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全介质纳米结构阵列中三种主流光学共振产生的光学力研究。

Investigations on the optical forces from three mainstream optical resonances in all-dielectric nanostructure arrays.

作者信息

Wang Guangdong, Han Zhanghua

机构信息

Shandong Provincial Key Laboratory of Optics and Photonic Devices, Center of Light Manipulation and Applications, School of Physics and Electronics, Shandong Normal University, Jinan 250358, China.

出版信息

Beilstein J Nanotechnol. 2023 Jun 2;14:674-682. doi: 10.3762/bjnano.14.53. eCollection 2023.

Abstract

Light can exert radiation pressure on any object it encounters, and the resulting optical force can be used to manipulate particles at the micro- or nanoscale. In this work, we present a detailed comparison through numerical simulations of the optical forces that can be exerted on polystyrene spheres of the same diameter. The spheres are placed within the confined fields of three optical resonances supported by all-dielectric nanostructure arrays, including toroidal dipole (TD), anapoles, and quasi-bound states in continuum (quasi-BIC) resonances. By elaborately designing the geometry of a slotted-disk array, three different resonances can be supported, which are verified by the multipole decomposition analysis of the scattering power spectrum. Our numerical results show that the quasi-BIC resonance can produce a larger optical gradient force, which is about three orders of magnitude higher than those generated from the other two resonances. The large contrast in the optical forces generated with these resonances is attributed to a higher electromagnetic field enhancement provided by the quasi-BIC. These results suggest that the quasi-BIC resonance is preferred when one employs all-dielectric nanostructure arrays for the trapping and manipulation of nanoparticles by optical forces. It is important to use low-power lasers to achieve efficient trapping and avoid any harmful heating effects.

摘要

光可以对它遇到的任何物体施加辐射压力,由此产生的光力可用于在微米或纳米尺度上操纵粒子。在这项工作中,我们通过数值模拟对可施加在相同直径聚苯乙烯球体上的光力进行了详细比较。这些球体被放置在由全介质纳米结构阵列支持的三种光学共振的受限场中,包括环形偶极子(TD)、无偶极子和连续统中的准束缚态(准BIC)共振。通过精心设计开槽圆盘阵列的几何形状,可以支持三种不同的共振,这通过散射功率谱的多极分解分析得到了验证。我们的数值结果表明,准BIC共振可以产生更大的光梯度力,比其他两种共振产生的光梯度力高约三个数量级。这些共振产生的光力的巨大差异归因于准BIC提供的更高的电磁场增强。这些结果表明,当使用全介质纳米结构阵列通过光力捕获和操纵纳米粒子时,准BIC共振是更可取的。使用低功率激光以实现高效捕获并避免任何有害的热效应很重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31be/10241101/b671f16d5804/Beilstein_J_Nanotechnol-14-674-g002.jpg

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