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掺铌(001)主导锐钛矿 TiO 纳米片作为高效染料敏化太阳能电池的光电电极。

Niobium-Doped (001)-Dominated Anatase TiO Nanosheets as Photoelectrode for Efficient Dye-Sensitized Solar Cells.

机构信息

State Key Laboratory of Molecular Reaction Dynamics, Dalian Institute of Chemical Physics, Chinese Academy of Sciences , Dalian 116023, China.

State Key Laboratory of Catalysis, Dalian National Laboratory for Clean Energy, Dalian Institute of Chemical Physics, Chinese Academy of Sciences , Dalian 116023, China.

出版信息

ACS Appl Mater Interfaces. 2017 Mar 22;9(11):9576-9583. doi: 10.1021/acsami.6b14147. Epub 2017 Mar 13.

Abstract

TiO nanocrystals with different reactive facets have attracted extensive interest since they were first synthesized. The anatase TiO nanocrystals with (001) or (100) dominate facets were considered to be excellent electrode materials to enhance the cell performance of dye-sensitized solar cells. However, which reactive facet presents the best surface for benefiting photovoltaic effect is still unknown. We report a systematic study of various anatase TiO surfaces interacting with N719 dye by means of density functional theory calculations in combination with microscopic techniques. The (001) surface interacting with N719 would have the lowest work function, leading to the best photovoltaic performances. To further increase the efficiency, Nb dopant was incorporated into the anatase TiO nanocrystals. Based on the theoretical prediction, we proposed and demonstrated novel Nb-doped (001)-dominated anatase TiO nanosheets as photoelectrode in a dye-sensitized solar cell to further enhance the open-circuit voltage. And a power conversion efficiency of 10% was achieved, which was 22% higher than that of the undoped device (P25 as an electrode).

摘要

具有不同反应面的 TiO 纳米晶体自首次合成以来就引起了广泛的关注。具有(001)或(100)主导面的锐钛矿 TiO 纳米晶体被认为是增强染料敏化太阳能电池电池性能的优秀电极材料。然而,哪种反应面具有最佳的光伏效应表面仍不清楚。我们通过密度泛函理论计算结合微观技术,对各种锐钛矿 TiO 表面与 N719 染料的相互作用进行了系统研究。与 N719 相互作用的(001)表面将具有最低的功函数,从而获得最佳的光伏性能。为了进一步提高效率,我们将 Nb 掺杂到锐钛矿 TiO 纳米晶体中。基于理论预测,我们提出并证明了新型 Nb 掺杂(001)主导锐钛矿 TiO 纳米片作为光电化学电池中的光电极,以进一步提高开路电压。并实现了 10%的功率转换效率,比未掺杂器件(P25 作为电极)高出 22%。

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