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Architecture designed ZnO hollow microspheres with wide-range visible-light photoresponses

机译:建筑设计的具有宽范围可见光光响应的ZnO空心微球

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It is a challenge to increase the visible-light photoresponses of wide-gap metal oxides. In this study, we proposed a new strategy to enhance the visible-light photoresponses of wide-gap semiconductors by deliberately designing a multi-scale nanostructure with controlled architecture. Hollow ZnO microspheres with constituent units in the shape of one-dimensional (1D) nanowire networks, 2D nanosheet stacks, and 3D mesoporous nanoball blocks are synthesized via an approach of two-step assembly, where the oligomers or the constituent nanostructures with specially designed structures are first formed, and then further assembled into complex morphologies. Through deliberate designing of constituent architectures allowing multiple visible-light scattering, reflections, and dispersion inside the multiscale nanostructures, enhanced wide range visible-light photoresponses of the ZnO hollow microspheres were successfully achieved. Compared to the one-step synthesized ZnO hollow microspheres, where no nanostructured constituents were produced, the ZnO hollow microspheres with 2D nanosheet stacks presented a 50 times higher photocurrent in the visible-light range (λ> 420 nm). The nanostructure induced visible-light photo-response enhancement gives a direction to the development of novel photosensitive materials.
机译:增加宽间隙金属氧化物的可见光光响应是一个挑战。在这项研究中,我们提出了一种新的策略,通过故意设计具有可控结构的多尺度纳米结构来增强宽间隙半导体的可见光光响应。通过两步组装的方法合成具有一维(1D)纳米线网络,2D纳米片堆叠和3D介孔纳米球嵌段形状的空心ZnO微球,其中低聚物或具有特殊设计结构的组成纳米结构首先形成,然后进一步组装成复杂的形态。通过精心设计构成架构,允许在多尺度纳米结构内部进行多次可见光散射,反射和分散,成功实现了ZnO中空微球体增强的宽范围可见光光响应。与没有生成纳米结构成分的一步合成的ZnO空心微球相比,具有2D纳米片堆叠的ZnO空心微球在可见光范围内(λ> 420 nm)呈现出高出50倍的光电流。纳米结构诱导的可见光光响应增强为新型光敏材料的发展提供了方向。

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