TY - JOUR
T1 - Deep-subwavelength features of photonic skyrmions in a confined electromagnetic field with orbital angular momentum
AU - Du, Luping
AU - Yang, Aiping
AU - Zayats, Anatoly V.
AU - Yuan, Xiaocong
PY - 2019/7
Y1 - 2019/7
N2 - In magnetic materials, skyrmions are nanoscale regions where the orientation of electron spin changes in a vortex-type manner1-4. Electromagnetic waves carry both spin and orbital angular momenta5,6. Here we show that spin-orbit coupling7-12 in a focused vector beam results in skyrmion-like structure of local photonic spin. While diffraction limits the spatial size of intensity variations, the direction of the electromagnetic field, which defines the polarization and local photonic spin state, is not subject to this limitation. We demonstrate that the local spin direction in the skyrmion-like structure varies on the deep-subwavelength scales down to 1/60 of light wavelength, which corresponds to about 10 nanometre lengthscale. The application of photonic skyrmions may range from high-resolution imaging and precision metrology to quantum technologies and data storage where the local spin state of the field, not its intensity, can be applied to achieve deep-subwavelength optical patterns.
AB - In magnetic materials, skyrmions are nanoscale regions where the orientation of electron spin changes in a vortex-type manner1-4. Electromagnetic waves carry both spin and orbital angular momenta5,6. Here we show that spin-orbit coupling7-12 in a focused vector beam results in skyrmion-like structure of local photonic spin. While diffraction limits the spatial size of intensity variations, the direction of the electromagnetic field, which defines the polarization and local photonic spin state, is not subject to this limitation. We demonstrate that the local spin direction in the skyrmion-like structure varies on the deep-subwavelength scales down to 1/60 of light wavelength, which corresponds to about 10 nanometre lengthscale. The application of photonic skyrmions may range from high-resolution imaging and precision metrology to quantum technologies and data storage where the local spin state of the field, not its intensity, can be applied to achieve deep-subwavelength optical patterns.
UR - http://www.scopus.com/inward/record.url?scp=85064570311&partnerID=8YFLogxK
U2 - 10.1038/s41567-019-0487-7
DO - 10.1038/s41567-019-0487-7
M3 - Letter
SN - 1745-2473
VL - 15
SP - 650
EP - 654
JO - Nature Physics
JF - Nature Physics
IS - 7
ER -