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Bismuth oxyhalide based photo-enhanced triboelectric nanogenerators

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Autor
Yu Z., Yang H., Soin N., Chen L., Black N., Xu K., Sharma P.K., Tsonos C., Kumar A., Luo J.
Datum
2021
Language
en
DOI
10.1016/j.nanoen.2021.106419
Schlagwort
Bismuth compounds
Charge transfer
Electromagnetic waves
Image enhancement
Light absorption
Polydimethylsiloxane
Silicones
Tin oxides
Triboelectricity
Absorption characteristics
Bismuth oxyhalides
Bismuth oxyiodide
Kelvin probe force microscopy
Nanogenerators
Narrow bandgap
Photo stimulations
Potentiostatic deposition
Surface photo voltages
Triboelectric nanogenerator
Nanogenerators
Elsevier Ltd
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Zusammenfassung
Utilizing wide absorption characteristics of a narrow bandgap (~1.8 eV) semiconductor, we report on Bismuth Oxyiodide (BiOI) based photo-enhanced triboelectric nanogenerator (TENG). The potentiostatic deposition of tribo-positive BiOI on transparent, electrically conducting Fluorine doped Indium Tin Oxide (FTO) substrates provides a pathway to exploit concurrently the photo-enhanced charge generation and triboelectric effects. When utilized against tribo-negative polydimethylsiloxane (PDMS) films, under illumination, the BiOI/PDMS TENGs’ output was significantly enhanced, wherein an increase of 21% in output voltage, 38% in charge density (26% in short-circuit current density), and 74% in overall power density (from 0.25 Wm−2 (in dark) and 0.44 Wm−2 (under illumination)), respectively, was observed. Correspondingly, a dramatic enhancement (from ~25 mV to ~300 mV) in the average surface potential, termed as surface photovoltage (SPV), for the illuminated BiOI was observed by Kelvin Probe Force Microscopy (KPFM). For an isolated, grounded BiOI/FTO electrode, this enhanced SPV was slow-decaying (~3.5 h) and is attributed to the high dielectric constant, presence of deep surface states and traps within BiOI, and slow charge-exchange with the ambient environment. The work thus not only provides an approach for the enhancement of mechanical-to-electrical efficiency of TENGs by light absorption but can also be utilized for self-powered detection of electromagnetic radiation and photodetectors. © 2021 Elsevier Ltd
URI
http://hdl.handle.net/11615/80903
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