材料科学
太赫兹辐射
超材料
谐振器
光激发
纳米光子学
光电子学
超短脉冲
电介质
调制(音乐)
诺共振
等离子体子
光学
物理
激发
激光器
量子力学
声学
作者
Thomas Caiwei Tan,Yogesh Kumar Srivastava,Rajour Tanyi Ako,Wenhao Wang,Madhu Bhaskaran,Sharath Sriram,Ibraheem Al‐Naib,Eric Plum,Ranjan Singh
标识
DOI:10.1002/adma.202100836
摘要
Abstract A bound state in the continuum (BIC) is a nonradiating state of light embedded in the continuum of propagating modes providing drastic enhancement of the electromagnetic field and its localization at micro–nanoscale. However, access to such modes in the far‐field requires symmetry breaking. Here, it is demonstrated that a nanometric dielectric or semiconductor layer, 1000 times thinner than the resonant wavelength (λ/1000), induces a dynamically controllable quasi‐bound state in the continuum (QBIC) with ultrahigh quality factor in a symmetric metallic metasurface at terahertz frequencies. Photoexcitation of nanostrips of germanium activates ultrafast switching of a QBIC resonance with 200% transmission intensity modulation and complete recovery within 7 ps on a low‐loss flexible substrate. The nanostrips also form microchannels that provide an opportunity for BIC‐based refractive index sensing. An optimization model is presented for (switchable) QBIC resonances of metamaterial arrays of planar symmetric resonators modified with any (active) dielectric for inverse metamaterial design that can serve as an enabling platform for active micro–nanophotonic devices.
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