光子学
量子技术
光电子学
量子传感器
材料科学
碳化硅
量子信息科学
量子计算机
微电子
量子网络
量子
工程物理
物理
开放量子系统
量子纠缠
量子力学
冶金
作者
Stefania Castelletto,Alberto Boretti
出处
期刊:JPhys photonics
[IOP Publishing]
日期:2020-02-18
卷期号:2 (2): 022001-022001
被引量:251
标识
DOI:10.1088/2515-7647/ab77a2
摘要
Abstract Silicon carbide has recently surged as an alternative material for scalable and integrated quantum photonics, as it is a host for naturally occurring color centers within its bandgap, emitting from the UV to the IR even at telecom wavelength. Some of these color centers have been proved to be characterized by quantum properties associated with their single-photon emission and their coherent spin state control, which make them ideal for quantum technology, such as quantum communication, computation, quantum sensing, metrology and can constitute the elements of future quantum networks. Due to its outstanding electrical, mechanical, and optical properties which extend to optical nonlinear properties, silicon carbide can also supply a more amenable platform for photonics devices with respect to other wide bandgap semiconductors, being already an unsurpassed material for high power microelectronics. In this review, we will summarize the current findings on this material color centers quantum properties such as quantum emission via optical and electrical excitation, optical spin polarization and coherent spin control and manipulation. Their fabrication methods are also summarized, showing the need for on-demand and nanometric control of the color centers fabrication location in the material. Their current applications in single-photon sources, quantum sensing of strain, magnetic and electric fields, spin-photon interface are also described. Finally, the efforts in the integration of these color centers in photonics devices and their fabrication challenges are described.
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