铌酸锂
钽酸锂
光子学
调制(音乐)
材料科学
光电子学
瑞利散射
光学
光子
实现(概率)
光子集成电路
频率调制
微波食品加热
压电
相位调制
放松(心理学)
光学透明度
极限(数学)
锂(药物)
物理
集成电路
电磁感应透明
电子工程
作者
Jianfeng He,Xiankai Sun
标识
DOI:10.60893/figshare.apr.c.8400840
摘要
Realization of efficient acousto-optic modulation on a chip is important for the development of photonic integrated circuits. While thin-film lithium niobate has been considered as an ideal platform for this purpose, recent studies have shown that its large birefringence, strong photorefraction, and slow relaxation of electro-optic response may limit its applications in high-speed optical communication. Lithium tantalate, another piezoelectric material with an even wider transparency window, emerges as a competing candidate for photonic integrated circuits because of its smaller birefringence, weaker photorefraction, and faster relaxation of electro-optic response. Here, by adopting the mechanism of bound states in the continuum for ultralow-loss waveguiding, we demonstrate for the first time acousto-optic modulation on thin-film lithium tantalate. The VπL is measured to be as low as 0.107 (0.047) V·cm for the fundamental (first-order) Rayleigh acoustic mode at 0.626 (1.104) GHz, outperforming most of their counterparts on the lithium niobate platforms. Our work establishes a direct link between optical and microwave photons on thin-film lithium tantalate, and paves the way for on-chip applications of acoustic sensors, lasers, isolators, and filters.
科研通智能强力驱动
Strongly Powered by AbleSci AI