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

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posted on 2024-11-16, 09:49 authored by Ziqi Sun, Ting Liao, Jae-Geun Kim, KeSong Liu, Lei Jiang, Jung Ho KimJung Ho Kim, Shi DouShi Dou
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 photoresponse enhancement gives a direction to the development of novel photosensitive materials.

Funding

Directed assembly and photoelectric properties of core-shell nanowire networks of PbSe-TiO2 heterostructures for high efficiency low-cost solar cells

Australian Research Council

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History

Citation

Sun, Z., Liao, T., Kim, J., Liu, K., Jiang, L., Kim, J. and Dou, S. X. (2013). Architecture designed ZnO hollow microspheres with wide-range visible-light photoresponses. Journal of Materials Chemistry C, (42 (September)), 6924-6929.

Journal title

Journal of Materials Chemistry C

Volume

1

Issue

42

Pagination

6924-6929

Language

English

RIS ID

84172

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