用于Maser应用的碳化硅中自旋缺陷的超辐射

A. Gottscholl, M. Wagenhöfer, Manuel Klimmer, Selina Scherbel, C. Kasper, V. Baianov, G. Astakhov, V. Dyakonov, A. Sperlich
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引用次数: 3

摘要

微波激射器作为电信放大器已经存在了几十年,但由于需要真空技术和低温的极端操作条件,它们的应用受到强烈限制。近年来,新一代的脉泽是基于并五苯和金刚石的光抽运自旋态而发明的。在本研究中,我们为基于碳化硅(SiC)中自旋S = 3/2硅空位(VSi)缺陷的脉塞克服微波产生阈值铺平了道路,并讨论了这种高度发展的自旋载体材料的优点。为了实现粒子数反转,我们将VSi光泵入其m S =±1/2自旋子态,并通过施加外部磁场来调节塞曼能量分裂。这样,在10ghz范围内实现谐振微波受激发射的先决条件就得到了满足。在实现脉泽的过程中,我们能够系统地解决一系列子任务,这些子任务改善了SiC样品的基本相关物理参数。其中,我们研究了泵浦效率与光激发波长和磁场与缺陷对称轴之间的夹角的函数关系,以提高目标微波振荡器的关键性能指标——人口反演因子。此外,我们开发了一个高Q蓝宝石微波谐振器(Q≈104-105),我们发现了超辐射激发的微波发射。综上所述,具有优化自旋缺陷密度和自旋松弛率的碳化硅将成为一种具有广泛应用前景的微波激射增益材料。
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Superradiance of Spin Defects in Silicon Carbide for Maser Applications
Masers as telecommunication amplifiers have been known for decades, yet their application is strongly limited due to extreme operating conditions requiring vacuum techniques and cryogenic temperatures. Recently, a new generation of masers has been invented based on optically pumped spin states in pentacene and diamond. In this study, we pave the way for masers based on spin S = 3/2 silicon vacancy (VSi) defects in silicon carbide (SiC) to overcome the microwave generation threshold and discuss the advantages of this highly developed spin hosting material. To achieve population inversion, we optically pump the VSi into their m S = ±1/2 spin sub-states and additionally tune the Zeeman energy splitting by applying an external magnetic field. In this way, the prerequisites for stimulated emission by means of resonant microwaves in the 10 GHz range are fulfilled. On the way to realising a maser, we were able to systematically solve a series of subtasks that improved the underlying relevant physical parameters of the SiC samples. Among others, we investigated the pump efficiency as a function of the optical excitation wavelength and the angle between the magnetic field and the defect symmetry axis in order to boost the population inversion factor, a key figure of merit for the targeted microwave oscillator. Furthermore, we developed a high-Q sapphire microwave resonator (Q ≈ 104–105) with which we find superradiant stimulated microwave emission. In summary, SiC with optimized spin defect density and thus spin relaxation rates is well on its way of becoming a suitable maser gain material with wide-ranging applications.
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