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Stable and sustainable photoanodes using zinc oxide and cobalt oxide chemically gradient nanostructures for water-splitting applications

机译:使用氧化锌和氧化钴化学梯度纳米结构用于水分裂应用的稳定和可持续的光桥

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摘要

Amorphous cobalt oxide (CoO) encapsulated zinc oxide (ZnO) nanostructures were developed by adopting three low-temperature methods respectively atomic layer deposition, chemical bath deposition, and electrochemical deposition. The impact of CoO growth on the physical and chemical properties of ZnO nanostructures was investigated. Then, the ZnO/CoO core/shell nanostructures grown under optimized conditions were adopted for the fabrication of photoelectrochemical (PEC) water-splitting devices. The catalytic performance of ZnO nanostructures is substantially improved after their encapsulation with CoO layers. In addition, the chemical stability and durability of the structures are significantly enhanced. Under typical measurement conditions, these surface-modified ZnO nanostructures exhibited incident photon to charge carrier conversion efficiency (IPCE) higher than 16%, and a stable photocurrent density of 1.25 mA cm(-2). Further, these ZnO/CoO nanostructured photoanodes showed a high illumination to dark current density ratio, similar to 2910. (C) 2019 Elsevier Inc. All rights reserved.
机译:通过采用三种低温方法分别产生原子层沉积,化学浴沉积和电化学沉积,开发了非晶钴氧化物(CoO)包封氧化锌(ZnO)纳米结构。研究了COO生长对ZnO纳米结构物理和化学性质的影响。然后,采用在优化条件下生长的ZnO / CoO核/壳纳米结构用于制造光电化学(PEC)水分子装置。用CoO层包封后,ZnO纳米结构的催化性能显着提高。此外,结构的化学稳定性和耐久性得到显着增强。在典型的测量条件下,这些表面改性的ZnO纳米结构表现出入射光子,以电荷的载体转换效率(IPCE)高于16%,并且稳定的光电流密度为1.25mA cm(-2)。此外,这些ZnO / CoO纳米结构光耦合对暗电流密度比率显示出高的照明,类似于2910.(c)2019年Elsevier Inc.保留所有权利。

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