Kollarics Sándor, Márkus Bence Gábor, Kucsera Robin, Thiering Gergő, Gali Ádám, Németh Gergely, Kamarás Katalin, Forró László, Simon Ferenc
Department of Physics, Institute of Physics, Budapest University of Technology and Economics, Műegyetem rkp.3, H-1111 Budapest, Hungary.
ELKH-BME Condensed Matter Research Group, Budapest University of Technology and Economics, Műegyetem rkp. 3, H-1111 Budapest, Hungary.
Sci Adv. 2024 May 31;10(22):eadn0616. doi: 10.1126/sciadv.adn0616. Epub 2024 May 29.
Coherent light sources emitting in the terahertz range are highly sought after for fundamental research and applications. Terahertz lasers rely on achieving population inversion. We demonstrate the generation of terahertz radiation using nitrogen-vacancy centers in a diamond single crystal. Population inversion is achieved through the Zeeman splitting of the = 1 state in 15 tesla, resulting in a splitting of 0.42 terahertz, where the middle = 0 sublevel is selectively pumped by visible light. To detect the terahertz radiation, we use a phase-sensitive terahertz setup, optimized for electron spin resonance (ESR) measurements. We determine the spin-lattice relaxation time up to 15 tesla using the light-induced ESR measurement, which shows the dominance of phonon-mediated relaxation and the high efficacy of the population inversion. The terahertz radiation is tunable by the magnetic field, thus these findings may lead to the next generation of tunable coherent terahertz sources.
太赫兹波段的相干光源在基础研究和应用方面备受追捧。太赫兹激光器依赖于实现粒子数反转。我们展示了利用金刚石单晶中的氮空位中心产生太赫兹辐射。通过在15特斯拉磁场中对(J = 1)态进行塞曼分裂实现粒子数反转,分裂产生0.42太赫兹的频率间隔,其中中间的(J = 0)子能级由可见光选择性泵浦。为了探测太赫兹辐射,我们使用了一个为电子自旋共振(ESR)测量优化的相敏太赫兹装置。我们利用光致ESR测量确定了高达15特斯拉的自旋 - 晶格弛豫时间,结果表明声子介导的弛豫占主导地位以及粒子数反转的高效性。太赫兹辐射可通过磁场进行调谐,因此这些发现可能会催生下一代可调谐相干太赫兹源。