Nanoscale Science and Engineering Center (NSEC), 3112 Etcheverry Hall, University of California, Berkeley, California 94720, USA.
Department of Physics and Astronomy, University of Texas Rio Grande Valley, Brownsville, Texas 78520, USA.
Phys Rev Lett. 2018 Jan 26;120(4):043901. doi: 10.1103/PhysRevLett.120.043901.
We demonstrate that it is possible to localize photons nonreciprocally in a moving photonic lattice made by spatiotemporally modulating the atomic response, where the dispersion acquires a spectral Doppler shift with respect to the probe direction. A static defect placed in such a moving lattice produces a spatial localization of light in the band gap with a shifting frequency that depends on the direction of incident field with respect to the moving lattice. This phenomenon has an impact not only in photonics but also in broader areas such as condensed matter and acoustics, opening the doors for designing new devices such as compact isolators, circulators, nonreciprocal traps, sensors, unidirectional tunable filters, and possibly even a unidirectional laser.
我们证明了通过时空调制原子响应来制作移动光子晶格,可以非互易地对光子进行局域化,其中色散相对于探测方向具有光谱多普勒频移。在这种移动晶格中放置一个静态缺陷会在带隙中产生光的空间局域化,其频率随入射场相对于移动晶格的方向而变化。这种现象不仅对光子学有影响,而且对凝聚态物质和声学等更广泛的领域也有影响,为设计新设备开辟了道路,例如紧凑型隔离器、环行器、非互易陷阱、传感器、单向可调滤波器,甚至可能是单向激光。