Dual-Broadband Topological Photonic Crystal Edge State Based on Liquid Crystal Tunability

Jinying Zhang*, Bingnan Wang, Jiacheng Wang, Xinye Wang, Yexiaotong Zhang

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

The rapid advancements in optical communication and sensing technologies have significantly increased the demand for advanced tunable spectral systems. This study presents a dual-band terahertz transmission and manipulation approach by leveraging the topologically protected properties of valley-topological photonic crystal edge states. The designed structure facilitates the excitation of the K valley within the range of 0.851–0.934 THz and the K′ valley from 1.604 to 1.686 THz, while also demonstrating anomalous refraction and birefringence. The calculated emission angles, derived through momentum matching, enable transitions between single-wave and dual-wave emissions and allow for precise angle control. The introduction of the liquid crystal material NJU-LDn-4 enables continuous tuning of the dual-band spectral range under a varying electric field, broadening the operating frequency bands to the ranges of 0.757–0.996 THz and 1.426–1.798 THz, respectively. These findings suggest promising applications in tunable filter design, optical communication, photonic computing, optical sensing, and high-resolution imaging, particularly in novel optical devices requiring precise control over spectral characteristics and light propagation.

Original languageEnglish
Article number2778
JournalMaterials
Volume18
Issue number12
DOIs
Publication statusPublished - Jun 2025

Keywords

  • birefringence
  • dual band
  • edge states
  • liquid crystal
  • terahertz
  • valley photonic crystal

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