微波激射器
固态
放大器
国家(计算机科学)
材料科学
物理
光电子学
工程物理
计算机科学
光学
CMOS芯片
算法
作者
Tom Day,Maya Isarov,William J. Pappas,Brett C. Johnson,Hiroshi Abe,Takeshi Ohshima,Dane R. McCamey,Arne Laucht,J. Jarryd
标识
DOI:10.1103/physrevx.14.041066
摘要
Masers once represented the state of the art in low-noise microwave amplification technology but eventually became obsolete due to their need for cryogenic cooling. Masers based on solid-state spin systems perform most effectively as amplifiers, since they provide a large density of spins and can, therefore, operate at relatively high powers. While solid-state maser oscillators have been demonstrated at room temperature, continuous-wave amplification in these systems has only ever been realized at cryogenic temperatures. Here, we report on a continuous-wave solid-state maser amplifier operating at room temperature. We achieve this feat using a practical setup that includes an ensemble of nitrogen-vacancy center spins in a diamond crystal, a strong permanent magnet, and a simple laser diode. We describe important amplifier characteristics including gain, bandwidth, compression power, and noise temperature and discuss the prospects of realizing a room-temperature near-quantum-noise-limited amplifier with this system. Finally, we show that in a different mode of operation the spins can be used to reduce the microwave noise in an external circuit to cryogenic levels, all without the requirement for physical cooling. Published by the American Physical Society 2024
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