Realization of Time-Reversal Invariant Photonic Topological Anderson Insulators.

Phys Rev Lett

School of Physics & State Key Laboratory of Optoelectronic Materials and Technologies, Sun Yat-sen University, Guangzhou 510275, China.

Published: September 2024

AI Article Synopsis

  • Disorder is a common phenomenon in nature that has been studied in photonics to understand light behavior and for practical applications like random lasers.
  • Recent research in topological photonics has led to the discovery of topological Anderson insulators, with a focus on achieving these without breaking time-reversal symmetry.
  • The study demonstrates the effects of disorder on light propagation, showing unidirectional movement of helical edge modes and introducing new ways to manipulate light using disorder in systems without magnets.

Article Abstract

Disorder, which is ubiquitous in nature, has been extensively explored in photonics for understanding the fundamental principles of light diffusion and localization, as well as for applications in functional resonators and random lasers. Recently, the investigation of disorder in topological photonics has led to the realization of topological Anderson insulators characterized by an unexpected disorder-induced phase transition. However, the observed photonic topological Anderson insulators so far are limited to the time-reversal symmetry breaking systems. Here, we propose and realize a photonic quantum spin Hall topological Anderson insulator without breaking time-reversal symmetry. The disorder-induced topological phase transition is comprehensively confirmed through the theoretical effective Dirac Hamiltonian, numerical analysis of bulk transmission, and experimental examination of bulk and edge transmissions. We present convincing evidence for the unidirectional propagation and robust transport of helical edge modes, which are the key features of nontrivial time-reversal invariant topological Anderson insulators. Furthermore, we demonstrate disorder-induced beam steering, highlighting the potential of disorder as a new degree of freedom to manipulate light propagation in magnetic-free systems. Our work not only paves the way for observing unique topological photonic phases but also suggests potential device applications through the utilization of disorder.

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Source
http://dx.doi.org/10.1103/PhysRevLett.133.133802DOI Listing

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