Rosen Yaniv J, Khalil Moe S, Burin Alexander L, Osborn Kevin D
Laboratory for Physical Sciences, College Park, Maryland 20740, USA.
Department of Physics, University of Maryland, College Park, Maryland 20742, USA.
Phys Rev Lett. 2016 Apr 22;116(16):163601. doi: 10.1103/PhysRevLett.116.163601. Epub 2016 Apr 19.
We demonstrate a laser using material defects known for deleterious microwave absorption in quantum computing. These defects are two-level atomic tunneling systems (TSs), which are manipulated using a uniform swept dc electric field and two ac pump fields. The swept field changes the TS energies. TSs first pass through degeneracy with pump photons, which invert (excite) them with a high probability using rapid adiabatic passage. Population inversion is accomplished in spite of a broad distribution of TS parameters. Afterwards the TSs are brought to degeneracy with the resonator where they emit photons. The emission is found to be dependent on individual cavity-TS interactions, and the narrowing linewidth at increasing photon occupancy indicates stimulated emission. Characterization with a microwave probe shows a transition from ordinary defect loss to negligible microwave absorption, and ultimately to coherent amplification. Thus, instead of absorbing microwave energy, the TSs can be tuned to reduce loss and even amplify signals.
我们展示了一种利用量子计算中已知的有害微波吸收的材料缺陷制成的激光器。这些缺陷是两能级原子隧穿系统(TSs),通过均匀扫描直流电场和两个交流泵浦场对其进行操控。扫描场改变TSs的能量。TSs首先与泵浦光子通过简并,利用快速绝热通道以高概率使其反转(激发)。尽管TS参数分布广泛,但仍能实现粒子数反转。之后,TSs与谐振器达到简并,在那里它们发射光子。发现发射依赖于单个腔 - TS相互作用,并且随着光子占有率增加线宽变窄表明存在受激发射。用微波探测器进行的表征显示从普通缺陷损耗到可忽略的微波吸收的转变,最终实现相干放大。因此,TSs不是吸收微波能量,而是可以进行调谐以减少损耗甚至放大信号。