Molecular resonance identification in complex absorbing potentials via integrated quantum computing and high-throughput computing

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Dai, Jingcheng, Vidwans, Atharva, Wan, Eric H., Miller, Alexander X., Soley, Micheline B.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866908911299198976
author Dai, Jingcheng
Vidwans, Atharva
Wan, Eric H.
Miller, Alexander X.
Soley, Micheline B.
author_facet Dai, Jingcheng
Vidwans, Atharva
Wan, Eric H.
Miller, Alexander X.
Soley, Micheline B.
contents Recent advancements in quantum algorithms have reached a state where we can consider how to capitalize on quantum and classical computational resources to accelerate molecular resonance state identification. Here we identify molecular resonances with a method that combines quantum computing with classical high-throughput computing (HTC). This algorithm, which we term qDRIVE (the quantum deflation resonance identification variational eigensolver) exploits the complex absorbing potential formalism to distill the problem of molecular resonance identification into a network of hybrid quantum-classical variational quantum eigensolver tasks, and harnesses HTC resources to execute these interconnected but independent tasks both asynchronously and in parallel, a strategy that minimizes wall time to completion. We show qDRIVE successfully identifies resonance energies and wavefunctions in simulated quantum processors with current and planned specifications, which bodes well for qDRIVE's ultimate application in disciplines ranging from photocatalysis to quantum control and places a spotlight on the potential offered by integrated heterogenous quantum computing/HTC approaches in computational chemistry.
format Preprint
id arxiv_https___arxiv_org_abs_2511_15981
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Molecular resonance identification in complex absorbing potentials via integrated quantum computing and high-throughput computing
Dai, Jingcheng
Vidwans, Atharva
Wan, Eric H.
Miller, Alexander X.
Soley, Micheline B.
Quantum Physics
Recent advancements in quantum algorithms have reached a state where we can consider how to capitalize on quantum and classical computational resources to accelerate molecular resonance state identification. Here we identify molecular resonances with a method that combines quantum computing with classical high-throughput computing (HTC). This algorithm, which we term qDRIVE (the quantum deflation resonance identification variational eigensolver) exploits the complex absorbing potential formalism to distill the problem of molecular resonance identification into a network of hybrid quantum-classical variational quantum eigensolver tasks, and harnesses HTC resources to execute these interconnected but independent tasks both asynchronously and in parallel, a strategy that minimizes wall time to completion. We show qDRIVE successfully identifies resonance energies and wavefunctions in simulated quantum processors with current and planned specifications, which bodes well for qDRIVE's ultimate application in disciplines ranging from photocatalysis to quantum control and places a spotlight on the potential offered by integrated heterogenous quantum computing/HTC approaches in computational chemistry.
title Molecular resonance identification in complex absorbing potentials via integrated quantum computing and high-throughput computing
topic Quantum Physics
url https://arxiv.org/abs/2511.15981