School of Electrical Engineering and Automation, Hefei University of Technology, Hefei 230009, P. R. China.
Dalton Trans. 2018 Nov 27;47(46):16587-16595. doi: 10.1039/c8dt03791d.
In this work, high crystallinity copper selenide thin films directly deposited onto conducting substrates were obtained through a potentiostatic electrodeposition approach. The as-deposited copper selenides involve annealing induced phase transformation from tetragonal Cu3Se2 to cubic Cu2-xSe. The annealing also leads to a remarkable morphology change from dendritic nanosheets to connected networks and separated particle shapes for the annealed (A-Cu2-xSe) and selenized (S-Cu2-xSe) samples, respectively. The copper selenide thin films were demonstrated to serve as efficient counter electrodes (CEs) in quantum dot-sensitized solar cells (QDSCs) for electrocatalyzing polysulfide electrolyte regeneration. The CdS/CdSe QDSCs constructed with copper selenide CEs deliver considerable power conversion efficiencies (PCEs), especially an optimal value of 3.89% for the A-Cu2-xSe CE-based device. The enhanced photovoltaic performance benefits from the connected network microstructure of A-Cu2-xSe films which afford a large number of reaction sites and efficient charge transport pathways. The Tafel polarization characterization further indicates that, in contrast to the commonly used Cu2S and Pt CEs, the non-stoichiometric Cu2-xSe CE exhibits better electrochemical catalytic activity. This work highlights the great potential of electrodeposition for fabricating promising copper selenide CEs for high performance QDSCs.
在这项工作中,通过恒电位电沉积方法直接在导电基底上获得了高结晶度的硒化亚铜薄膜。所沉积的硒化亚铜涉及从四方相 Cu3Se2 到立方相 Cu2-xSe 的退火诱导的相变。退火还导致了显著的形貌变化,从树枝状纳米片到退火(A-Cu2-xSe)和硒化(S-Cu2-xSe)样品的连通网络和分离颗粒形状。硒化亚铜薄膜被证明在量子点敏化太阳能电池(QDSCs)中作为有效的对电极(CE),用于电催化多硫化物电解质的再生。使用硒化亚铜 CE 构建的 CdS/CdSe QDSCs 表现出相当高的功率转换效率(PCE),特别是 A-Cu2-xSe CE 基器件的最佳值为 3.89%。光伏性能的增强得益于 A-Cu2-xSe 薄膜的连通网络结构,它提供了大量的反应位点和有效的电荷传输途径。Tafel 极化特性进一步表明,与常用的 Cu2S 和 Pt CE 相比,非化学计量的 Cu2-xSe CE 表现出更好的电化学催化活性。这项工作强调了电沉积在制备高性能 QDSCs 有前途的硒化亚铜 CE 方面的巨大潜力。