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Ferroelectric Domain Reversal Dynamics in LiNbO 3 Optical Superlattice Investigated with a Real-Time Monitoring System.

Qilu LiuYukun SongFulei WangJiang GuoFeifei WangHongru YangBaitao ZhangDongzhou WangHong LiuYuanhua Sang
Published in: Small (Weinheim an der Bergstrasse, Germany) (2022)
The optical superlattice structure derived from a periodic poling process endows ferroelectric crystals with tunable optical property regulation, which has become one of the most efficient strategies for fabricating high-efficiency optical devices. Achieving a precise superlattice structure has been the main barrier for preparation of specific optical applications due to the unclear dynamics of domain structure regulation. Herein, a real-time monitoring system for the in situ observation of periodic poling of lithium niobate is established to investigate ferroelectric domain reversal dynamics. The formation of reversed domain nuclei, growth, and expansion of the domain are monitored, which is highly related to domain growth dynamics. The nucleation and growth of domain are discussed combined with the monition of domain reversal and the variation of local electric field distribution along with finite element analysis. An electrode configuration with multiholes is proposed to use the local electric field more efficiently and controllably, which could achieve a higher domain nucleus density with high uniformity. Two-mm-thick periodically poled LiNbO 3 crystals with high quality are achieved. A nonlinear light conversion from 1064.2 to 3402.4 nm is realized by the single-resonance optical parameter oscillator with a nonlinear optical efficiency up to 26.2%.
Keyphrases
  • high resolution
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  • room temperature
  • tandem mass spectrometry