Pavošević Fabijan, Hammes-Schiffer Sharon
Department of Chemistry, Yale University, 225 Prospect Street, New Haven, Connecticut 06520, United States.
J Chem Theory Comput. 2021 Jun 8;17(6):3252-3258. doi: 10.1021/acs.jctc.1c00220. Epub 2021 May 4.
The variational quantum eigensolver (VQE) algorithm combined with the unitary coupled cluster (UCC) ansatz has been developed for the quantum computation of molecular energies and wave functions within the Born-Oppenheimer approximation. Herein, this approach is extended to multicomponent systems to enable the quantum mechanical treatment of more than one type of particle, such as electrons and positrons or electrons and nuclei, without invoking the Born-Oppenheimer approximation. Specifically, we introduce the multicomponent unitary coupled cluster (mcUCC) method combined with the VQE algorithm for the calculation of ground-state energies and wave functions as well as the multicomponent equation-of-motion (mcEOM) method for the calculation of excitation energies. These methods are developed within the nuclear-electronic orbital (NEO) framework and are formulated in the qubit basis to enable implementations on quantum computers. Moreover, these methods are used to calculate the ground-state energy and excitation energies of positronium hydride, where both electrons and the positron are treated quantum mechanically, as well as the H molecule, where both electrons and one proton are treated quantum mechanically. These applications validate the implementation and provide benchmark data for future calculations. The errors due to Trotterization of the mcUCC ansatz are also analyzed. This formalism, as well as the accompanying computer code, will serve as the basis for applications to more complex multicomponent systems, such as simulations of photoinduced nonadiabatic molecular processes, on both classical and quantum computers.
变分量子本征求解器(VQE)算法与幺正耦合簇(UCC)近似相结合,已被开发用于在玻恩 - 奥本海默近似下对分子能量和波函数进行量子计算。在此,该方法被扩展到多组分系统,以实现对不止一种类型粒子的量子力学处理,例如电子与正电子或电子与原子核,而无需调用玻恩 - 奥本海默近似。具体而言,我们引入了与VQE算法相结合的多组分幺正耦合簇(mcUCC)方法来计算基态能量和波函数,以及用于计算激发能的多组分运动方程(mcEOM)方法。这些方法是在核 - 电子轨道(NEO)框架内开发的,并以量子比特基表示,以便在量子计算机上实现。此外,这些方法被用于计算氢化正电子素的基态能量和激发能,其中电子和正电子都进行量子力学处理,以及H分子,其中电子和一个质子都进行量子力学处理。这些应用验证了该实现,并为未来的计算提供了基准数据。还分析了由于mcUCC近似的 Trotter 化引起的误差。这种形式体系以及随附的计算机代码,将作为在经典计算机和量子计算机上应用于更复杂多组分系统(如光诱导非绝热分子过程模拟)的基础。