4.7 Article

Ultra-broad spectral photo-response in FePS3 air-stable devices

Journal

NPJ 2D MATERIALS AND APPLICATIONS
Volume 5, Issue 1, Pages -

Publisher

NATURE RESEARCH
DOI: 10.1038/s41699-021-00199-z

Keywords

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Funding

  1. European Union's Horizon 2020 research and innovation program through the European Research Council [ERC-2017-StG-755655 2D-TOPSENSE, ERC-2018-AdG-788222 MOL-2D, 785219, 881603]
  2. COST Action [CA15128 MOLSPIN]
  3. Spanish Government through the Unit of Excellence Maria de Maeztu [MDM-2015-0538, MAT2017-89528]
  4. R.F.'s Juan de la Cierva-formacion fellowship [FJCI-2017-32919]
  5. Generalitat Valenciana [CIDEGENT/2018/004, CIDEGENT/2018/005, CDEIGENT/2019/022]
  6. Prometeo Program of Excellence
  7. Spanish Government [MAT2017-88377-C2-2-R, MAT2017-88377]
  8. [APOSTD/2020/249]

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The study characterizes FePS3 as a narrow-gap p-type semiconductor with efficient broadband photo-response and high refractive index, providing a straightforward guideline for determining the thickness of FePS3 nanosheets. The analysis of electrical photo-response confirms a narrow gap suitable for near IR detection and reveals a broad spectral responsivity up to the ultraviolet region.
Van der Waals materials with narrow energy gaps and efficient response over a broadband optical spectral range are key to widen the energy window of nanoscale optoelectronic devices. Here, we characterize FePS3 as an appealing narrow-gap p-type semiconductor with an efficient broadband photo-response, a high refractive index, and a remarkable resilience against air and light exposure. To enable fast prototyping, we provide a straightforward guideline to determine the thickness of few-layered FePS3 nanosheets extracted from the optical transmission characteristics of several flakes. The analysis of the electrical photo-response of FePS3 devices as a function of the excitation energy confirms a narrow gap suitable for near IR detection (1.23 eV) and, more interestingly, reveals a broad spectral responsivity up to the ultraviolet region. The experimental estimate for the gap energy is corroborated by ab-initio calculations. An analysis of photocurrent as a function of gate voltage and incident power reveals a photo-response dominated by photogating effects. Finally, aging studies of FePS3 nanosheets under ambient conditions show a limited reactivity of the outermost layers of flakes in long exposures to air.

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