Focusing light with a metal film coated patchy particle

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Focusing light with a metal film coated patchy particle. / Xu, Chu; Ye, Ran; Zou, Pengxin et al.
Yn: Optics Express, Cyfrol 31, Rhif 6, 13.03.2023, t. 10894-10904.

Allbwn ymchwil: Cyfraniad at gyfnodolynErthygladolygiad gan gymheiriaid

HarvardHarvard

Xu, C, Ye, R, Zou, P, Yang, T, Melinte, S, Wang, Z & Zuo, C 2023, 'Focusing light with a metal film coated patchy particle', Optics Express, cyfrol. 31, rhif 6, tt. 10894-10904. https://doi.org/10.1364/OE.484060

APA

Xu, C., Ye, R., Zou, P., Yang, T., Melinte, S., Wang, Z., & Zuo, C. (2023). Focusing light with a metal film coated patchy particle. Optics Express, 31(6), 10894-10904. https://doi.org/10.1364/OE.484060

CBE

Xu C, Ye R, Zou P, Yang T, Melinte S, Wang Z, Zuo C. 2023. Focusing light with a metal film coated patchy particle. Optics Express. 31(6):10894-10904. https://doi.org/10.1364/OE.484060

MLA

VancouverVancouver

Xu C, Ye R, Zou P, Yang T, Melinte S, Wang Z et al. Focusing light with a metal film coated patchy particle. Optics Express. 2023 Maw 13;31(6):10894-10904. doi: 10.1364/OE.484060

Author

Xu, Chu ; Ye, Ran ; Zou, Pengxin et al. / Focusing light with a metal film coated patchy particle. Yn: Optics Express. 2023 ; Cyfrol 31, Rhif 6. tt. 10894-10904.

RIS

TY - JOUR

T1 - Focusing light with a metal film coated patchy particle

AU - Xu, Chu

AU - Ye, Ran

AU - Zou, Pengxin

AU - Yang, Tianyu

AU - Melinte, Sorin

AU - Wang, Zengbo (James )

AU - Zuo, Chao

PY - 2023/3/13

Y1 - 2023/3/13

N2 - Microsphere-assisted super-resolution imaging is a promising technique that can significantly enhance the resolution of conventional optical microscopes. The focus of a classical microsphere is called photonic nanojet, which is a symmetric high-intensity electromagnetic field. Recently, patchy microspheres have been reported to have superior imaging performance than pristine microspheres, and coating microspheres with metal films leads to the formation of photonic hooks, which can enhance the imaging contrast of microspheres. Understanding the influence of metal patches on the near-field focusing of patchy particles is important for the rational design of a nanostructured microlens. In this work, we theoretically and experimentally showed that the light waves can be focused and engineered using patchy particles. When coating dielectric particles with Ag films, light beams with a hook-like structure or S-shaped structure can be generated. Simulation results show that the waveguide ability of metal films and the geometric asymmetry of patchy particles cause the formation of S-shaped light beams. Compared with classical photonic hooks, S-shaped photonic hooks have a longer effective length and a smaller beam waist at far-field region. Experiments were also carried out to demonstrate the generation of classical and S-shaped photonic hooks from patchy microspheres.

AB - Microsphere-assisted super-resolution imaging is a promising technique that can significantly enhance the resolution of conventional optical microscopes. The focus of a classical microsphere is called photonic nanojet, which is a symmetric high-intensity electromagnetic field. Recently, patchy microspheres have been reported to have superior imaging performance than pristine microspheres, and coating microspheres with metal films leads to the formation of photonic hooks, which can enhance the imaging contrast of microspheres. Understanding the influence of metal patches on the near-field focusing of patchy particles is important for the rational design of a nanostructured microlens. In this work, we theoretically and experimentally showed that the light waves can be focused and engineered using patchy particles. When coating dielectric particles with Ag films, light beams with a hook-like structure or S-shaped structure can be generated. Simulation results show that the waveguide ability of metal films and the geometric asymmetry of patchy particles cause the formation of S-shaped light beams. Compared with classical photonic hooks, S-shaped photonic hooks have a longer effective length and a smaller beam waist at far-field region. Experiments were also carried out to demonstrate the generation of classical and S-shaped photonic hooks from patchy microspheres.

U2 - 10.1364/OE.484060

DO - 10.1364/OE.484060

M3 - Article

VL - 31

SP - 10894

EP - 10904

JO - Optics Express

JF - Optics Express

SN - 1094-4087

IS - 6

ER -