Sugisaki Kenji, Nakano Tatsuya, Mochizuki Yuji
Graduate School of Science and Technology, Keio University, Kawasaki, Japan.
Quantum Computing Center, Keio University, Yokohama, Japan.
J Comput Chem. 2024 Oct 5;45(26):2204-2213. doi: 10.1002/jcc.27438. Epub 2024 May 25.
The fragment molecular orbital (FMO) scheme is one of the popular fragmentation-based methods and has the potential advantage of making the circuit shallow for quantum chemical calculations on quantum computers. In this study, we used a GPU-accelerated quantum simulator (cuQuantum) to perform the electron correlation part of the FMO calculation as unitary coupled-cluster singles and doubles (UCCSD) with the variational quantum eigensolver (VQE) for hydrogen-bonded (FH) and (FH) -H O systems with the STO-3G basis set. VQE-UCCSD calculations were performed using both canonical and localized MO sets, and the results were examined from the point of view of size-consistency and orbital-invariance affected by the Trotter error. It was found that the use of localized MO leads to better results, especially for (FH) -H O. The GPU acceleration was substantial for the simulations with larger numbers of qubits, and was about a factor of 6.7-7.7 for 18 qubit systems.
片段分子轨道(FMO)方法是一种流行的基于片段的方法,具有使量子化学计算在量子计算机上的电路变浅的潜在优势。在本研究中,我们使用了GPU加速的量子模拟器(cuQuantum),以单重和双重酉耦合簇(UCCSD)结合变分量子本征求解器(VQE),在STO-3G基组下对氢键(FH)和(FH)-H₂O系统进行FMO计算的电子相关部分。使用正则和定域分子轨道集进行了VQE-UCCSD计算,并从受 Trotter 误差影响的尺寸一致性和轨道不变性的角度检查了结果。结果发现,使用定域分子轨道会得到更好的结果,特别是对于(FH)-H₂O。对于具有更多量子比特的模拟,GPU加速效果显著,对于18量子比特系统,加速因子约为6.7-7.7。