4.6 Article

Van der Waals PdSe2/WS2 Heterostructures for Robust High-Performance Broadband Photodetection from Visible to Infrared Optical Communication Band

Journal

ADVANCED OPTICAL MATERIALS
Volume 9, Issue 7, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adom.202001991

Keywords

PdSe2/WS2; broadband; photodetection; selenization; van der Waals heterostructures

Funding

  1. Research Grants Council of Hong Kong SAR, China [CityU 11204618, T42-103/16-N]
  2. Foshan Innovative and Entrepreneurial Research Team Program [2018IT100031]
  3. National Natural Science Foundation of China [51672229, 61605024, 61775031, 62074024]
  4. Fundamental Research Funds for the Central Universities [ZYGX2018J056]
  5. UESTC Foundation for the Academic Newcomers Award

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The development of a PdSe2/WS2 heterostructure for photodetection shows superior performance compared to single-layer WS2 devices, attributed to the type I band alignment of the heterostructure enabling broadband spectral photoresponse.
Due to excellent electrical and optoelectronic properties, 2D transition metal dichalcogenides and their van der Waals (vdW) heterostructures have attracted great attention for broadband optoelectronics. Here, an unreported vdW PdSe2/WS2 heterostructure is developed for robust high-performance broadband photodetection from visible to infrared optical communication band. These heterostructure devices are simply formed by direct selenization of Pd films pre-deposited on the chemical vapor deposited monolayer WS2, followed by wet-transfer onto device substrates with pre-patterned electrodes. Importantly, the obtained heterostructure device exhibits an impressive broadband spectral photoresponse with response times less than 100 ms for different wavelength regions (532 to 1550 nm), where this performance is significantly better than that of pristine monolayer WS2 devices. This performance enhancement is attributed to the type I band alignment of the heterostructure. Under illumination, both intralayer and interlayer excitations are involved to generate carriers in the relevant layer, enabling the broadband photoresponse. Photocarriers would then undergo charge separation in the depletion region with electrons transferred into the charge transport layer of WS2 through the built-in electric field, followed by the relaxation to valance band via interlayer or intralayer transition. All these findings can indicate the promising potential of vdW PdSe2/WS2 heterostructures for next-generation high-performance optoelectronics.

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