Hu Zhong, Qin Meibao, Lingjuan He, Liu Wenxing, Yu Tianbao, Xiao Shuyuan, Liao Qinghua
Opt Lett. 2022 Oct 15;47(20):5377-5380. doi: 10.1364/OL.474271.
We propose a width-tunable topological pseudospin-dependent waveguide (TPDW) which can manipulate the optical beam width using a heterostructure of all-dielectric photonic crystals (PhCs). The heterostructure can be realized by introducing a PhC featuring double Dirac cones into the other two PhCs with different topological indices. The topological pseudospin-dependent waveguide states (TPDWSs) achieved from the TPDW exhibit unidirectional transport and immunity against defects. As a potential application of our work, using these characteristics of TPDWSs, we further design a topological pseudospin-dependent beam expander which can expand a narrow beam into a wider one at the communication wavelength of 1.55 µm and is robust against three kinds of defects. The proposed TPDW with widely adjustable width can better dock with other devices to achieve stable and efficient transmission of light. Meanwhile, all-dielectric PhCs have negligible losses at optical wavelengths, which provides the prospect of broad application in photonic integrated devices.
我们提出了一种宽度可调的拓扑赝自旋相关波导(TPDW),它可以利用全介质光子晶体(PhC)的异质结构来操纵光束宽度。这种异质结构可以通过将具有双狄拉克锥的光子晶体引入到另外两个具有不同拓扑指数的光子晶体中来实现。从TPDW获得的拓扑赝自旋相关波导态(TPDWSs)表现出单向传输和对缺陷的免疫性。作为我们工作的一个潜在应用,利用TPDWSs的这些特性,我们进一步设计了一种拓扑赝自旋相关光束扩展器,它可以在1.55 µm的通信波长下将窄光束扩展为更宽的光束,并且对三种缺陷具有鲁棒性。所提出的宽度可广泛调节的TPDW可以更好地与其他器件对接,以实现光的稳定和高效传输。同时,全介质光子晶体在光波长下的损耗可以忽略不计,这为其在光子集成器件中的广泛应用提供了前景。