论文标题

量子计算增强的计算催化

Quantum computing enhanced computational catalysis

论文作者

von Burg, Vera, Low, Guang Hao, Häner, Thomas, Steiger, Damian S., Reiher, Markus, Roetteler, Martin, Troyer, Matthias

论文摘要

电子能量的量子计算可能会打破困扰多粒子量子力学的维数的诅咒。因此,通用量子计算机具有从根本上改变计算化学和材料科学的潜力,在该领域中,强烈的电子相关性带来了传统电子结构方法的严重障碍。在这里,我们使用改进的量子算法对量子计算机上的精确能量测量进行了最新分析,该分析使用改进的量子算法,其比最佳先前算法的数量级改进了。作为局部催化化学反应性的典型示例,我们考虑了可以结合,激活和将二氧化碳转化为高价值化学甲醇的唯一催化剂的情况。我们旨在针对评估其催化循环的关键中间体和过渡状态的电子能量所需的量子计算步骤的准确估计。特别是,我们提出了四个指数积分的双因素表示的新量子算法,这些算法可以大大降低以前算法的计算成本,并讨论增加活动空间大小的挑战以准确处理动态相关性。我们解决了未来量子硬件的要求,以使通用量子计算机成为量子计算增强的计算材料科学和化学的成功且可靠的工具,并确定开放的问题以进行进一步研究。

The quantum computation of electronic energies can break the curse of dimensionality that plagues many-particle quantum mechanics. It is for this reason that a universal quantum computer has the potential to fundamentally change computational chemistry and materials science, areas in which strong electron correlations present severe hurdles for traditional electronic structure methods. Here, we present a state-of-the-art analysis of accurate energy measurements on a quantum computer for computational catalysis, using improved quantum algorithms with more than an order of magnitude improvement over the best previous algorithms. As a prototypical example of local catalytic chemical reactivity we consider the case of a ruthenium catalyst that can bind, activate, and transform carbon dioxide to the high-value chemical methanol. We aim at accurate resource estimates for the quantum computing steps required for assessing the electronic energy of key intermediates and transition states of its catalytic cycle. In particular, we present new quantum algorithms for double-factorized representations of the four-index integrals that can significantly reduce the computational cost over previous algorithms, and we discuss the challenges of increasing active space sizes to accurately deal with dynamical correlations. We address the requirements for future quantum hardware in order to make a universal quantum computer a successful and reliable tool for quantum computing enhanced computational materials science and chemistry, and identify open questions for further research.

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