Wang Wei, Wang Lu-Qi, Xue Rui-Dong, Chen Hao-Ling, Guo Rui-Peng, Liu Yongmin, Chen Jing
School of Physics, Nankai University, Tianjin 300071, People's Republic of China.
Department of Mechanical and Industrial Engineering and Department of Electrical and Computer Engineering, Northeastern University, Boston, Massachusetts 02115, USA.
Phys Rev Lett. 2017 Aug 18;119(7):077401. doi: 10.1103/PhysRevLett.119.077401. Epub 2017 Aug 16.
We investigate the excitation and propagation of surface plasmon polaritons (SPPs) at a geometrically flat metal-dielectric interface with a parity-time (PT) symmetric modulation on the permittivity ϵ(x) of the dielectric medium. We show that two striking effects can be simultaneously achieved thanks to the nonreciprocal nature of the Bloch modes in the system. First, SPPs can be unidirectionally excited when light is normally incident on the interface. Secondly, the backscattering of SPPs into the far field is suppressed, producing a radiative-loss-free effect on the unidirectional SPPs. As a result, the lifetime and propagation distance of SPPs can be significantly improved. These results show that PT symmetry can be employed as a new approach to designing transformative nanoscale optical devices, such as low-loss plasmonic routers and isolators for efficient optical computation, communication, and information processing.
我们研究了在具有介电常数ϵ(x)的奇偶时间(PT)对称调制的几何平面金属-介电界面上表面等离激元极化激元(SPP)的激发和传播。我们表明,由于系统中布洛赫模式的非互易性质,可以同时实现两种显著的效果。首先,当光垂直入射到界面时,SPP可以被单向激发。其次,SPP向远场的反向散射受到抑制,对单向SPP产生无辐射损耗的效果。结果,SPP的寿命和传播距离可以显著提高。这些结果表明,PT对称性可以作为一种新的方法来设计变革性的纳米级光学器件,如用于高效光学计算、通信和信息处理的低损耗等离子体路由器和隔离器。