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Quantum Computation of Conical Intersections on a Programmable Superconducting Quantum Processor.

Shoukuan ZhaoDiandong TangXiaoxiao XiaoRuixia WangQiming SunZhen ChenXiaoxia CaiZhendong LiHaifeng YuWei-Hai Fang
Published in: The journal of physical chemistry letters (2024)
Conical intersections (CIs) are pivotal in many photochemical processes. Traditional quantum chemistry methods, such as the state-average multiconfigurational methods, face computational hurdles in solving the electronic Schrödinger equation within the active space on classical computers. While quantum computing offers a potential solution, its feasibility in studying CIs, particularly on real quantum hardware, remains largely unexplored. Here, we present the first successful realization of a hybrid quantum-classical state-average complete active space self-consistent field method based on the variational quantum eigensolver (VQE-SA-CASSCF) on a superconducting quantum processor. This approach is applied to investigate CIs in two prototypical systems─ethylene (C 2 H 4 ) and triatomic hydrogen (H 3 ). We illustrate that VQE-SA-CASSCF, coupled with ongoing hardware and algorithmic enhancements, can lead to a correct description of CIs on existing quantum devices. These results lay the groundwork for exploring the potential of quantum computing to study CIs in more complex systems in the future.
Keyphrases
  • molecular dynamics
  • energy transfer
  • risk assessment
  • human health
  • climate change
  • current status