TY - JOUR
T1 - Polarization-dependent quasi-far-field superfocusing strategy of nanoring-based plasmonic lenses
AU - Sun, Hao
AU - Zhu, Yechuan
AU - Gao, Bo
AU - Wang, Ping
AU - Yu, Yiting
N1 - Publisher Copyright:
© The Author(s). 2017.
PY - 2017
Y1 - 2017
N2 - The two-dimensional superfocusing of nanoring-based plasmonic lenses (NRPLs) beyond the diffraction limit in the far-field region remains a great challenge at optical wavelengths. In this paper, in addition to the modulation of structural parameters, we investigated the polarization-dependent focusing performance of a NRPL employing the finite-difference time-domain (FDTD) method. By utilizing the state of polarization (SOP) of incident light, we successfully realize the elliptical-, donut-, and circular-shape foci. The minimum full widths at half maximum (FWHMs) of these foci are ~0.32, ~0.34, and ~0.42 λ0 in the total electric field, respectively, and the depth of focus (DOF) lies in 1.41~1.77 λ0. These sub-diffraction-limit foci are well controlled in the quasi-far-field region. The underlying physical mechanism on the focal shift and an effective way to control the focusing position are proposed. Furthermore, in the case of a high numerical aperture, the longitudinal component, which occupies over 80% of the electric-field energy, decides the focusing patterns of the foci. The achieved sub-diffraction-limit focusing can be widely used for many engineering applications, including the super-resolution imaging, particle acceleration, quantum optical information processing, and optical data storage.
AB - The two-dimensional superfocusing of nanoring-based plasmonic lenses (NRPLs) beyond the diffraction limit in the far-field region remains a great challenge at optical wavelengths. In this paper, in addition to the modulation of structural parameters, we investigated the polarization-dependent focusing performance of a NRPL employing the finite-difference time-domain (FDTD) method. By utilizing the state of polarization (SOP) of incident light, we successfully realize the elliptical-, donut-, and circular-shape foci. The minimum full widths at half maximum (FWHMs) of these foci are ~0.32, ~0.34, and ~0.42 λ0 in the total electric field, respectively, and the depth of focus (DOF) lies in 1.41~1.77 λ0. These sub-diffraction-limit foci are well controlled in the quasi-far-field region. The underlying physical mechanism on the focal shift and an effective way to control the focusing position are proposed. Furthermore, in the case of a high numerical aperture, the longitudinal component, which occupies over 80% of the electric-field energy, decides the focusing patterns of the foci. The achieved sub-diffraction-limit focusing can be widely used for many engineering applications, including the super-resolution imaging, particle acceleration, quantum optical information processing, and optical data storage.
KW - Geometric optics
KW - Nanoring-based plasmonic lenses
KW - Polarization
KW - Subwavelength structures
KW - Superfocusing
UR - http://www.scopus.com/inward/record.url?scp=85032891965&partnerID=8YFLogxK
U2 - 10.1186/s11671-017-2154-1
DO - 10.1186/s11671-017-2154-1
M3 - 文章
AN - SCOPUS:85032891965
SN - 1931-7573
VL - 12
JO - Nanoscale Research Letters
JF - Nanoscale Research Letters
IS - 1
M1 - 386
ER -