论文标题
缺陷量子位和单个光子发射器的材料平台
Material Platforms for Defect Qubits and Single Photon Emitters
论文作者
论文摘要
量子技术已从量子信息理论中发展出来,现在提供了一个有价值的工具,来自许多领域的研究人员可以将其添加到其研究方法工具箱中。迄今为止,已经利用各种系统来促进量子信息处理的应用。可用于量子技术的系统包括超导电路,超冷原子,被困的离子,半导体量子点以及固态的旋转和发射器。在这篇综述中,我们将在基于自旋的量子技术的材料平台上讨论最新技术,重点是在几种领先的宿主材料中的固态旋转和发射器的进度,包括钻石,碳化硅,硝酸盐,硝酸硼,硅,硅,二维半导体和其他材料。我们将通过对电子,磁性和光学特性的详细预测进行详细的预测,以指出如何将第一原理计算用作出色的稳健工具,用于在固体中找到新颖的缺陷Qubits和固体中的单个光子发射器。
Quantum technology has grown out of quantum information theory and now provides a valuable tool that researchers from numerous fields can add to their toolbox of research methods. To date, various systems have been exploited to promote the application of quantum information processing. The systems that can be used for quantum technology include superconducting circuits, ultra-cold atoms, trapped ions, semiconductor quantum dots, and solid-state spins and emitters. In this review, we will discuss the state of the art on material platforms for spin-based quantum technology, with a focus on the progress in solid-state spins and emitters in several leading host materials, including diamond, silicon carbide, boron nitride, silicon, two-dimensional semiconductors, and other materials. We will highlight how first-principles calculations can serve as an exceptionally robust tool for finding the novel defect qubits and single photon emitters in solids, through detailed predictions of the electronic, magnetic and optical properties.