Ni3Se4 hollow architectures as catalytic materials for the counter electrodes of dye-sensitized solar cells

Chi Ta Lee, Jia De Peng, Chun Ting Li, Yu Lin Tsai, R. Vittal, Kuo Chuan Ho*

*此作品的通信作者

研究成果: 雜誌貢獻期刊論文同行評審

74 引文 斯高帕斯(Scopus)

摘要

Nanoparticles of nickel selenides (Ni3Se4) were synthesized with various hollow architectures by a simple, one-step, low temperature hydrothermal process. Using three organic solvents having different alkyl chains, precisely methanol (MeOH), ethanol (EtOH), and propan-1-ol (n-PrOH), the Ni3Se4 nanoparticles showed three kinds of morphologies: sea urchins-like, rice-balls-like and strawberry-fruits-like hollow nanostructures, respectively. The solvent polarity shows a trend of MeOH>EtOH>n-PrOH, and the same trend on the surface area and roughness of the corresponding Ni3Se4 nanoparticles can be observed. Therefore, we propose a three-step mechanism for Ni3Se4 growth: (1) the nucleation based on a selenium core surrounded by free selenium ions; (2) the Ni3Se4 formation; (3) the dissolution of selenium core to form the hollow nanoparticles. Accordingly, the first-step is the key state because the higher solvent polarity would cause the more free selenium ions and thereby the larger surface area on Ni3Se4 nanoparticles. For the dye-sensitized solar cells (DSSCs), the films of nickel selenide can be utilized as the electrocatalytic counter electrodes (CE) for the redox of I-/I3-. The nickel selenide film obtained using methanol (hereafter urchins-like Ni3Se4@MeOH) shows extremely large effective surface area (5.63 times larger than traditional Pt film) and fast redox ability (1.08 times higher than traditional Pt film). The urchins-like Ni3Se4@MeOH CE rendered for its DSSC a power conversion efficiency (η) of 8.31%, while the expensive platinum counter electrode (Pt-CE) could bestow for its DSSC only an η of 8.03%. It may be said that nickel selenide is a promising catalytic material to replace the expensive platinum in a DSSC.

原文英語
頁(從 - 到)201-211
頁數11
期刊Nano Energy
10
DOIs
出版狀態已發佈 - 2014 11月 1
對外發佈

ASJC Scopus subject areas

  • 可再生能源、永續發展與環境
  • 材料科學(全部)
  • 電氣與電子工程

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