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MnO doped SnO2 nanocatalysts: Activation of wide band gap semiconducting nanomaterials towards visible light induced photoelectrocatalytic water oxidation

机译:MNO掺杂SnO2纳米催化剂:宽带间隙半导体纳米材料对可见光诱导光电催化水氧化的影响

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摘要

Semiconducting nanomaterials are very important by means of their stability and wide band gap tunability. Visible light induced photoelectrocatalytic water oxidation based on these material are challenging as they have large band gap energies. Herein, we report that MnO doping can activate wide band gap semiconductors like SnO2 towards visible light induced water oxidation. Rutile SnO2 nanoparticles (band gap 3.6 eV), usually absorbing at UV region, was capable of harvesting visible light when doped with MnO thereby minimizing the energy requirement for photoelctrocatalytic water splitting. The system was characterized using UV-Vis, TEM and XPS. Photoelectrocatalytic activity was examined by LSV and CPE. The highly stable catalyst showed very good photoelectrocatalytic activity for the oxidation of water under alkaline condition with low overpotential of similar to 370 mV at 1.0 mA cm(-2). (C) 2017 Elsevier Inc. All rights reserved.
机译:通过它们的稳定性和宽带隙可调性,半导体纳米材料非常重要。 基于这些材料的可见光诱导光电催化水氧化是挑战,因为它们具有大的带隙能量。 在此,我们报道了MNO掺杂可以激活宽带间隙半导体,如SNO2朝向可见光诱导的水氧化。 金红石SnO2纳米粒子(带隙3.6eV)通常在UV区域吸收,能够在掺杂有MnO时收获可见光,从而最小化光杆菌催化水分裂的能量要求。 该系统的特点是使用UV-VI,TEM和XPS进行特征。 通过LSV和CPE检查光电催化活动。 高稳定的催化剂显示出非常好的光电催化活性,用于碱性条件下的水氧化,其具有低过电位,类似于1.0mA cm(-2)的370mV。 (c)2017年Elsevier Inc.保留所有权利。

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