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Approximate quantum circuit compilation for proton-transfer kinetics on quantum processors

Abstract:
Proton transfer reactions are central to chemical and biological systems, where quantum effects—such as tunneling, delocalization, and zero-point motion—critically influence reaction kinetics. Classical methods that capture these phenomena scale poorly with system size, limiting their applicability. Here, we extend and benchmark a quantum computing framework based on the Nuclear–Electronic Orbital formalism, treating the transferring proton quantum mechanically, to assess the feasibility of computing accurate energy barriers on current quantum devices. Using malonaldehyde as a prototypical system, we construct deep initial circuits via ADAPT-VQE combined with the frozen natural orbital approximation and apply adaptive approximate quantum compiling to balance circuit depth and fidelity. Transpiling these circuits for the ibm_pittsburgh device and simulating with realistic noise models, we compute barrier heights and delocalized proton densities along the reaction pathway. Circuit refinement and compression yield compact representations that preserve essential quantum features of the transfer process. Notably, our shallowest circuits (AQC-low) reproduce key qualitative features, such as proton density localization, and are near the frontier of feasibility for current hardware. In contrast, deeper circuits (AQC-high) retain higher fidelity to reference barrier height, reducing the error to 1.6 mHa (13%) while still yielding a 98% underestimation of the rate constant at 120 K.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1039/d5cp04097c

Authors

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Role:
Author
ORCID:
0009-0009-1136-4428
More by this author
Role:
Author
ORCID:
0000-0002-3575-8060


Publisher:
Royal Society of Chemistry
Journal:
Physical Chemistry Chemical Physics More from this journal
Publication date:
2026-01-14
Acceptance date:
2025-12-05
DOI:
EISSN:
1463-9084
ISSN:
1463-9076


Language:
English
Pubs id:
2374444
Local pid:
pubs:2374444
Source identifiers:
3661454
Deposit date:
2026-01-14
ARK identifier:
This ORA record was generated from metadata provided by an external service. It has not been edited by the ORA Team.

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