Kersten Wenzel, de Zordo Nikolaus, Diekmann Oliver, Reiter Tobias, Zens Matthias, Kanagin Andrew N, Rotter Stefan, Schmiedmayer Jörg, Angerer Andreas
Vienna Center for Quantum Science and Technology, Atominstitut, TU Wien, Stadionallee 2, A-1020 Vienna, Austria.
Institute for Theoretical Physics, TU Wien, Wiedner Hauptstraße 8-10/136, A-1040 Vienna, Austria.
Phys Rev Lett. 2023 Jul 28;131(4):043601. doi: 10.1103/PhysRevLett.131.043601.
We study the superradiant emission of an inverted spin ensemble strongly coupled to a superconducting cavity. After fast inversion, we detune the spins from the cavity and store the inversion for tens of milliseconds, during which the remaining transverse spin components disappear. Switching back on resonance enables us to study the onset of superradiance. A weak trigger pulse of a few hundred photons shifts the superradiant burst to earlier times and imprints its phase onto the emitted radiation. For long hold times, the inversion decreases below the threshold for spontaneous superradiance. There, the energy stored in the ensemble can be used to amplify microwave pulses passing through the cavity.
我们研究了与超导腔强耦合的反转自旋系综的超辐射发射。快速反转后,我们将自旋与腔失谐并将反转状态存储数十毫秒,在此期间剩余的横向自旋分量消失。重新调谐到共振使我们能够研究超辐射的起始。几百个光子的弱触发脉冲将超辐射爆发提前,并将其相位印刻在发射的辐射上。对于较长的保持时间,反转程度降低到自发超辐射的阈值以下。在那里,系综中存储的能量可用于放大通过腔的微波脉冲。