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Simulating Chemistry on Bosonic Quantum Devices.

Rishab DuttaDelmar G A CabralNingyi LyuNam P VuYuchen WangBrandon AllenXiaohan DanRodrigo G CortiñasPouya KhazaeiMax SchäferAlejandro C C D AlbornozScott E SmartScott NieMichel H DevoretDavid A MazziottiPrineha NarangChen WangJames D WhitfieldAngela K WilsonHeidi P HendricksonDaniel A LidarFrancisco Pérez-BernalLea F SantosSabre KaisEitan GevaVictor S Batista
Published in: Journal of chemical theory and computation (2024)
Bosonic quantum devices offer a novel approach to realize quantum computations, where the quantum two-level system ( qubit ) is replaced with the quantum (an)harmonic oscillator ( qumode ) as the fundamental building block of the quantum simulator. The simulation of chemical structure and dynamics can then be achieved by representing or mapping the system Hamiltonians in terms of bosonic operators. In this Perspective, we review recent progress and future potential of using bosonic quantum devices for addressing a wide range of challenging chemical problems, including the calculation of molecular vibronic spectra, the simulation of gas-phase and solution-phase adiabatic and nonadiabatic chemical dynamics, the efficient solution of molecular graph theory problems, and the calculations of electronic structure.
Keyphrases
  • molecular dynamics
  • monte carlo
  • density functional theory
  • energy transfer
  • mental health
  • machine learning
  • mass spectrometry
  • molecular dynamics simulations
  • human health