Ultrafast All-Optical Diffraction Switching Using Semiconductor Metasurfaces

APPLIED PHYSICS LETTERS(2021)

引用 9|浏览8
暂无评分
摘要
Ultrafast all-optical switching using Mie resonant metasurfaces requires both on-demand tunability of the wavefront of the light and ultrafast time response. However, devising a switching mechanism that has a high contrast between its "on" and "off" states without compromising speed is challenging. Here, we report the design of a tunable Mie resonant metasurface that achieves this behavior. Our approach utilizes a diffractive array of semiconductor resonators that support both dipolar and quadrupolar Mie resonances. By balancing the strengths of the dipole and quadrupole resonances, we can suppress radiation into the first diffraction order, thus creating a clearly delineated "off"-state at the operating wavelength. Then, we use optical injection of free- carriers to spectrally shift the multipoles and rebalance the multipole strengths, thereby enabling radiation into the diffraction order-all on an ultrafast timescale. We demonstrate ultrafast off-to-on switching with I-on/I-off approximate to 5 modulation of the diffracted intensity and ultrafast on-to-off switching with I-on/I-off approximate to 9 modulation. Both switches exhibit a fast tau(tr)approximate to 2.7 ps relaxation time at 215 mu J cm(-2) pump fluence. Further, we show that for higher fluences, the temporal response of the metasurface is governed by thermo-optic effects. This combination of multipole engineering with lattice diffraction opens design pathways for tunable metasurface-based integrated devices.
更多
查看译文
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要