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为室温微波量子电子学定制固态混合系统的相干微波发射。

Tailoring Coherent Microwave Emission from a Solid-State Hybrid System for Room-Temperature Microwave Quantum Electronics.

作者信息

Wang Kaipu, Wu Hao, Zhang Bo, Yao Xuri, Zhang Jiakai, Oxborrow Mark, Zhao Qing

机构信息

Center for Quantum Technology Research and Key Laboratory of Advanced Optoelectronic Quantum Architecture and Measurements (MOE), School of Physics, Beijing Institute of Technology, Beijing, 100081, China.

Xi'an Electronic Engineering Research Institute, Xi'an, 710100, China.

出版信息

Adv Sci (Weinh). 2024 Sep;11(35):e2401904. doi: 10.1002/advs.202401904. Epub 2024 Jul 15.

Abstract

Quantum electronics operating in the microwave domain are burgeoning and becoming essential building blocks of quantum computers, sensors, and communication devices. However, the field of microwave quantum electronics has long been dominated by the need for cryogenic conditions to maintain delicate quantum characteristics. Here, a solid-state hybrid system, constituted by a photo-excited pentacene triplet spin ensemble coupled to a dielectric resonator, is reported for the first time capable of both coherent microwave quantum amplification and oscillation at X band via the masing process at room temperature. By incorporating external driving and active dissipation control into the hybrid system, efficient tuning of the maser emission characteristics at ≈9.4 GHz is achieved, which is key to optimizing the performance of the maser device. The work not only pushes the boundaries of the operating frequency and functionality of the existing pentacene masers but also demonstrates a universal route for controlling the masing process at room temperature, highlighting opportunities for optimizing emerging solid-state masers for quantum information processing and communication.

摘要

工作在微波领域的量子电子学正在蓬勃发展,并成为量子计算机、传感器和通信设备的重要组成部分。然而,长期以来,微波量子电子学领域一直受限于需要低温条件来维持微妙的量子特性。在此,首次报道了一种固态混合系统,该系统由与介电谐振器耦合的光激发并五苯三重态自旋系综构成,能够在室温下通过微波激射过程在X波段实现相干微波量子放大和振荡。通过将外部驱动和有源耗散控制纳入混合系统,实现了对约9.4GHz微波激射发射特性的有效调谐,这是优化微波激射器件性能的关键。这项工作不仅拓展了现有并五苯微波激射器的工作频率和功能边界,还展示了一种在室温下控制微波激射过程的通用方法,突出了优化用于量子信息处理和通信的新兴固态微波激射器的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e526/11425272/6b1e1601ea28/ADVS-11-2401904-g006.jpg

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