Hassan Absar U, Zhen Bo, Soljačić Marin, Khajavikhan Mercedeh, Christodoulides Demetrios N
CREOL/College of Optics and Photonics, University of Central Florida, Orlando, Florida 32816, USA.
Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Phys Rev Lett. 2017 Mar 3;118(9):093002. doi: 10.1103/PhysRevLett.118.093002.
We show that a two-level non-Hermitian Hamiltonian with constant off-diagonal exchange elements can be analyzed exactly when the underlying exceptional point is perfectly encircled in the complex plane. The state evolution of this system is explicitly obtained in terms of an ensuing transfer matrix, even for large encirclements, regardless of adiabatic conditions. Our results clearly explain the direction-dependent nature of this process and why in the adiabatic limit its outcome is dominated by a specific eigenstate-irrespective of initial conditions. Moreover, numerical simulations suggest that this mechanism can still persist in the presence of nonlinear effects. We further show that this robust process can be harnessed to realize an optical omnipolarizer: a configuration that generates a desired polarization output regardless of the input polarization state, while from the opposite direction it always produces the counterpart eigenstate.
我们表明,当复平面中潜在的例外点被完美环绕时,具有恒定非对角交换元素的两能级非厄米哈密顿量可以被精确分析。即使对于大的环绕情况,无论绝热条件如何,该系统的状态演化都可以通过随后的转移矩阵明确得到。我们的结果清楚地解释了这个过程的方向依赖性,以及为什么在绝热极限下其结果由特定的本征态主导——与初始条件无关。此外,数值模拟表明,在存在非线性效应的情况下,这种机制仍然可以持续存在。我们进一步表明,这种稳健的过程可以被用于实现一个光学全极化器:一种配置,无论输入偏振态如何,都能产生所需的偏振输出,而从相反方向它总是产生对应的本征态。