Minah SeoJisoo KyoungHyeong‐Ryeol ParkSukmo KooHyun-sun KimHannes BernienBong Jun KimJong Ho ChoeY. H. AhnHyun-Tak KimNamkyoo ParkQ‐Han ParkKwangjun AhnDai‐Sik Kim
Unusual performances of metamaterials such as negative index of refraction, memory effect, and cloaking originate from the resonance features of the metallic composite atom(1-6). Indeed, control of metamaterial properties by changing dielectric environments of thin films below the metallic resonators has been demonstrated(7-11). However, the dynamic control ranges are still limited to less than a factor of 10,(7-11) with the applicable bandwidth defined by the sharp resonance features. Here, we present ultra-broad-band metamaterial thin film with colossal dynamic control range, fulfilling present day research demands. Hybridized with thin VO(2) (vanadium dioxide) (12-18) films, nanoresonator supercell arrays designed for one decade of spectral width in terahertz frequency region show an unprecedented extinction ratio of over 10000 when the underlying thin film experiences a phase transition. Our nanoresonator approach realizes the full potential of the thin film technology for long wavelength applications.
Minah Seo (1835911)Jisoo Kyoung (2161354)Hyeongryeol Park (2293213)Sukmo Koo (2293198)Hyun-sun Kim (2293204)Hannes Bernien (2293201)Bong Jun Kim (2293216)Jong Ho Choe (2293210)Yeong Hwan Ahn (1715974)Hyun-Tak Kim (1367031)Namkyoo Park (1351002)Q-Han Park (1794025)Kwangjun Ahn (2293207)Dai-sik Kim (1531111)
Lei KangSawyer D. CampbellDouglas H. WernerShengxiang Wang
Lei KangSawyer D. CampbellPingjuan L. WernerDouglas H. WernerShengxiang Wang
Hao SunTangyou SunQianju SongLiang BianZao YiJianguo ZhangZhiqiang HaoChaojun TangPinghui WuQingdong Zeng
Tatsuyuki KawakuboTakehiko Nakagawa