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模拟量子化学分析。

Analogue quantum chemistry simulation.

机构信息

Max-Planck-Institut für Quantenoptik, Garching, Germany.

Institut de Ciències Fotòniques (ICFO), The Barcelona Institute of Science and Technology, Castelldefels, Spain.

出版信息

Nature. 2019 Oct;574(7777):215-218. doi: 10.1038/s41586-019-1614-4. Epub 2019 Oct 9.

Abstract

Computing the electronic structure of molecules with high precision is a central challenge in the field of quantum chemistry. Despite the success of approximate methods, tackling this problem exactly with conventional computers remains a formidable task. Several theoretical and experimental attempts have been made to use quantum computers to solve chemistry problems, with early proof-of-principle realizations done digitally. An appealing alternative to the digital approach is analogue quantum simulation, which does not require a scalable quantum computer and has already been successfully applied to solve condensed matter physics problems. However, not all available or planned setups can be used for quantum chemistry problems, because it is not known how to engineer the required Coulomb interactions between them. Here we present an analogue approach to the simulation of quantum chemistry problems that relies on the careful combination of two technologies: ultracold atoms in optical lattices and cavity quantum electrodynamics. In the proposed simulator, fermionic atoms hopping in an optical potential play the role of electrons, additional optical potentials provide the nuclear attraction, and a single-spin excitation in a Mott insulator mediates the electronic Coulomb repulsion with the help of a cavity mode. We determine the operational conditions of the simulator and test it using a simple molecule. Our work opens up the possibility of efficiently computing the electronic structures of molecules with analogue quantum simulation.

摘要

用高精度计算分子的电子结构是量子化学领域的一个核心挑战。尽管近似方法取得了成功,但用传统计算机精确解决这个问题仍然是一项艰巨的任务。已经有几种理论和实验方法尝试使用量子计算机来解决化学问题,早期已经有了数字化的原理验证实现。一种有吸引力的替代数字方法是模拟量子模拟,它不需要可扩展的量子计算机,并且已经成功应用于解决凝聚态物理问题。然而,并非所有可用或计划的设置都可用于量子化学问题,因为不知道如何在它们之间设计所需的库仑相互作用。在这里,我们提出了一种模拟量子化学问题的模拟方法,该方法依赖于两种技术的精心结合:光学晶格中的超冷原子和腔量子电动力学。在所提出的模拟器中,在光学势中跳跃的费米子原子充当电子,附加的光学势提供核吸引力,而在莫特绝缘体中的单个自旋激发在腔模的帮助下介导电子库仑排斥。我们确定了模拟器的操作条件,并使用简单分子对其进行了测试。我们的工作为使用模拟量子模拟有效地计算分子的电子结构开辟了可能性。

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