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Ultra-stable ZnO nanobelts in electrochemical environments

机译:在电化学极稳定的氧化锌纳米带环境

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Zinc oxide (ZnO) has been widely considered as a promising candidate in electro-chemical devices due to the high electrical transport performance and easy-fabrication. However, the active chemical properties of ZnO nanobelts restrict their application in practical electro-chemical devices. Here, we adopted an indium doping strategy to improve the corrosion resistance of ZnO nanobelts. Compared with other atomic doping methods, the indium doping method not only formed several layers of indium atoms in the body of ZnO nanobelts but also created a ZnxIn_(1-x)O passivated layer on the ZnO nanobelt surface. After doping indium atoms into ZnO nanobelts, the self-corrosion potential increased and the self-corrosion current decreased which greatly reduced its corrosion rate in the electrochemical solution. Furthermore, the electrical transport properties of indium-doped zinc oxide (In-ZnO) nanobelts presented ultrahigh stability even after being soaked in the electrochemical solution for 43 hours. The enhanced anticorrosive quasi-2D ZnO nanobelts offer a promising development of ZnO-based electro-chemical devices.
机译:氧化锌被广泛视为一个有前途的候选人在电化学设备由于高电子传输性能和制造方便。氧化锌纳米带限制的化学性质他们的应用程序在实际电化学设备。策略来提高耐蚀性氧化锌纳米带。方法,铟掺杂方法不仅形成了几层的氧化锌铟原子在体内纳米带,还创建了一个ZnxIn_ (1 - x) O氧化锌nanobelt表面钝化层。掺杂铟原子后氧化锌纳米带局部腐蚀电位和增加局部腐蚀电流大大降低减少了在电化学腐蚀速率解决方案。indium-doped氧化锌的性质(In-ZnO)纳米超高稳定性甚至在被浸泡在电化学解决方案43小时。quasi-2D氧化锌纳米带是一个很有潜力的发展ZnO-based电化学设备。

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