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基于具有回音壁模式的氮化硼微盘在紫外区域的单模控制与单个纳米颗粒检测

Single-Mode Control and Individual Nanoparticle Detection in the Ultraviolet Region Based on Boron Nitride Microdisk with Whispering Gallery Mode.

作者信息

Li Jiaxing, Li Qiang, Chen Ransheng, Zhang Qifan, Fang Wannian, Liu Kangkang, Li Feng, Yun Feng

机构信息

Key Laboratory of Physical Electronics and Devices for Ministry of Education and Shaanxi Provincial Key Laboratory of Photonics & Information Technology, Xi'an Jiaotong University, Xi'an 710049, China.

School of Electronic Science and Engineering, Xi'an Jiaotong University, Xi'an 710049, China.

出版信息

Nanomaterials (Basel). 2024 Mar 11;14(6):501. doi: 10.3390/nano14060501.

Abstract

Optical microcavities are known for their strongly enhanced light-matter interactions. Whispering gallery mode (WGM) microresonators have important applications in nonlinear optics, single-mode output, and biosensing. However, there are few studies on resonance modes in the ultraviolet spectrum because most materials with high absorption properties are in the ultraviolet band. In this study, the performance of a microdisk cavity based on boron nitride (BN) was simulated by using the Finite-difference time-domain (FDTD) method. The WGM characteristics of a single BN microdisk with different sizes were obtained, wherein the resonance modes could be regulated from 270 nm to 350 nm; additionally, a single-mode at 301.5 nm is achieved by cascading multiple BN microdisk cavities. Moreover, we found that a BN microdisk with a diameter of 2 μm has a position-independent precise sensitivity for the nanoparticle of 140 nm. This study provides new ideas for optical microcavities to achieve single-mode management and novel coronavirus size screening, such as SARS-CoV-2, in the ultraviolet region.

摘要

光学微腔以其显著增强的光与物质相互作用而闻名。回音壁模式(WGM)微谐振器在非线性光学、单模输出和生物传感等方面有着重要应用。然而,由于大多数具有高吸收特性的材料处于紫外波段,因此关于紫外光谱中共振模式的研究较少。在本研究中,利用时域有限差分(FDTD)方法模拟了基于氮化硼(BN)的微盘腔的性能。获得了不同尺寸的单个BN微盘的WGM特性,其中共振模式可在270纳米至350纳米之间调节;此外,通过级联多个BN微盘腔实现了301.5纳米处的单模。而且,我们发现直径为2微米的BN微盘对140纳米的纳米颗粒具有与位置无关的精确灵敏度。本研究为光学微腔在紫外区域实现单模管理和新型冠状病毒大小筛选(如严重急性呼吸综合征冠状病毒2)提供了新思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5279/10975174/a4085ae9c3b9/nanomaterials-14-00501-g001.jpg

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