Wan Lei, Yang Zhiqiang, Zhou Wenfeng, Wen Meixun, Feng Tianhua, Zeng Siqing, Liu Dong, Li Huan, Pan Jingshun, Zhu Ning, Liu Weiping, Li Zhaohui
Department of Electronic Engineering, College of Information Science and Technology, Jinan University, 510632, Guangzhou, China.
Guangdong Provincial Key Laboratory of Optoelectronic Information Processing Chips and Systems, Sun Yat-sen University, 510275, Guangzhou, China.
Light Sci Appl. 2022 May 20;11(1):145. doi: 10.1038/s41377-022-00840-6.
A highly efficient on-chip acousto-optic modulator is as a key component and occupies an exceptional position in microwave-to-optical conversion. Homogeneous thin-film lithium niobate is preferentially employed to build the suspended configuration for the acoustic resonant cavity, with the aim of improving the modulation efficiency of the device. However, the limited cavity length and complex fabrication recipe of the suspended prototype restrain further breakthroughs in modulation efficiency and impose challenges for waveguide fabrication. In this work, based on a nonsuspended thin-film lithium niobate-chalcogenide glass hybrid Mach-Zehnder interferometer waveguide platform, we propose and demonstrate a built-in push-pull acousto-optic modulator with a half-wave-voltage-length product VL as low as 0.03 V cm that presents a modulation efficiency comparable to that of a state-of-the-art suspended counterpart. A microwave modulation link is demonstrated using our developed built-in push-pull acousto-optic modulator, which has the advantage of low power consumption. The nontrivial acousto-optic modulation performance benefits from the superior photoelastic property of the chalcogenide membrane and the completely bidirectional participation of the antisymmetric Rayleigh surface acoustic wave mode excited by the impedance-matched interdigital transducer, overcoming the issue of low modulation efficiency induced by the incoordinate energy attenuation of acoustic waves applied to the Mach-Zehnder interferometer with two arms in traditional push-pull acousto-optic modulators.
一种高效的片上声光调制器作为关键组件,在微波到光的转换中占据特殊地位。优先采用均匀薄膜铌酸锂构建声学谐振腔的悬浮结构,以提高器件的调制效率。然而,悬浮原型的腔长有限且制造工艺复杂,限制了调制效率的进一步突破,并给波导制造带来挑战。在这项工作中,基于非悬浮薄膜铌酸锂 - 硫系玻璃混合马赫 - 曾德尔干涉仪波导平台,我们提出并演示了一种内置推挽式声光调制器,其半波电压 - 长度乘积VL低至0.03 V·cm,调制效率与最先进的悬浮式同类器件相当。使用我们开发的内置推挽式声光调制器演示了微波调制链路,该调制器具有低功耗的优点。出色的声光调制性能得益于硫系玻璃膜优异的光弹性特性以及由阻抗匹配叉指换能器激发的反对称瑞利表面声波模式的完全双向参与,克服了传统推挽式声光调制器中施加到马赫 - 曾德尔干涉仪两臂的声波能量衰减不协调导致的调制效率低的问题。