Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore, 637371, Singapore.
Centre for Disruptive Photonic Technologies, The Photonics Institute, Nanyang Technological University, Singapore, 639798, Singapore.
Adv Mater. 2019 Sep;31(37):e1901921. doi: 10.1002/adma.201901921. Epub 2019 Jul 31.
The remarkable emergence of all-dielectric meta-photonics governed by the physics of high-index dielectric materials offers a low-loss platform for efficient manipulation and subwavelength control of electromagnetic waves from microwaves to visible frequencies. Dielectric metasurfaces can focus electromagnetic waves, generate structured beams and vortices, enhance local fields for advanced sensing, and provide novel functionalities for classical and quantum technologies. Recent advances in meta-photonics are associated with the exploration of exotic electromagnetic modes called the bound states in the continuum (BICs), which offer a simple interference mechanism to achieve large quality factors (Q) through excitation of supercavity modes in dielectric nanostructures and resonant metasurfaces. Here, a BIC-driven terahertz metasurface with dynamic control of high-Q silicon supercavities that are reconfigurable at a nanosecond timescale is experimentally demonstrated. It is revealed that such supercavities enable low-power, optically induced terahertz switching and modulation of sharp resonances for potential applications in lasing, mode multiplexing, and biosensing.
全介质超构光子学的显著出现受限于高折射率介电材料的物理特性,为从微波到可见光频率的电磁波的高效操控和亚波长控制提供了一个低损耗的平台。介电超表面可以聚焦电磁波、产生结构化光束和涡旋、增强局部场用于先进传感,并为经典和量子技术提供新的功能。元光子学的最新进展与探索称为连续体中的束缚态(BICs)的奇异电磁波模式有关,这些模式通过在介电纳米结构和共振超表面中激发超腔模式提供了一种简单的干涉机制,从而实现大的品质因数(Q)。在这里,实验演示了一种由 BIC 驱动的太赫兹超表面,其具有在纳秒时间尺度上可重新配置的高 Q 硅超腔的动态控制。结果表明,这种超腔能够实现低功率、光诱导的太赫兹开关和尖锐共振的调制,有望在激光、模式复用和生物传感等方面得到应用。