等离子体子
材料科学
光电子学
超短脉冲
纳米光子学
光子学
纳米尺度
隧道枢纽
电场
调制(音乐)
光开关
非线性系统
量子点
非线性光学
表面等离子体激元
表面等离子体子
神经形态工程学
光学
信号(编程语言)
纳米线
纳米技术
纳米结构
光子晶体
二次谐波产生
作者
Yuankai Tang,SAURAV PRAKASH,Monica Allen,Jeffery Allen,Ariando Ariando,Amit Agrawal,Hayk Harutyunyan
标识
DOI:10.6084/m9.figshare.c.8313997
摘要
Active and efficient control of nonlinear optical processes is essential for integrated photonics, with applications in signal processing, ultrafast switching, and quantum light manipulation. While nanophotonic structures are powerful for enhancing nonlinearities, achieving wide-range electrical tunability has remained a challenge. Plasmonic tunnel junctions offer a unique path to bridge this gap because they combine extreme optical field confinement with direct electrical addressability in a single nanoscale device. Here, we report the first demonstration of electrically tunable second-harmonic generation (SHG) in plasmonic tunnel junctions. Using ultra-stable epitaxial heterostructures, we achieve reproducible modulation of SHG with depths up to ~500% and rates above 1.3 V⁻¹. We identify two mechanisms, electric-field-induced SHG (EFISH) and ion migration, that can either compete or cooperate depending on junction thickness and bias, enabling both broad tunability and ferroelectric-like hysteretic switching. These findings establish plasmonic tunnel junctions as a platform for electrically controlled nonlinear optics, with potential for nanoscale light sources, reconfigurable modulators, and neuromorphic photonic devices.
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