverage to 39,000 cm⁻¹ and temperatures near 5000 K means SH opacities can be computed for brown dwarfs and cool stars, not only hot Jupiters.
- The separately fitted ³²SD model includes non-Born-Oppenheimer effects, enabling evaluation of deuterium fractionation in astrophysical SH observations.
- The X–X portion agrees with the earlier SNaSH list below 10,000 cm⁻¹, so existing ground-state analyses remain valid while the ultraviolet predictions are new.
Reading between the lines
- Because the A-state model is fitted only to the (0,0), (1,0), and (2,0) A–X bands up to J = 12.5, a direct test of the model is to measure the (3,0) and higher bands; if predicted positions drift by more than the claimed ~0.3 cm⁻¹ rms, the A-state potential needs further refinement.
- The computed oscillator strength f00 = 0.0017 lies between the solar-derived value 0.0022 and the ab initio value 0.0029; high-resolution laboratory measurement of the (0,0) band intensity could discriminate which intensity curve is closer to reality.
- Because predissociation is omitted, the line list's A-state radiative lifetimes (449 ns for v = 0, 513 ns for v = 1) are far longer than observed collision-free lifetimes; users modelling fluorescence or photochemistry will likely need to add predissociation as a separate loss channel.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This paper presents a new ExoMol line list (GYT) for the mercapto radical SH and its isotopologues, extending the previous SNaSH line list to include the A 2Σ+–X 2Π ultraviolet band system in addition to the ground-state X 2Π–X 2Π transitions. The authors carry out MRCI/aug-cc-pV5Z-DK ab initio calculations for the potential energy, spin–orbit, electronic angular momentum, and (transition) dipole moment curves, then refine the PECs, SOCs, EAMCs, BOBCs, and SRCs in a Duo fit to experimental line positions from the literature (Table 1). The fit reaches RMS residuals of 0.06 cm−1 for X–X and 0.3 cm−1 for A–X. The resulting line list contains 7686 states and 572,145 transitions for 32SH and analogous lists for 33SH, 34SH, 36SH, and 32SD, covering wavelengths down to 0.256 μm. The authors compare simulated spectra with several experimental spectra and report a radiative lifetime and f00 = 0.0017 for the A–X (0,0) band.
Significance. If the line list is reliable, it is a valuable community resource for interpreting UV observations of SH in hot-Jupiter transmission spectra (notably WASP-121b), cool stars, and the ISM. The paper is transparent about its method, provides the Duo input files as supplementary data, and compares intensities with external theory and experiment. The principal value is the full rovibronic A–X band coverage with empirically tuned line positions and ab initio intensities. However, the empirical tuning is confined to v′=0–2 and J≤12.5 for A–X, so the ultra-violet part of the line list beyond the fitted range is an extrapolation. Since the stated completeness (to 0.256 μm and 5000 K) is one of the paper's main selling points, the significance is contingent on validating that extrapolation.
major comments (2)
- [Section 3; Table 4; Section 5] The A 2Σ+ potential is fitted to only the (0,0), (1,0), and (2,0) A–X vibronic bands with Jmax = 12.5 (Table 1), yet the line list includes A-state levels with v′=3 and 4 (Table 4, e.g., 35,601.52 and 36,758.87 cm−1) and transitions extending to the A-state asymptote near 39,000 cm−1. These energies are unconstrained extrapolations of the empirical EMO potential, and the paper itself states in Section 5 that 'we have been limited to v′ ≤ 2'. The abstract's claim that this is an 'accurate and complete' line list covering to 0.256 μm is therefore unsupported for all A–X lines above the highest fitted bands (roughly 34,300 cm−1). The existing Schnieder et al. (1990) A-state term values for v = 0–4 and N = 0–40 should be used as an external validation set even if they were not sufficiently accurate for the fit; if they are not used, the completeness and accuracy claims must be restricted to v′≤2 and the associated J range.
- [Section 4; Table 4] Predissociation of the A 2Σ+ state via the repulsive 2Σ−, 4Σ−, and 4Π states is explicitly identified in the introduction and Section 4, but these states are omitted from the spectroscopic model. The lifetimes reported in the states file (Table 4) are therefore radiative lifetimes only, and Section 4 acknowledges that the computed lifetimes (449 ns for v=0) are not expected to match the measured predissociative lifetimes (which can be orders of magnitude shorter). This limitation is disclosed for lifetimes, but the same omitted crossings can also perturb the A-state energies and couplings for the high-v and high-J levels that the line list includes, and no estimate of the magnitude of these energy shifts is provided. Please either add the predissociative channels to the model, or provide a quantitative argument that they do not affect the computed line positions above the fitted range, and in any case label the Table 4 lifetimes as radiative-only.
minor comments (4)
- [Section 5] The sentence 'The rms error of this fit to the A–X line positions if SD is 0.4 cm−1' contains a typo: 'if' should read 'for'.
- [Table 4 caption] The caption says 'τ: Lifetime (s−1)', but the numeric entries such as 5.1332E-07 are in seconds; the unit should be 's' rather than 's−1'.
