Wu Weijun, Scholes Gregory D
Department of Chemistry, Princeton University, Princeton, New Jersey 08544, United States.
J Phys Chem Lett. 2024 Apr 18;15(15):4056-4069. doi: 10.1021/acs.jpclett.4c00180. Epub 2024 Apr 8.
Quantum information, a field in which great advances have been made in the past decades, now presents opportunities for advanced chemistry. One roadblock to progress, especially for experimental chemical science, is that new concepts and technical definitions need to be learned. In this paper, we review some basic, but sometimes misunderstood, concepts of quantum information based on the mathematical formulation of quantum mechanics that will be useful for chemists interested in discovering ways that chemistry can contribute to the quantum information field. We cover topics including qubits and their density matrix formalism, quantum measurement as a quantum operation, information theory, and entanglement. We focus on the difference between the concepts in the quantum context and the classic context. We also discuss the relation and distinction among entanglement, correlation, and coherence. We aim to clarify the rigorous definition of these concepts and then indicate some examples in physical chemistry.
量子信息是一个在过去几十年中取得了巨大进展的领域,现在为先进化学带来了机遇。进步的一个障碍,尤其是对于实验化学科学而言,是需要学习新的概念和技术定义。在本文中,我们基于量子力学的数学表述回顾了一些基本但有时会被误解的量子信息概念,这对于有兴趣探索化学如何为量子信息领域做出贡献的化学家将是有用的。我们涵盖的主题包括量子比特及其密度矩阵形式、作为量子操作的量子测量、信息论和纠缠。我们关注量子语境和经典语境中概念的差异。我们还讨论了纠缠、关联和相干之间的关系与区别。我们旨在阐明这些概念的严格定义,然后指出物理化学中的一些例子。