REVIEW 3 major objections 5 minor 67 references
Computing Hydrogen Tunneling Splittings with Nuclear-Electronic Orbital Multireference Configuration Interaction
T0 review · 3 major / 5 minor · reviewed 2026-08-07 · deepseek-v4-flash
Pith's one-line read This paper claims that the nuclear-electronic orbital multireference configuration interaction method computes accurate hydrogen and deuterium tunneling splittings for fixed geometries, matching numerically exact grid benchmarks across…
desk verdict First application of NEO-MRCI to tunneling splittings is credible and transparent, but 'quantitative agreement' is overstated and the protonic basis is demonstrably not converged for OCHCO+ and malonaldehyde. 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 object is the NEO-MRCI wavefunction, a linear combination of products of electronic and protonic Slater determinants built from orbitals optimized in a state-averaged NEO-MCSCF calculation that treats the lowest two vibronic states equally. Each tunneling proton is represented by two basis function centers, placed at the donor and acceptor minima of a conventional CCSD double-well surface, each carrying a protonic and an electronic basis set. The CI expansion includes single electron, single proton, and double electron-proton excitations (MR-SDenCI), along with a full protonic active space and, for FHF–, OCHCO+, and malonaldehyde, a minimal (2e,2o) electronic active space of in-phase sigma and sigma-star orbitals; HeHHe+ uses a single-reference NEO-CASSCF treatment. This structure supplies the electron-proton correlation and the balanced treatment across the barrier that make the tunneling splitting accurate.
What would settle it
Run NEO-MRCI for a symmetric hydrogen-transfer system at a donor-acceptor distance where the CCSD-optimized proton center sits noticeably away from the maximum of the FGH ground-state proton density; if the computed tunneling splitting then deviates from the FGH benchmark by more than a few inverse centimeters, the center-placement assumption is falsified.
Extended reading notes
Core claim
The central discovery is that NEO-MRCI, expanded as single electronic, single protonic, and double electron-proton excitations from a state-averaged NEO-MCSCF reference, reproduces tunneling splittings from three-dimensional Fourier grid Hamiltonian calculations at the same fixed heavy-atom geometries. The paper reports quantitative agreement for HeHHe+, FHF–, OCHCO+, and malonaldehyde, and for deuterium-substituted FDF– and malonaldehyde, with the protonic densities showing the expected bilobal shapes and nodal structures. Because electrons and the transferring proton are treated on the same footing, the calculation avoids a Born-Oppenheimer separation for the tunneling particle and captures both the static correlation of the double well and the electron-proton dynamic correlation needed for accurate splittings.
Load-bearing premise
The method's accuracy rests on the assumption that placing the two proton basis centers at the minima found by conventional CCSD optimizations reliably represents the proton's double-well density for every system and donor-acceptor distance studied.
Editorial extensions
If this is right
- Fixed-geometry tunneling splittings become accessible without tunable parameters in other electronically adiabatic hydrogen-transfer systems that share the two-center, double-well structure tested here.
- Deuterium splittings follow from the same active spaces and basis sets, so kinetic isotope effects on tunneling are directly computable.
- The method's excited vibronic states can be coupled to the other nuclear vibrations through vibronic coupling theory, a route the paper identifies toward comparing with experimental splittings such as malonaldehyde's 21.6 cm-1.
- The small (2e,2o) electronic active space appears transferable across chemically different proton-bound systems, which keeps the cost of the NEO-MRCI step manageable despite the large protonic basis sets.
Reading between the lines
- One consequence not tested here is that NEO-MRCI might serve as a benchmark generator for larger proton-transfer systems where the FGH grid calculation becomes too expensive; the current fixed-geometry benchmarks are the evidence that would justify that role.
- The CCSD-based center placement means the method could be extended to non-symmetric systems by a second optimization near the acceptor, but the paper does not show how sensitive the splittings are to small displacements of those centers.
