Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/145071
Title: Extraordinary multipole modes and ultra-enhanced optical lateral force by chirality
Authors: Zhu, Tongtong
Shi, Yuzhi
Ding, Weiqiang
Tsai, Din Ping
Cao, Tun
Liu, Ai Qun
Nieto-Vesperinas, Manuel
Sáenz, Juan José
Wu, Pin Chieh
Qiu, Cheng-Wei
Keywords: Engineering::Electrical and electronic engineering
Issue Date: 2020
Source: Zhu, T., Shi, Y., Ding, W., Tsai, D. P., Cao, T., Liu, A. Q., . . . Qiu, C.-W. (2020). Extraordinary multipole modes and ultra-enhanced optical lateral force by chirality. Physical Review Letters, 125(4), 043901-. doi:10.1103/PhysRevLett.125.043901
Project: R-263-000-D11-114
Journal: Physical Review Letters
Abstract: Strong mode coupling and Fano resonances arisen from exceptional interaction between resonant modes in single nanostructures have raised much attention for their advantages in nonlinear optics, sensing, etc. Individual electromagnetic multipole modes such as quadrupoles, octupoles, and their counterparts from mode coupling (toroidal dipole and nonradiating anapole mode) have been well investigated in isolated or coupled nanostructures with access to high Q factors in bound states in the continuum. Albeit the extensive study on ordinary dielectric particles, intriguing aspects of light-matter interactions in single chiral nanostructures is lacking. Here, we unveil that extraordinary multipoles can be simultaneously superpositioned in a chiral nanocylinder, such as two toroidal dipoles with opposite moments, and electric and magnetic sextupoles. The induced optical lateral forces and their scattering cross sections can thus be either significantly enhanced in the presence of those multipoles with high-Q factors, or suppressed by the bound states in the continuum. This work for the first time reveals the complex correlation between multipolar effects, chiral coupling, and optical lateral force, providing a distinct way for advanced optical manipulation.
URI: https://hdl.handle.net/10356/145071
ISSN: 0031-9007
DOI: 10.1103/PhysRevLett.125.043901
Rights: © 2020 American Physical Society. All rights reserved. This paper was published in Physical Review Letters and is made available with permission of American Physical Society.
Fulltext Permission: open
Fulltext Availability: With Fulltext
Appears in Collections:EEE Journal Articles

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