TY - JOUR
T1 - Highly Efficient Active All-Dielectric Metasurfaces Based on Hybrid Structures Integrated with Phase-Change Materials
T2 - From Terahertz to Optical Ranges
AU - Lan, Chuwen
AU - Ma, He
AU - Wang, Manting
AU - Gao, Zehua
AU - Liu, Kai
AU - Bi, Ke
AU - Zhou, Ji
AU - Xin, Xiangjun
N1 - Publisher Copyright:
© Copyright 2019 American Chemical Society.
PY - 2019/4/17
Y1 - 2019/4/17
N2 - Recently, all-dielectric metasurfaces (AMs) have emerged as a promising platform for high-efficiency devices ranging from the terahertz to optical ranges. However, active and fast tuning of their properties, such as amplitude, phase, and operating frequency, remains challenging. Here, a generic method is proposed for obtaining high-efficiency active AMs from the terahertz to optical ranges by using "hybrid structures" integrated with phase-change materials. Various phase-change mechanisms including metal-insulator phase change, nonvolatile phase change, and ferroelectric phase change are investigated. We first experimentally demonstrate several high-efficiency active AMs operating in the terahertz range based on hybrid structures composed of free-standing silicon microstructures covered with ultrathin phase-change nanofilms (thickness d ≪ λ). We show that both the frequencies and the strength of the Mie resonances can be efficiently tuned, resulting in unprecedented modulation depth. Furthermore, detailed analyses of available phase-change materials and their properties are provided to offer more options for active AMs. Finally, several feasible hybrid structures for active AMs in the optical range are proposed and confirmed numerically. The broad platform built in this work for active manipulation of waves from the terahertz to optical ranges may have numerous potential applications in optical devices including switches, modulators, and sensors.
AB - Recently, all-dielectric metasurfaces (AMs) have emerged as a promising platform for high-efficiency devices ranging from the terahertz to optical ranges. However, active and fast tuning of their properties, such as amplitude, phase, and operating frequency, remains challenging. Here, a generic method is proposed for obtaining high-efficiency active AMs from the terahertz to optical ranges by using "hybrid structures" integrated with phase-change materials. Various phase-change mechanisms including metal-insulator phase change, nonvolatile phase change, and ferroelectric phase change are investigated. We first experimentally demonstrate several high-efficiency active AMs operating in the terahertz range based on hybrid structures composed of free-standing silicon microstructures covered with ultrathin phase-change nanofilms (thickness d ≪ λ). We show that both the frequencies and the strength of the Mie resonances can be efficiently tuned, resulting in unprecedented modulation depth. Furthermore, detailed analyses of available phase-change materials and their properties are provided to offer more options for active AMs. Finally, several feasible hybrid structures for active AMs in the optical range are proposed and confirmed numerically. The broad platform built in this work for active manipulation of waves from the terahertz to optical ranges may have numerous potential applications in optical devices including switches, modulators, and sensors.
KW - all-dielectric metasurfaces
KW - optical range
KW - phase-change materials
KW - terahertz
KW - tunability
UR - http://www.scopus.com/inward/record.url?scp=85064637615&partnerID=8YFLogxK
U2 - 10.1021/acsami.8b22466
DO - 10.1021/acsami.8b22466
M3 - Article
C2 - 30896151
AN - SCOPUS:85064637615
SN - 1944-8244
VL - 11
SP - 14229
EP - 14238
JO - ACS applied materials & interfaces
JF - ACS applied materials & interfaces
IS - 15
ER -