4.8 Review

Breaking symmetry in device design for self-driven 2D material based photodetectors

Journal

NANOSCALE
Volume 12, Issue 15, Pages 8109-8118

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0nr01326a

Keywords

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Funding

  1. International Science & Technology Cooperation Program of Guangdong Province [2019A050510011]
  2. National Science Foundation of China [11804102]
  3. Science and Technology Program of Guangzhou [201804010393, 201807010072]
  4. Research Grant Council of Hong Kong [15205619]
  5. Fundamental Research Funds for the Central Universities
  6. Guangdong Pearl River Youth Talent Recruitment Program

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The advent of graphene and other two-dimensional (2D) materials offers great potential for optoelectronic applications. Various device structures and novel mechanisms have been proposed to realize photodetectors with unique detecting properties. In this minireview, we focus on a self-driven photodetector that has great potential for low-power or even powerless operation required in the internet of things and wearable electronics. To address the general principle of self-driven properties, we propose and elaborate the concept of symmetry breaking in 2D material based self-driven photodetectors. We discuss various mechanisms of breaking symmetry for self-driven photodetectors, including asymmetrical contact engineering, field-induced asymmetry, PN homojunctions, and PN heterostructures. Typical device examples based on these mechanisms are reviewed and compared. The performance of current self-driven photodetectors is critically assessed and future directions are discussed towards the target application fields.

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