Chongqing Institute of Green and Intelligent Technology , Chinese Academy of Sciences
Faculty
Jun Shen
  • Doctor
  • shenjun@cigit.ac.cn
  • +86-13883602289
  • Center for micro-nano fabrication and system integration
Resume

1.2002-20006 Beijing Normal University, Department of Physics, Bachelor

2.2006-2011 Peking University, Department of Electronics, Ph.D

3.2012-2015 The 24th Institute of CETC, Engineer

4.2015-2021 Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Associated Professor

5.2022- Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Professor

Research Fields

1.Infrared Photodetectors;

2.Process of Integrated Circuits

Social Employment
 
Awards and Honors
 
Representative Papers

[1]Dual-Color Photodetection Based on Speed-Differentiated Photoresponse with High Photogain. Acs Photonics, 2021

[2] High-performance mid-infrared photodetection based on Bi2Se3 maze and free-standing nanoplates. Nanotechnology, 2021

[3] High-performance broadband photodetector with in-situ-grown Bi2Se3 film on micropyramidal Si substrate. Optical Materials, 2021.

[4] Broadband photodetector based on 2D layered PtSe2/silicon heterojunction at room-temperature. Physica E, 2020.

[5] Broadband InSb/Si heterojunction photodetector with graphene transparent electrode. Nanotechnology, 2020.

[6] Fabrication of hybrid graphene/CdS quantum dots film with the flexible photo-detecting performance. Physica E, 2020.

[7] Hybrid graphene heterojunction photodetector with high infrared responsivity through barrier tailoring. Nanotechnology, 2019.

[8] Infrared Photodetector Based on the Photothermionic Effect of Graphene-Nanowall/Silicon Heterojunction. Acs Applied Materials & Interfaces, 2019.

[9] High-performance solar-blind photodetector with graphene and nitrogen-doped reduced graphene oxide quantum dots (rGOQDs). Materials Express, 2018.

[10] High-performance Schottky heterojunction photodetector with directly grown graphene nanowalls as electrodes. Nanoscale, 2017.

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