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https://doi.org/10.1039/c7ra11246g
Title: | Transparent conducting oxide- and Pt-free flexible photo-rechargeable electric energy storage systems | Authors: | Zhang, F Li, W Xu, Z Ye, M Guo, W Xu, H Liu, X |
Keywords: | Bending tests Carbon Conductive films Copper compounds Electric discharges Electrodes Energy harvesting Energy storage Nanotubes Platinum Polyaniline Solar cells Supercapacitor Titanium compounds Titanium dioxide Yarn All-solid-state supercapacitors Charge and discharge Electronic conductivity Illumination conditions Mechanical flexibility Portable electronics TiO2 nanotube arrays Transparent conducting oxide Dye-sensitized solar cells |
Issue Date: | 2017 | Citation: | Zhang, F, Li, W, Xu, Z, Ye, M, Guo, W, Xu, H, Liu, X (2017). Transparent conducting oxide- and Pt-free flexible photo-rechargeable electric energy storage systems. RSC Advances 7 (83) : 52988-52994. ScholarBank@NUS Repository. https://doi.org/10.1039/c7ra11246g | Rights: | Attribution 4.0 International | Abstract: | A highly flexible, transparent conducting oxide- and Pt-free photo-rechargeable electric energy storage system is demonstrated by integrating a dye-sensitized solar cell and a supercapacitor face-to-face on double-sided uniformly aligned TiO2 nanotube arrays. The energy harvesting part consists of TiO2 nanotubes as the photoanode and CuS networks as the counter electrode, yielding a PCE of 7.73%. Herein, CuS networks exhibited remarkable mechanical flexibility, superior transparency and excellent electronic conductivity, which not only served as conducting films but also as catalysts for dye-sensitized solar cells. The flexible all-solid-state supercapacitors are composed of polyaniline polymerized on TiO2 nanotubes and carbon cloth, which act as the negative and positive electrodes, respectively. The self-powered photo-rechargeable device can be charged to 0.64 V in ?30 s under standard AM 1.5 (100 mW cm-2) illumination conditions. In particular, the photo-charge and discharge performance remained almost stable under bending tests, which is crucial for applications in wearable and portable electronics. © 2017 The Royal Society of Chemistry. | Source Title: | RSC Advances | URI: | https://scholarbank.nus.edu.sg/handle/10635/178719 | ISSN: | 20462069 | DOI: | 10.1039/c7ra11246g | Rights: | Attribution 4.0 International |
Appears in Collections: | Elements Staff Publications |
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