Nishida Kentaro, Tseng Po-Hsueh, Chen Yu-Chieh, Wu Pang-Han, Yang Chi-Yin, Yang Jhen-Hong, Chen Wei-Ruei, Pashina Olesiya, Petrov Mihail I, Chen Kuo-Ping, Chu Shi-Wei
Department of Physics, National Taiwan University, 1, Sec 4, Roosevelt Rd., Taipei 10617, Taiwan.
Institute of Imaging and Biomedical Photonics, National Yang Ming Chiao Tung University, 301 Gaofa third Road, Tainan 711, Taiwan.
Nano Lett. 2023 Dec 27;23(24):11727-11733. doi: 10.1021/acs.nanolett.3c03597. Epub 2023 Nov 28.
We demonstrated optical bistability in an amorphous silicon Mie resonator with a size of ∼100 nm and -factor as low as ∼4 by utilizing photothermal and thermo-optical effects. We not only experimentally confirmed the steep intensity transition and the hysteresis in the scattering response from silicon nanocuboids but also established a physical model to numerically explain the underlying mechanism based on temperature-dependent competition between photothermal heating and heat dissipation. The transition between the bistable states offered particularly steep superlinearity of scattering intensity, reaching an effective nonlinearity order of ∼100th power over excitation intensity, leading to the potential of advanced optical switching devices and super-resolution microscopy.
我们通过利用光热效应和热光效应,在尺寸约为100纳米且品质因数低至约4的非晶硅米氏谐振器中展示了光学双稳性。我们不仅通过实验证实了硅纳米立方体散射响应中的陡峭强度转变和滞后现象,还建立了一个物理模型,以数值方式解释基于光热加热与热耗散之间温度依赖性竞争的潜在机制。双稳态之间的转变提供了特别陡峭的散射强度超线性,在激发强度上达到约100次幂的有效非线性阶数,这为先进的光学开关器件和超分辨率显微镜带来了潜力。