Morphology-controlled synthesis of CuCo2S4 as a high-efficiency counter electrode via a precursor-directed strategy
Qiu Zhang1,2,3, Yuekun Zhang2, Chunxiao Zhang1
1School of Chemical Engineering, Shandong Institute of Petroleum and Chemical Technology Dongying 257061 China 2023042@sdipct.edu.cn.
Abstract:
Quantum dot-sensitized solar cells (QDSSCs) have emerged as promising photovoltaic devices, in which the counter electrode (CE) plays a crucial role in the catalytic reduction of Sn 2- and charge transfer. Based on a precursor-directed strategy, this study reports a simple and cost-effective solvothermal method for the synthesis of morphology-controlled CuCo2S4 nanomaterials without templates and structure-directing agents, including flower-like (f-CuCo2S4), nanosheet-like (n-CuCo2S4), nanoparticle-like (p-CuCo2S4), and microsphere-like (m-CuCo2S4) structures. The effects of CuCo2S4 CEs with different morphologies on the photovoltaic performance of QDSSCs were also systematically investigated. Among them, the f-CuCo2S4 CE exhibited the highest specific surface area and the best catalytic performance, resulting in a power conversion efficiency (PCE) of 7.42% for QDSSCs, which is 55% higher than that of materials with other morphologies. Electrochemical analysis confirmed that it delivered the lowest charge transfer resistance (R ct = 0.076 Ω) and the highest electrocatalytic activity. This work highlights the importance of morphology control for optimizing the performance of CEs for efficient QDSSCs.
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