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Intelligent infrared sensing enabled by tunable moiré quantum geometry.
Ma, Chao; Yuan, Shaofan; Cheung, Patrick; Watanabe, Kenji; Taniguchi, Takashi; Zhang, Fan; Xia, Fengnian.
Afiliación
  • Ma C; Department of Electrical Engineering, Yale University, New Haven, CT, USA.
  • Yuan S; Department of Electrical Engineering, Yale University, New Haven, CT, USA. shaofan.yuan@yale.edu.
  • Cheung P; Department of Physics, The University of Texas at Dallas, Richardson, TX, USA.
  • Watanabe K; Research Center for Functional Materials, National Institute for Materials Science, Tsukuba, Japan.
  • Taniguchi T; International Center for Materials Nanoarchitectonics, National Institute for Materials Science, Tsukuba, Japan.
  • Zhang F; Department of Physics, The University of Texas at Dallas, Richardson, TX, USA. zhang@utdallas.edu.
  • Xia F; Department of Electrical Engineering, Yale University, New Haven, CT, USA. fengnian.xia@yale.edu.
Nature ; 604(7905): 266-272, 2022 04.
Article en En | MEDLINE | ID: mdl-35418636
ABSTRACT
Quantum geometric properties of Bloch wave functions in solids, that is, Berry curvature and the quantum metric, are known to significantly influence the ground- and excited-state behaviour of electrons1-5. The bulk photovoltaic effect (BPVE), a nonlinear phenomenon depending on the polarization of excitation light, is largely governed by the quantum geometric properties in optical transitions6-10. Infrared BPVE has yet to be observed in graphene or moiré systems, although exciting strongly correlated phenomena related to quantum geometry have been reported in this emergent platform11-14. Here we report the observation of tunable mid-infrared BPVE at 5 µm and 7.7 µm in twisted double bilayer graphene (TDBG), arising from the moiré-induced strong symmetry breaking and quantum geometric contribution. The photoresponse depends substantially on the polarization state of the excitation light and is highly tunable by external electric fields. This wide tunability in quantum geometric properties enables us to use a convolutional neural network15,16 to achieve full-Stokes polarimetry together with wavelength detection simultaneously, using only one single TDBG device with a subwavelength footprint of merely 3 × 3 µm2. Our work not only reveals the unique role of moiré engineered quantum geometry in tunable nonlinear light-matter interactions but also identifies a pathway for future intelligent sensing technologies in an extremely compact, on-chip manner.
Asunto(s)

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Grafito Idioma: En Revista: Nature Año: 2022 Tipo del documento: Article País de afiliación: Estados Unidos

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Grafito Idioma: En Revista: Nature Año: 2022 Tipo del documento: Article País de afiliación: Estados Unidos