Impacts of MnO2Crystal Structures and Fe Doping in Those on Photoelectrochemical Charge-Discharge Properties of TiO2/MnO2Composite Electrodes

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Abstract

We investigated the impacts of MnO2 crystal structures and Fe doping into the MnO2 crystal structures on photoelectrochemical charge-discharge properties of composite electrodes composed of TiO2 and MnO2 polymorphs (α-, β-, Î-, and I-phases) in aqueous Na2SO4 solution. In a conventional electrochemical capacitor, the α-MnO2 electrode delivered the highest specific capacitance among the undoped MnO2 polymorphs because of its larger tunnel structure compared with β- A nd Î-MnO2. Since the electronic conductivity of the I-MnO2 electrode was very low, its performance was poor despite its large interlayer spacing. Fe doping into I-MnO2 improved its conductivity, leading to a remarkable enhancement in capacitance. The photoelectrochemical capacitor properties of the TiO2/α-MnO2 and TiO2/I-MnO2 composite electrodes were improved by Fe doping into MnO2. In particular, the TiO2/Fe-doped I-MnO2 electrode presented a significant improvement. This was because the photoinduced electrons could move easily in the MnO2 layer due to its improved conductivity, thereby promoting the Na+ storage reaction.

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Usui, H., Suzuki, S., Domi, Y., & Sakaguchi, H. (2020). Impacts of MnO2Crystal Structures and Fe Doping in Those on Photoelectrochemical Charge-Discharge Properties of TiO2/MnO2Composite Electrodes. ACS Sustainable Chemistry and Engineering, 8(24), 9165–9173. https://doi.org/10.1021/acssuschemeng.0c02964

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