4.8 Article

Plasmonic antenna coupling to hyperbolic phonon-polaritons for sensitive and fast mid-infrared photodetection with graphene

期刊

NATURE COMMUNICATIONS
卷 11, 期 1, 页码 -

出版社

NATURE RESEARCH
DOI: 10.1038/s41467-020-18544-z

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资金

  1. Spanish Ministry of Economy and Competitiveness, through the Severo Ochoa Programme for Centres of Excellence in RD [SEV-2015-0522]
  2. Fundacio Cellex Barcelona, Generalitat de Catalunya through the CERCA program
  3. Agency for Management of University and Research Grants (AGAUR) [2017 SGR 1656]
  4. European Union [785219, 881603]
  5. Severo Ochoa program from Spanish MINECO [SEV-2017-0706]
  6. European Union's Horizon 2020 research and innovation programme [804349]
  7. Spanish Ministry of Science, Innovation and Universities [RTI2018-094830-B-100, MDM-2016-0618]
  8. Basque Government [IT1164-19]
  9. Barcelona Institute of Science and Technology (BIST)
  10. Secretaria d'Universitats i Recerca del Departament d'Empresa i Coneixement de la Generalitat de Catalunya
  11. European Social Fund (L'FSE inverteix en el teu futur)-FEDER
  12. Army Research Office MURI Ab-Initio Solid-State Quantum Materials [W911NF18-1-0431]
  13. ARL-MIT Institute for Soldier Nanotechnologies (ISN)
  14. Spain's MINECO [MAT2017-88358-C3-1-R]
  15. Aragon Government through project Q-MAD

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Integrating and manipulating the nano-optoelectronic properties of Van der Waals heterostructures can enable unprecedented platforms for photodetection and sensing. The main challenge of infrared photodetectors is to funnel the light into a small nanoscale active area and efficiently convert it into an electrical signal. Here, we overcome all of those challenges in one device, by efficient coupling of a plasmonic antenna to hyperbolic phonon-polaritons in hexagonal-BN to highly concentrate mid-infrared light into a graphene pn-junction. We balance the interplay of the absorption, electrical and thermal conductivity of graphene via the device geometry. This approach yields remarkable device performance featuring room temperature high sensitivity (NEP of 82 pW/Hz) and fast rise time of 17 nanoseconds (setup-limited), among others, hence achieving a combination currently not present in the state-of-the-art graphene and commercial mid-infrared detectors. We also develop a multiphysics model that shows very good quantitative agreement with our experimental results and reveals the different contributions to our photoresponse, thus paving the way for further improvement of these types of photodetectors even beyond mid-infrared range. A significant challenge of infrared (IR) photodetectors is to funnel light into a small nanoscale active area and efficiently convert it into an electrical signal. Here, the authors couple a plasmonic antenna to hyperbolic phonon-polaritons in hexagonal-BN to highly concentrate mid-IR light into a graphene pn-junction.

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