TY - JOUR
T1 - Probing the Photonic Spin–Orbit Interactions in the Near Field of Nanostructures
AU - Sun, Lin
AU - Bai, Benfeng
AU - Wang, Jia
AU - Zhang, Mingqian
AU - Zhang, Xiaomeng
AU - Song, Xu
AU - Huang, Lingling
N1 - Publisher Copyright:
© 2019 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2019/8
Y1 - 2019/8
N2 - Photonic spin–orbit interactions (SOI) provide a new design paradigm of functional nanomaterials and nanostructures, and have especially accelerated advances in spin–orbit photonics. The berry phase or the geometric phase, a salient property of SOI, plays a vital role in this process. Thus, the characterization of photonic SOI processes together with the Berry phase is highly demanded for studies such as the optical spin-Hall effect, spin-to-vortex conversion, and Rashba effect. Here, a spin-selective and phase-resolved near-field microscopic method is proposed and experimentally demonstrated for real-time probing and direct visualization of photonic SOI at mesoscale, and a 3D tomographic technique for imaging the spatial evolutions of the optical phases is also properly realized. By analyzing a metallic metasurface as a spin-to-vortex conversion platform, the abrupt geometric phase and the spatially evolutional dynamic phases are directly measured and intuitively illustrated. This work provides a powerful tool for the study of spin–orbit phenomena in near-field optics, and can hold the promise for directly exploring the spin-dependent surface states in plasmonics and photonic topological insulators.
AB - Photonic spin–orbit interactions (SOI) provide a new design paradigm of functional nanomaterials and nanostructures, and have especially accelerated advances in spin–orbit photonics. The berry phase or the geometric phase, a salient property of SOI, plays a vital role in this process. Thus, the characterization of photonic SOI processes together with the Berry phase is highly demanded for studies such as the optical spin-Hall effect, spin-to-vortex conversion, and Rashba effect. Here, a spin-selective and phase-resolved near-field microscopic method is proposed and experimentally demonstrated for real-time probing and direct visualization of photonic SOI at mesoscale, and a 3D tomographic technique for imaging the spatial evolutions of the optical phases is also properly realized. By analyzing a metallic metasurface as a spin-to-vortex conversion platform, the abrupt geometric phase and the spatially evolutional dynamic phases are directly measured and intuitively illustrated. This work provides a powerful tool for the study of spin–orbit phenomena in near-field optics, and can hold the promise for directly exploring the spin-dependent surface states in plasmonics and photonic topological insulators.
KW - Berry phase
KW - metasurfaces
KW - near-field microscopy
KW - spin–orbit interactions
KW - tomographic imaging
UR - http://www.scopus.com/inward/record.url?scp=85067387905&partnerID=8YFLogxK
U2 - 10.1002/adfm.201902286
DO - 10.1002/adfm.201902286
M3 - Article
AN - SCOPUS:85067387905
SN - 1616-301X
VL - 29
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 32
M1 - 1902286
ER -