Active topological photonics

Author:

Ota Yasutomo1,Takata Kenta2,Ozawa Tomoki3,Amo Alberto4,Jia Zhetao5,Kante Boubacar5,Notomi Masaya26,Arakawa Yasuhiko1,Iwamoto Satoshi178

Affiliation:

1. Institute for Nano Quantum Information Electronics, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo, 153-8505, Japan

2. NTT Basic Research Laboratories, NTT Corporation, 3-1 Morinosato-Wakamiya, Atsugi 243-0198,Kanagawa, Japan

3. Interdisciplinary Theoretical and Mathematical Sciences Program Mathematical Sciences Program (iTHEMS), RIKEN, Wako, Saitama 351-0198,Japan

4. Université de Lille, CNRS, UMR 8523 – PhLAM – Physique des Lasers, Atomes et Molécules, Lille, France

5. Electrical Engineering and Computer Sciences, University of California Berkeley, Berkeley, CA, USA

6. Department of Physics, Tokyo Institute of Technology, H-55, Ookayama 2-12-1, Meguro 152-8550, Tokyo, Japan

7. Institute of Industrial Science, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo, 153-8505, Japan

8. Research Center for Advanced Science and Technology, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo, 153-8505, Japan

Abstract

AbstractTopological photonics emerged as a novel route to engineer the flow of light. Topologically protected photonic edge modes, which are supported at the perimeters of topologically nontrivial insulating bulk structures, are of particular interest as they may enable low-loss optical waveguides immune to structural disorder. Very recently, there has been a sharp rise of interest in introducing gain materials into such topological photonic structures, primarily aiming at revolutionizing semiconductor lasers with the aid of physical mechanisms existing in topological physics. Examples of remarkable realizations are topological lasers with unidirectional light output under time-reversal symmetry breaking and topologically protected polariton and micro/nanocavity lasers. Moreover, the introduction of gain and loss provides a fascinating playground to explore novel topological phases, which are in close relevance to non-Hermitian and parity-time symmetric quantum physics and are, in general, difficult to access using fermionic condensed matter systems. Here, we review the cutting-edge research on active topological photonics, in which optical gain plays a pivotal role. We discuss recent realizations of topological lasers of various kinds, together with the underlying physics explaining the emergence of topological edge modes. In such demonstrations, the optical modes of the topological lasers are determined by the dielectric structures and support lasing oscillation with the help of optical gain. We also address recent research on topological photonic systems in which gain and loss, themselves, essentially influence topological properties of the bulk systems. We believe that active topological photonics provides powerful means to advance micro/nanophotonics systems for diverse applications and topological physics, itself, as well.

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

Reference328 articles.

1. A topological quantum optics interface;Science,2018

2. Bulk and edge-state arcs in non-Hermitian coupled-resonator arrays;Phys Rev A,2018

3. Anomalous helical edge states in a non-Hermitian Chern insulator;Phys Rev B,2018

4. Surface impedance and bulk band geometric phases in one-dimensional systems;Phys Rev X,2014

5. Higher-order topological corner states induced by gain and loss;Phys Rev Lett,2019

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