- Because the wavefunction explicitly correlates the proton with electrons, the same machinery could in principle report excited protonic states beyond the lowest doublet, which would test the assumption that the (2e,2o) active space is sufficient for higher vibronic states.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper applies the recently developed NEO-MRCI method, specifically the NEO-MR-SD enCI variant, to compute hydrogen and deuterium tunneling splittings at fixed geometries for four systems: HeHHe+, FHF-, OCHCO+, and malonaldehyde. The results are benchmarked against three-dimensional Fourier Grid Hamiltonian (FGH) calculations whose potential energy surfaces are generated at the CCSD level. The authors report good qualitative agreement for the distance dependence of the splittings and conclude that NEO-MRCI can produce accurate tunneling splittings at fixed geometries, positioning the method as a parameter-free multicomponent wavefunction approach for tunneling problems.
Significance. If the central claim is upheld, NEO-MRCI would be a valuable addition to the toolbox for hydrogen tunneling because it treats the transferring proton and electrons on the same footing without a Born-Oppenheimer separation and does not rely on empirically fitted parameters. The paper provides a substantial amount of numerical data, including explicit coordinates, basis-set convergence tables, and timings, which is commendable for reproducibility. However, the reported agreement with the FGH reference is less quantitative than claimed in several cases, and the convergence of the protonic basis for two of the four systems is not demonstrated. These issues currently limit the strength of the conclusions, though they appear addressable with additional calculations and revised wording.
major comments (3)
- [Abstract and Fig. 2, Tables S1, S3, S4] The abstract and the discussion of Fig. 2 state that the NEO-MR-SD enCI tunneling splittings 'agree quantitatively' and are in 'excellent agreement' with the FGH benchmarks. The tabulated data contradict this wording for extended donor-acceptor distances: Table S1 gives a relative error of about 53% at He-He = 2.40 Å (2.3 vs 4.9 cm-1), Table S3 gives a relative error of about 27% at C-C = 3.10 Å (7.1 vs 5.6 cm-1), and Table S4 gives a relative error of about 23% at O-O = 2.62 Å (10.3 vs 8.4 cm-1). These are systematic overestimates that grow with distance. The claim of quantitative agreement should be replaced with an explicit error analysis, or the calculations should be improved to support such a claim.
- [Computational Details and Tables S3-S5] The 5s5p5d5f protonic basis used for OCHCO+ and malonaldehyde is justified by a convergence test on HeHHe+ (Table S5), but the same comparison is not reported for the two larger systems. Tables S3 and S4 show that 8s8p8d and 5s5p5d5f results differ by 15-45% for OCHCO+ and by 35-50% for malonaldehyde at the same geometries (e.g., OCHCO+ at 3.10 Å: 3.9 vs 7.1 cm-1; malonaldehyde at 2.62 Å: 5.4 vs 10.3 cm-1). Therefore the favorable agreement of the 5s5p5d5f results with FGH is not a demonstrated property of the NEO-MRCI method; it may reflect an accidental cancellation of basis-set incompleteness. The authors should either report 8s8p8d8f (or 5s5p5d5f5g) results for these systems at representative distances or explicitly state that the reported errors include an uncontrolled basis-set component.
- [Computational Details and Conclusion] The proton basis-function center positions are determined by conventional CCSD geometry optimizations, as described in the Computational Details section. This is a free input to the NEO-MRCI calculation, and tunneling splittings are exponentially sensitive to the barrier and thus to the placement of these centers. The paper asserts that this CCSD-based procedure 'provides a reliable method' but reports no sensitivity tests, such as perturbing the centers or comparing with centers optimized at a different level. Consequently, the statement in the Conclusion that 'NEO-MRCI does not require any parameters' is overstated; the center positions are an external parameter of the protocol. The authors should either add a numerical test of the sensitivity to the center positions or qualify the 'parameter-free' claim to mean 'no empirically fitted parameters.'
minor comments (5)
- [SI Section 8.1] For the entry labeled 'He-He distance 2.4 Å', the He coordinates are listed as +/- 1.120 Å, which corresponds to a separation of 2.24 Å, not 2.40 Å. Please correct either the label or the coordinates, as this affects the reproducibility of the data point with the largest reported discrepancy.
- [Fig. 5 caption] The word 'deterium' in the figure caption should be 'deuterium'.
