TY - JOUR
T1 - Subwavelength control of light transport at the exceptional point by non-Hermitian metagratings
AU - Xu, Yihao
AU - Li, Lin
AU - Jeong, Heonyeong
AU - Kim, Seokwoo
AU - Kim, Inki
AU - Rho, Junsuk
AU - Liu, Yongmin
N1 - Publisher Copyright:
©2023 The Authors.
PY - 2023
Y1 - 2023
N2 - The concept of non-Hermitian physics, originally developed in the context of quantum field theory, has been investigated on distinct photonic platforms and created a plethora of counterintuitive phenomena. Interfacing non-Hermitian photonics and nanoplasmonics, here, we demonstrate unidirectional excitation and reflection of surface plasmon polaritons by elaborately designing the permittivity profile of non-Hermitian metagratings, in which the eigenstates of the system can coalesce at an exceptional point. Continuous tuning of the excitation or reflection ratios is also possible through altering the geometry of the metagrating. The controllable directionality and robust performance are attributed to the phase transition near the exceptional point, which is fully confirmed by the theoretic calculation, numerical simulation, and experimental characterization. Our work pushes non-Hermitian photonics to the nanoscale regime and paves the way toward high-performance plasmonic devices with superior controllability, performance, and robustness by using the topological effect associated with non-Hermitian systems.
AB - The concept of non-Hermitian physics, originally developed in the context of quantum field theory, has been investigated on distinct photonic platforms and created a plethora of counterintuitive phenomena. Interfacing non-Hermitian photonics and nanoplasmonics, here, we demonstrate unidirectional excitation and reflection of surface plasmon polaritons by elaborately designing the permittivity profile of non-Hermitian metagratings, in which the eigenstates of the system can coalesce at an exceptional point. Continuous tuning of the excitation or reflection ratios is also possible through altering the geometry of the metagrating. The controllable directionality and robust performance are attributed to the phase transition near the exceptional point, which is fully confirmed by the theoretic calculation, numerical simulation, and experimental characterization. Our work pushes non-Hermitian photonics to the nanoscale regime and paves the way toward high-performance plasmonic devices with superior controllability, performance, and robustness by using the topological effect associated with non-Hermitian systems.
UR - https://www.scopus.com/pages/publications/85159738749
U2 - 10.1126/sciadv.adf3510
DO - 10.1126/sciadv.adf3510
M3 - 文章
C2 - 37172089
AN - SCOPUS:85159738749
SN - 2375-2548
VL - 9
JO - Science Advances
JF - Science Advances
IS - 19
M1 - eadf3510
ER -