腔磁子-极化激元系统的研究进展
作者:
作者单位:

1.中国科学院上海技术物理研究所,红外物理国家重点实验室,上海 200083;2.上海科技大学 物质与科学技术学院 上海 201210

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通讯作者:

中图分类号:

O469

基金项目:

国家自然科学基金项目(12122413, 11974369, 11991063 和 12204306),上海市科委项目(21JC1406200和22JC1403300),中国科学院青年创新促进会项目(2020247)和中国科学院先导专项(XDB43010200),国家重点研发计划(2022YFA1404603, 2022YFA1604400),上海技物所自主部署项目,上海浦江人才计划(22PJ1410700)。


Research progress of cavity magnon-polariton systems
Author:
Affiliation:

1.State Key Laboratory of Infrared Physics, Shanghai Institute of Technical Physics, Chinese Academy of Sciences, Shanghai 200083, China;2.School of Physical Science and Technology, ShanghaiTech University, Shanghai 201210, China

Fund Project:

Supported by the National Natural Science Foundation of China (12122413, 11974369, 11991063 and 12204306), STCSM (21JC1406200 and 22JC1403300), the Youth Innovation Promotion Association of CAS(2020247) Strategic priority research of CAS(XDB43010200), the National Key R&D Program of China (2022YFA1404603, 2022YFA1604400), the SITP Independent Foundation, the Shanghai Pujiang Program (22PJ1410700).

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    摘要:

    光电子芯片在人工智能时代的复杂信息转换中扮演着重要角色。通过强耦合的电子-光子态可以实现光电转换的最高效率。利用电子自旋的自由度具有独特的优势。自旋的集体激发可以形成磁子,它具有长寿命和对焦耳热免疫的特性。这些特性可以通过磁子和高速光子之间的强耦合结合起来,形成 "腔-磁子极化激元(CMP)"。最近的进展集中在构建高协同性的CMP,控制CMP的辐射和传输,理解CMP的完美吸收机制,以及开发片上CMP原型器件的电调谐维度和逻辑操作功能。这些围绕CMP相干耦合动力学的研究有望推动低损耗光电器件和前沿信息处理技术的发展。

    Abstract:

    Optoelectronic chips are important for complex information conversion in the age of artificial intelligence. The highest efficiency of electron-photon conversion is achieved through strongly coupled electron-photon states, particularly using the degree of freedom of electron spin has unique advantages. Collective excitations of spin can form magnons, which have unique merits such as long lifetimes and immunity to Joule heating. These advantages can be combined through the strong coupling between magnons and high-speed photons to form “cavity-magnon polariton (CMP).” Recent progresses have focused on constructing high cooperative CMP, controlling radiation and transmission of CMP, understanding the perfect absorption mechanism of CMP, and developing electrical tuning and logical operation functions of on-chip CMP prototype devices. These studies on the coherent coupling dynamics of CMP are expected to promote the development of low-loss optoelectronic devices and the cutting-edge information processing technology.

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引用本文

魏纯可,饶金威,姚碧霂.腔磁子-极化激元系统的研究进展[J].红外与毫米波学报,2023,42(5):622~633]. WEI Chun-Ke, RAO Jin-Wei, YAO Bi-Mu. Research progress of cavity magnon-polariton systems[J]. J. Infrared Millim. Waves,2023,42(5):622~633.]

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  • 收稿日期:2023-04-06
  • 最后修改日期:2023-08-08
  • 录用日期:2023-07-14
  • 在线发布日期: 2023-08-17
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