- [Figure 11] The 0.014 μm offset between the synthetic and CRDS spectra is attributed to a calibration problem without a quantitative argument; please state the implied wavenumber shift, compare it with the reported fit residuals, and consider overlaying a shifted synthetic spectrum.
- [Section 5] The phrase 'the relative property of completeness (up to ∼ 5000 K)' is vague; given the limited A-state vibrational coverage, provide a population-based justification of the temperature limit.
Circularity Check
No significant circularity: fitted line positions are presented as fits, and the predictive content (intensities, lifetimes, extrapolated levels) rests on ab initio dipole curves and an openly admitted extrapolation, not on a self-citation chain.
full rationale
The paper's construction chain is explicit: empirical PECs, SOCs, EAMCs, BOBCs and SRCs (Eqs. 1-4) are refined against measured X-X and A-X (0,0), (1,0), (2,0) line positions listed in Table 1, and the rovibronic Schrödinger equation is then solved with Duo. The Obs.-Calc. residual tables (Table 2, Fig. 7) are fit diagnostics, not independent predictions, and the paper never relabels them as such. The genuinely predictive quantities—Einstein A coefficients and lifetimes—are computed from ab initio DMCs/TDMCs (Eqs. 5-6) and are benchmarked against external experimental and ab initio values (f00 = 0.0017 vs 0.0022 and 0.0029; radiative lifetime 820 ± 240 ns). Self-citations (Duo, ExoMol methodology, prior SNaSH line list) supply software infrastructure and a predecessor model, not a uniqueness theorem or a forced ansatz. The main weakness, that A-state levels with v' >= 3 and lines above ~34,300 cm-1 are extrapolations beyond the fitted v' <= 2, J <= 12.5 data, is acknowledged in Section 5 ('we have been limited to v' <= 2'); this is an unvalidated-extrapolation/correctness risk, not a circular reduction, because the higher levels are not defined by the fitted data and the paper supplies no claim that they are independently measured. No step in the derivation reduces to its own input by construction.
Assumptions & free parameters
free parameters (4)
- X 2Π EMO potential parameters =
Not given in text; in Duo input supplementary
- A 2Σ+ EMO potential parameters =
Not given in text; in Duo input supplementary
- B 2Π repulsive PEC parameters (Ae, B6) =
Not given in text; in Duo input supplementary
- SOC, EAMC, BOBC, SRC curve parameters =
Not given in text; in Duo input supplementary
assumptions (5)
- domain assumption Born-Oppenheimer approximation with non-adiabatic corrections is valid for SH
- domain assumption MRCI/aug-cc-pV5Z-DK ab initio curves provide a sufficiently accurate starting reference for refinement
- domain assumption The experimental line assignments and uncertainties from the sources in Table 1 are correct
- ad hoc to paper The B 2Π state, represented by a repulsive hyperbolic PEC, is sufficient to model the spin splitting and interactions of the A 2Σ+ state
- ad hoc to paper Fitted curves can be extrapolated to vibrational levels and rotational quantum numbers beyond the measured range
Cite this review
Pith. "Pith review of ExoMol molecular line lists XXXVI: $X\ {}^2\Pi - X\ {}^2\Pi$ and $A\ {}^2\Sigma^+ - X\ {}^2\Pi$ transitions of SH." pith.science (2026). https://pith.science/paper/HPBNAKWA
@misc{pith2026190902646,
author = {Pith},
title = {Pith review of: ExoMol molecular line lists XXXVI: $X\ ^2\Pi - X\ ^2\Pi$ and $A\ ^2\Sigma^+ - X\ ^2\Pi$ transitions of SH},
year = {2026},
howpublished = {\url{https://pith.science/paper/HPBNAKWA}},
note = {Machine review of arXiv:1909.02646}
}
abstract
The GYT line list covering rotational, rovibrational and rovibronic transitions of the mercapto radical SH is presented. This work extends and replaces the SNaSH line list [Yurchenko et al., 2018, MNRAS, 478, 270] which covers the ground (electronic) $X$ $^{2}\Pi$ state only. This extension is prompted by the tentative identification of the ultra-violet features of SH as being of importance in the transmission spectrum of the ultra-hot Jupiter exoplanet WASP-121b [Evans et al., 2018, AJ., 156, 283]. This GYT line list model is generated by fitting empirical potential energy, spin-orbit and electronic angular momenta functions to experimentally measured wavelengths within the $X$ $^{2}\Pi$ and $A$ $^{2}\Sigma^{+}$ states and to the $A$ $^{2}\Sigma^{+}$ - $X$ $^{2}\Pi$ band system using ab initio curves as a starting reference point. The fits are compatible with the quoted uncertainty of the experimental data used of $\sim$ 0.03 - 0.3 cm$^{-1}$. The GYT line list covers wavelengths longer than 0.256 $\mu$m and includes 7686 rovibronic states and 572 145 transitions for $^{32}$SH. Line lists for the $^{33}$SH, $^{34}$SH, $^{36}$SH and $^{32}$SD isotopologues are generated including a consideration of non-Born-Oppenheimer effects for SD. The line lists are available from the CDS (http://cdsarc.u-strasbg.fr) and ExoMol (www.exomol.com) data bases.
Figures
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