- [Table S1 footnote] The word 'inidcated' in the footnote should be 'indicated'.
- [SI table headers] The SI headers contain 'V arying' and similar spacings; these should be cleaned up.
- [Main text] The statement 'We show that the same tunneling splitting is obtained for HeHHe+ using the 8s8p8d8f and 5s5p5d5f basis sets (Table S5)' is correct only for the single tested distance of 2.30 Å and should be phrased as a single-point comparison, not a general convergence statement.
Circularity Check
No significant circularity: NEO-MRCI tunneling splittings are genuine first-principles energy differences benchmarked against independent grid-based FGH calculations, with no fitted parameters.
full rationale
The paper's central claim is that NEO-MRCI computes accurate hydrogen and deuterium tunneling splittings at fixed geometries. The splitting is obtained as an energy difference between two NEO-MRCI vibronic states, i.e., from the wavefunction expansion in Eqs. (1)-(2), with no parameter adjusted to reproduce the FGH benchmarks. The FGH values are used only as a comparison: 'To benchmark the NEO-MRCI results, the three-dimensional Fourier Grid Hamiltonian (FGH) method was used to compute numerically exact reference tunneling splittings at fixed geometries.' The proton basis function centers are optimized with conventional CCSD, and the FGH reference potential is also generated with CCSD, but the center positions do not enter the FGH calculation and the NEO-MRCI splitting is not constructed from the CCSD double-well splitting. Thus the agreement is not forced by construction. The choice of the (2e,2o) active space and the 5s5p5d5f protonic basis for OCHCO+ and malonaldehyde is a modeling choice; Tables S3 and S4 indicate incomplete basis convergence for those systems, but that is a correctness or accuracy concern, not circularity. Self-citations to Ref. [51] establish the NEO-MRCI method itself, but the present numerical results are new and are compared to an independent numerical grid benchmark, so the self-citation is not load-bearing in a circular sense.
Assumptions & free parameters
free parameters (1)
- Proton basis function center positions =
Per-system CCSD-optimized positions (given in SI), e.g., HeHHe+ at 2.30 Å: H at +/-0.336 Å
assumptions (3)
- domain assumption Conventional CCSD potential energy surfaces provide accurate references for fixed-geometry tunneling splittings.
- ad hoc to paper The NEO-MR-SD enCI expansion (single electron, single proton, and double electron-proton excitations, excluding double electronic excitations) captures the essential physics of the tunneling splittings.
- domain assumption The two proton basis function centers placed at CCSD-optimized proton positions provide an adequate basis for the tunneling wavefunction.
Cite this review
Pith. "Pith review of Computing Hydrogen Tunneling Splittings with Nuclear-Electronic Orbital Multireference Configuration Interaction." pith.science (2026). https://pith.science/paper/DFUPRKVZ
@misc{pith2026250602201,
author = {Pith},
title = {Pith review of: Computing Hydrogen Tunneling Splittings with Nuclear-Electronic Orbital Multireference Configuration Interaction},
year = {2026},
howpublished = {\url{https://pith.science/paper/DFUPRKVZ}},
note = {Machine review of arXiv:2506.02201}
}
read the original abstract
Hydrogen tunneling is an important process that impacts reaction rates and molecular spectra. Describing and understanding this process requires a quantum mechanical treatment of the transferring hydrogen. The nuclear-electronic orbital (NEO) approach treats specified nuclei quantum mechanically on the same level as electrons and has recently been implemented at the multireference configuration interaction (MRCI) wavefunction level. The NEO-MRCI method includes both the static correlation necessary to describe hydrogen tunneling and the electron-proton dynamic correlation required for computing quantitatively accurate nuclear-electronic vibronic states. Herein, the NEO-MRCI method is used to compute the nuclear-electronic wavefunctions and corresponding vibronic energies for four hydrogen tunneling systems at fixed geometries for a range of donor-acceptor distances. Comparison of the NEO-MRCI results to numerically exact grid-based calculations shows that the NEO-MRCI method can be used to obtain accurate hydrogen and deuterium tunneling splittings at fixed geometries. Thus, this work presents an important component for studying hydrogen tunneling systems.
Reference graph
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