Quantum computation of reactions on surfaces using local embedding

被引:0
|
作者
Tanvi P. Gujarati
Mario Motta
Triet Nguyen Friedhoff
Julia E. Rice
Nam Nguyen
Panagiotis Kl. Barkoutsos
Richard J. Thompson
Tyler Smith
Marna Kagele
Mark Brei
Barbara A. Jones
Kristen Williams
机构
[1] IBM Research - Almaden,IBM Quantum
[2] T. J. Watson Research Center,IBM Quantum
[3] Boeing Research & Technology,Integrated Vehicle Systems, Applied Mathematics
[4] IBM Research - Zurich,IBM Quantum
[5] Boeing Research & Technology,Integrated Vehicle Systems, Applied Mathematics
[6] Boeing Research & Technology,Integrated Vehicle Systems, Applied Mathematics
[7] Boeing Research & Technology,Tech Vis and Integration, Global Technology
[8] Chemical Technology,BSC Analytics
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Modeling electronic systems is an important application for quantum computers. In the context of materials science, an important open problem is the computational description of chemical reactions on surfaces. In this work, we outline a workflow to model the adsorption and reaction of molecules on surfaces using quantum computing algorithms. We develop and compare two local embedding methods for the systematic determination of active spaces. These methods are automated and based on the physics of molecule-surface interactions and yield systematically improvable active spaces. Furthermore, to reduce the quantum resources required for the simulation of the selected active spaces using quantum algorithms, we introduce a technique for exact and automated circuit simplification. This technique is applicable to a broad class of quantum circuits and critical to enable demonstration on near-term quantum devices. We apply the proposed combination of active-space selection and circuit simplification to the dissociation of water on a magnesium surface using classical simulators and quantum hardware. Our study identifies reactions of molecules on surfaces, in conjunction with the proposed algorithmic workflow, as a promising research direction in the field of quantum computing applied to materials science.
引用
收藏
相关论文
共 50 条
  • [41] Fault-tolerant quantum computation for local leakage faults
    Institute for Quantum Information, California Institute of Technology, Pasadena, CA 91125, United States
    不详
    Quantum Inf. Comput., 2007, 1-2 (139-156):
  • [42] Computation of Green's function by local variational quantum compilation
    Kanasugi, Shota
    Tsutsui, Shoichiro
    Nakagawa, Yuya O.
    Maruyama, Kazunori
    Oshima, Hirotaka
    Sato, Shintaro
    PHYSICAL REVIEW RESEARCH, 2023, 5 (03):
  • [43] A local and scalable lattice renormalization method for ballistic quantum computation
    Daniel Herr
    Alexandru Paler
    Simon J. Devitt
    Franco Nori
    npj Quantum Information, 4
  • [44] Schemes for parallel quantum computation without local control of qubits
    Benjamin, S.C.
    Physical Review A - Atomic, Molecular, and Optical Physics, 2000, 61 (02): : 203011 - 203014
  • [45] Minor-embedding in adiabatic quantum computation: I. The parameter setting problem
    Choi, Vicky
    QUANTUM INFORMATION PROCESSING, 2008, 7 (05) : 193 - 209
  • [46] Minor-embedding in adiabatic quantum computation: I. The parameter setting problem
    Vicky Choi
    Quantum Information Processing, 2008, 7 : 193 - 209
  • [47] On the local isometric embedding of trapped surfaces into three-dimensional Riemannian manifolds
    Bini, Donato
    Esposito, Giampiero
    CLASSICAL AND QUANTUM GRAVITY, 2018, 35 (19)
  • [48] Quantum game simulator, using the circuit model of quantum computation
    Vlachos, Panagiotis
    Karafyllidis, Ioannis G.
    COMPUTER PHYSICS COMMUNICATIONS, 2009, 180 (10) : 1990 - 1998
  • [49] Quantum Computation of Hydride Ion using Variational Quantum Algorithm
    Kalam, Abdul
    Kumar, Shubham
    Kumar, Ashok
    Panigrahi, Prasanta K.
    CHEMISTRYSELECT, 2024, 9 (43):
  • [50] Quantum Computation of Electronic Transitions Using a Variational Quantum Eigensolver
    Parrish, Robert M.
    Hohenstein, Edward G.
    McMahon, Peter L.
    Martinez, Todd J.
    PHYSICAL REVIEW LETTERS, 2019, 122 (23)