3D-printed optical-electronic integrated devices

被引:0
|
作者
Yingying Liu
Xianqing Lin
Cong Wei
Chuang Zhang
Jiannian Yao
Yong Sheng Zhao
机构
[1] Chinese Academy of Sciences,Key Laboratory of Photochemistry, Institute of Chemistry
[2] University of Chinese Academy of Sciences,undefined
来源
Science China Chemistry | 2019年 / 62卷
关键词
optical-electronic integration; 3D printing; photoelectric modulation; organic laser;
D O I
暂无
中图分类号
学科分类号
摘要
The monolithic incorporation of electrical and optical components is critically important for achieving high-speed on-chip signal processing, but yet hard to satisfy the explosive growth in the demands on bandwidth and information density. Three-dimensional (3D) circuits, which are desirable for their improved performance in data handling, are ideal candidates to simultaneously promise high-capacity computing with improved speed and energy efficiency. In such highly integrated circuits, however, the selective electrical modulation of light signals is still difficult to achieve owing to the lack of controllable integration of microscale optical functional devices and modulation units. In this work, we demonstrate an electrically modulated microlaser module on a 3D-integrated microsystem composed of a dye-doped polymeric microcavity and an underneath microscale electrical heating circuit. The lasing mode was modulated based on electrical heating-assisted thermo-optic response of the polymeric matrices, which were further fabricated into coupled microdisks, yielding wavelength-tunable single-mode microlasers with selective electrical modulation. On this basis, a prototype of electrically controlled microlaser module with reduced signal crosstalk was achieved. The results will provide a useful enlightenment for the rational design of novel tunable optical devices with more complicated functionalities under far-field regulation, paving the way for the on-chip optoelectronic integration.
引用
收藏
页码:1398 / 1404
页数:6
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