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用于染料敏化太阳能电池应用的零维至三维ZnO纳米结构的溶剂辅助演化与生长机制

Solvent assisted evolution and growth mechanism of zero to three dimensional ZnO nanostructures for dye sensitized solar cell applications.

作者信息

Ramya M, Nideep T K, Nampoori V P N, Kailasnath M

机构信息

International School of Photonics, Cochin University of Science and Technology, Kochi, India.

出版信息

Sci Rep. 2021 Mar 17;11(1):6159. doi: 10.1038/s41598-021-85701-9.

Abstract

We report the structural engineering of ZnO nanostructures by a consistent solution method using distinct solvents such as ethylene glycol, 1-butanol, acetic acid and water. The growth kinetics are found to depend strongly on the physicochemical properties of the solvent and zeta potential of the colloidal solution. Furthermore, the resulting nanostructures as a photoanode material, displayed a prominent structure dependent property in determining the efficiency of dye-sensitized solar cells (DSSCs). The fabricated solar cell with ZnO nanostructures based photoanode exhibited improved conversion efficiency. Moreover, the nanoflower based DSSCs showed a higher conversion efficiency of 4.1% compared to the other structures. The excellent performance of ZnO nanoflower is attributed to its better light-harvesting ability and increased resistance to charge-recombination. Therefore ZnO nanostructures can be a promising alternative for TiO in DSSCs. These findings provide new insight into the simple, low cost and consistent synthetic strategies for ZnO nanostructures and its outstanding performance as a photoanode material in DSSCs.

摘要

我们报道了通过使用乙二醇、1-丁醇、乙酸和水等不同溶剂的一致溶液法对ZnO纳米结构进行的结构工程。发现生长动力学强烈依赖于溶剂的物理化学性质和胶体溶液的zeta电位。此外,作为光阳极材料的所得纳米结构在决定染料敏化太阳能电池(DSSC)的效率方面表现出显著的结构依赖性特性。基于ZnO纳米结构光阳极制造的太阳能电池表现出提高的转换效率。此外,与其他结构相比,基于纳米花的DSSC显示出4.1%的更高转换效率。ZnO纳米花的优异性能归因于其更好的光捕获能力和对电荷复合的抗性增加。因此,ZnO纳米结构可以成为DSSC中TiO的有前途的替代品。这些发现为ZnO纳米结构的简单、低成本和一致合成策略及其作为DSSC中光阳极材料的出色性能提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6b2/7969771/dac4ba0ce56d/41598_2021_85701_Fig1_HTML.jpg

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