Department of Chemistry, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.
Centre of Excellence in Quantum Information, Computing, Science and Technology, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.
J Chem Phys. 2023 Jul 7;159(1). doi: 10.1063/5.0153182.
Recent advancements in quantum information and quantum technology have stimulated a good deal of interest in the development of quantum algorithms toward the determination of the energetics and properties of many-fermionic systems. While the variational quantum eigensolver is the most optimal algorithm in the noisy intermediate scale quantum era, it is imperative to develop compact Ansätze with low-depth quantum circuits that are physically realizable in quantum devices. Within the unitary coupled cluster framework, we develop a disentangled Ansatz construction protocol that can dynamically tailor an optimal Ansatz using the one- and two-body cluster operators and a selection of rank-two scatterers. The construction of the Ansatz may potentially be performed in parallel over multiple quantum processors through energy sorting and operator commutativity prescreening. With a significant reduction in the circuit depth toward the simulation of molecular strong correlation, our dynamic Ansatz construction protocol is shown to be highly accurate and resilient to the noisy circumstances of the near-term quantum hardware.
最近量子信息和量子技术的进展激发了人们极大的兴趣,希望开发量子算法来确定多费米子系统的能量和性质。虽然变分量子本征求解器是在嘈杂的中等规模量子时代最优化的算法,但开发紧凑的、具有低深度量子电路的算法是至关重要的,这些算法在量子设备中是物理可实现的。在幺正耦合簇框架内,我们开发了一种可分离的算法构造协议,可以使用单粒子和双粒子簇算符以及一系列秩为 2 的散射体来动态调整最优的算法。通过能量排序和算子可交换性预筛选,该算法的构造可以潜在地在多个量子处理器上并行进行。通过显著降低模拟分子强关联的电路深度,我们的动态算法构造协议被证明具有很高的准确性,并且能够抵御近期量子硬件的嘈杂环境。