Progress in Physics ›› 2026, Vol. 46 ›› Issue (3): 107-113.doi: 10.13725/j.cnki.pip.2026.03.001

   

Electrical-field poling of thin-film lithium niobate ridge waveguide with an insulated cladding layer at elevated temperature

SU Yawen 1, JIANG Nan 1, CHEN Haiwei 1, 2, ZHAO Gang 1, ZHU Shining 1, HU Xiaopeng1   

  1. 1. National Laboratory of Solid State Microstructures, College of Engineering and Applied Sciences, School of Physics, Nanjing University, Nanjing 210093, China; 2. College of Electronic and Engineering, Suzhou Polytechnic University, Suzhou 215104, China
  • Received:2026-02-26 Revised:2026-03-10 Accepted:2026-03-12 Online:2026-06-20 Published:2026-05-21

Abstract:

Ferroelectric-domain-engineered thin-film lithium niobate (TFLN) holds significant potential for applications in quantum optics and nonlinear photonics. In periodically poled x-cut TFLN ridge waveguides, however, achieving complete depth-wise domain inversion within the ridge waveguide remains a critical challenge. In this work, we propose a high-temperature-assisted poling technique combined with a SiO2 cladding layer for lithium niobate ridge waveguides. The introduction of a SiO2 overlayer enhances the uniformity of the electric field distribution within the ridge structure, enabling the formation of depth-penetrating ferroelectric domains. Meanwhile, elevated-temperature poling reduces both the resistivity of the SiO2 layer and the coercive field of lithium niobate, thereby facilitating effective domain inversion in the waveguide region under appropriate applied voltages. By optimizing the poling temperature and external voltage conditions, periodic ferroelectric domain structures with high depth uniformity and well-defined periodicity were experimentally achieved. The proposed technique provides a viable route toward the fabrication of high-performance nonlinear photonic chips based on TFLN.

Key words: thin-film lithium niobate, ridge waveguide, ferroelectric domain inversion, insulated cladding layer, high-temperature electric-field poling

CLC Number: