论文标题
电子结构在D波量子退火器上具有直接对角线化
Electronic structure with direct diagonalization on a D-Wave quantum annealer
论文作者
论文摘要
量子化学被认为是将通过量子计算彻底改变的第一批学科之一。尽管实用量表的通用量子计算机可能会遥远,但目前正在采用各种方法来解决近期基于门的量子计算机和量子退火器上的量子化学问题,并通过开发适当的算法和软件基础。这项工作实现了一般的量子退火器本元(QAE)算法,以解决D-WAVE 2000Q量子退火器上的分子电子Hamiltonian Eigenvalue-EigenValue-eigenValue-eigenvector问题。该方法基于矩阵公式,有效地使用基于两个编码方案的量子资源,并且仅依靠一个经典优化的参数依靠硬件为主。我们证明了使用D波硬件在各种小分子系统中获得地面和电子激发态。该方法可以通过当前在常规量子化学套件中实施的绝大多数电子结构方法进行调整。这项工作的结果将鼓励QBSOLV等软件的进一步开发,该软件在新兴的量子信息处理硬件中有希望的应用程序,并能够解决对古典计算机棘手的大型且复杂的优化问题。
Quantum chemistry is regarded to be one of the first disciplines that will be revolutionized by quantum computing. Although universal quantum computers of practical scale may be years away, various approaches are currently being pursued to solve quantum chemistry problems on near-term gate-based quantum computers and quantum annealers by developing the appropriate algorithm and software base. This work implements the general Quantum Annealer Eigensolver (QAE) algorithm to solve the molecular electronic Hamiltonian eigenvalue-eigenvector problem on a D-Wave 2000Q quantum annealer. The approach is based on the matrix formulation, efficiently uses qubit resources based on a power-of-two encoding scheme and is hardware-dominant relying on only one classically optimized parameter. We demonstrate the use of D-Wave hardware for obtaining ground and electronically excited states across a variety of small molecular systems. This approach can be adapted for use by a vast majority of electronic structure methods currently implemented in conventional quantum-chemical packages. The results of this work will encourage further development of software such as qbsolv which has promising applications in emerging quantum information processing hardware and is able to address large and complex optimization problems intractable for classical computers.