4.8 Article

2D Lead Dihalides for High-Performance Ultraviolet Photodetectors and their Detection Mechanism Investigation

Journal

SMALL
Volume 13, Issue 47, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.201702084

Keywords

2D materials; detection mechanisms; lead dihalides; UV photodetectors; wide-bandgap semiconductors

Funding

  1. Major State Basic Research Development Program of China [2016YFB0700702]
  2. National Natural Science Foundation of Hubei Province [2016CFB431]
  3. Fundamental Research Funds for the Central Universities [HUST: 2016YXMS032]

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2D halide semiconductors, a new family of 2D materials in addition to transition metal dichalcogenides, present ultralow dark current and high light conversion yield, which hold great potential in photoconductive detectors. Herein, a facile aqueous solution method is developed for the preparation of large-scale 2D lead dihalide nanosheets (PbF2-xIx). High-performance UV photodetectors are successfully implemented based on 2D PbF2-xIx nanosheets. By modulating the components of halogens, the bandgap of PbF2-xIx nanosheets can be tuned to meet varied detection spectra. The photoresponse dependence on incident power density, wavelength, detection environment, and temperature are systematically studied to investigate their detection mechanism. For PbI2 photodetectors, they are dominantly driven by a photoconduction mechanism and show a fast response speed and a low noise current density. A high normalized detectivity of 1.5 x 10(12) Jones and an I-ON/I-OFF ratio up to 10(3) are reached. On the other hand, PbFI photodetectors demonstrate a photogating mechanism mediated by trap states showing high responsivity. The novel 2D halide materials with wide bandgaps, superior detection performance, and facile synthesis process can enrich the Van der Waals solids family and hold great potential for a wide variety of applications in advanced optoelectronics.

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