Ultrasmall SnS 2 quantum dot-based photodetectors with high responsivity and detectivity

Quantum dots (QDs) often exhibit unique behaviors because the reduction in lateral size leads to stronger quantum confinement effects and a higher surface-to-volume ratio in comparison with larger two-dimensional nanosheets. However, the preparation of homogeneous QDs remains a longstanding challeng...

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Veröffentlicht in:Nanophotonics (Berlin, Germany) Germany), 2022-12, Vol.11 (21), p.4781-4792
Hauptverfasser: Ren, Yi, An, Hua, Zhang, Weiguan, Wei, Songrui, Xing, Chenyang, Peng, Zhengchun
Format: Artikel
Sprache:eng
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Zusammenfassung:Quantum dots (QDs) often exhibit unique behaviors because the reduction in lateral size leads to stronger quantum confinement effects and a higher surface-to-volume ratio in comparison with larger two-dimensional nanosheets. However, the preparation of homogeneous QDs remains a longstanding challenge. This work reports the preparation of high-yield and ultrasmall tin disulfide (SnS ) QDs by combining top-down and bottom-up approaches. The as-prepared SnS QDs have a uniform lateral size of 3.17 ± 0.62 nm and a thicknesses 2.39 ± 0.88 nm. A series of self-powered photoelectrochemical-type photodetectors (PDs) utilizing the SnS QDs as photoelectrodes are also constructed. Taking advantage of the tunable bandgaps and high carrier mobility of the SnS , our PDs achieve a high photocurrent density of 16.38 μA cm and a photoresponsivity of 0.86 mA W , and good long-term cycling stability. More importantly, the device can display obvious photoresponse, even at zero bias voltage (max), and greater weak-light sensitivity than previously reported SnS -based PDs. Density functional theory calculation and optical absorption were employed to reveal the working mechanism of the SnS QDs-based PDs. This study highlights the prospective applications of ultrasmall SnS QDs and provides a new route towards future design of QDs-based optoelectronic devices.
ISSN:2192-8614
2192-8614
DOI:10.1515/nanoph-2022-0277