论文标题
超导量子处理器上分子线性响应特性的变异量子计算
Variational Quantum Computation of Molecular Linear Response Properties on a Superconducting Quantum Processor
论文作者
论文摘要
模拟分子的响应特性对于解释实验光谱和加速材料设计至关重要。但是,对于经典计算机上的电子结构方法,它仍然是一项长期的计算挑战。尽管量子计算机从长远来看可以更有效地解决此问题,但需要深量子电路的现有量子算法对于近期嘈杂的量子处理器而言是不可行的。在这里,我们引入了一种务实的变分量子响应(VQR)算法,用于响应特性,该算法规避了对深量子电路的需求。使用该算法,我们报告了分子的线性响应特性的首次模拟,包括动态极化能力和超导量子处理器上的吸收光谱。我们的结果表明,使用该算法结合使用合适的误差缓解技术,近期量子硬件等大量重要动力学属性(例如Green功能)在近期量子硬件的范围内。
Simulating response properties of molecules is crucial for interpreting experimental spectroscopies and accelerating materials design. However, it remains a long-standing computational challenge for electronic structure methods on classical computers. While quantum computers hold the promise to solve this problem more efficiently in the long run, existing quantum algorithms requiring deep quantum circuits are infeasible for near-term noisy quantum processors. Here, we introduce a pragmatic variational quantum response (VQR) algorithm for response properties, which circumvents the need for deep quantum circuits. Using this algorithm, we report the first simulation of linear response properties of molecules including dynamic polarizabilities and absorption spectra on a superconducting quantum processor. Our results indicate that a large class of important dynamical properties such as Green's functions are within the reach of near-term quantum hardware using this algorithm in combination with suitable error mitigation techniques.