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Doping-driven topological polaritons in graphene/α-MoO3 heterostructures.
Hu, Hai; Chen, Na; Teng, Hanchao; Yu, Renwen; Qu, Yunpeng; Sun, Jianzhe; Xue, Mengfei; Hu, Debo; Wu, Bin; Li, Chi; Chen, Jianing; Liu, Mengkun; Sun, Zhipei; Liu, Yunqi; Li, Peining; Fan, Shanhui; García de Abajo, F Javier; Dai, Qing.
Afiliação
  • Hu H; CAS Key Laboratory of Nanophotonic Materials and Devices, CAS Key Laboratory of Standardization and Measurement for Nanotechnology, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing, People's Republic of China. huh@nanoctr.cn.
  • Chen N; University of Chinese Academy of Sciences, Beijing, People's Republic of China. huh@nanoctr.cn.
  • Teng H; CAS Key Laboratory of Nanophotonic Materials and Devices, CAS Key Laboratory of Standardization and Measurement for Nanotechnology, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing, People's Republic of China.
  • Yu R; University of Chinese Academy of Sciences, Beijing, People's Republic of China.
  • Qu Y; CAS Key Laboratory of Nanophotonic Materials and Devices, CAS Key Laboratory of Standardization and Measurement for Nanotechnology, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing, People's Republic of China.
  • Sun J; University of Chinese Academy of Sciences, Beijing, People's Republic of China.
  • Xue M; ICFO-Institut de Ciencies Fotoniques, The Barcelona Institute of Science and Technology, Castelldefels, Spain. renwen.yu@icloud.com.
  • Hu D; Department of Electrical Engineering, Ginzton Laboratory, Stanford University, Stanford, CA, USA. renwen.yu@icloud.com.
  • Wu B; CAS Key Laboratory of Nanophotonic Materials and Devices, CAS Key Laboratory of Standardization and Measurement for Nanotechnology, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing, People's Republic of China.
  • Li C; University of Chinese Academy of Sciences, Beijing, People's Republic of China.
  • Chen J; Beijing National Laboratory for Molecular Sciences, Key Laboratory of Organic Solids, Institute of Chemistry, Beijing, People's Republic of China.
  • Liu M; The Institute of Physics, Chinese Academy of Sciences, Beijing, People's Republic of China.
  • Sun Z; CAS Key Laboratory of Nanophotonic Materials and Devices, CAS Key Laboratory of Standardization and Measurement for Nanotechnology, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing, People's Republic of China.
  • Liu Y; University of Chinese Academy of Sciences, Beijing, People's Republic of China.
  • Li P; Beijing National Laboratory for Molecular Sciences, Key Laboratory of Organic Solids, Institute of Chemistry, Beijing, People's Republic of China.
  • Fan S; CAS Key Laboratory of Nanophotonic Materials and Devices, CAS Key Laboratory of Standardization and Measurement for Nanotechnology, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing, People's Republic of China.
  • García de Abajo FJ; University of Chinese Academy of Sciences, Beijing, People's Republic of China.
  • Dai Q; The Institute of Physics, Chinese Academy of Sciences, Beijing, People's Republic of China.
Nat Nanotechnol ; 17(9): 940-946, 2022 Sep.
Article em En | MEDLINE | ID: mdl-35982316
ABSTRACT
Control over charge carrier density provides an efficient way to trigger phase transitions and modulate the optoelectronic properties of materials. This approach can also be used to induce topological transitions in the optical response of photonic systems. Here we report a topological transition in the isofrequency dispersion contours of hybrid polaritons supported by a two-dimensional heterostructure consisting of graphene and α-phase molybdenum trioxide. By chemically changing the doping level of graphene, we observed that the topology of polariton isofrequency surfaces transforms from open to closed shapes as a result of doping-dependent polariton hybridization. Moreover, when the substrate was changed, the dispersion contour became dominated by flat profiles at the topological transition, thus supporting tunable diffractionless polariton propagation and providing local control over the optical contour topology. We achieved subwavelength focusing of polaritons down to 4.8% of the free-space light wavelength by using a 1.5-µm-wide silica substrate as an in-plane lens. Our findings could lead to on-chip applications in nanoimaging, optical sensing and manipulation of energy transfer at the nanoscale.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nat Nanotechnol Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nat Nanotechnol Ano de publicação: 2022 Tipo de documento: Article