Rafique Shaista, Rashid Imran, Sharif Rehana
Department of Physics, Government College Women University, Faisalabad, Pakistan.
Electrical Engineering Department, The University of Lahore, Islamabad, Pakistan.
Sci Rep. 2021 Jul 21;11(1):14830. doi: 10.1038/s41598-021-94404-0.
In order to replace Pt CE in dye sensitized solar cell (DSSC) with simple and low cost, copper polypyyrol functionalized multiwall carbon nanotubes (Cu-PPy-FWCNTS) nanocomposite CE was fabricated by two step electrodeposition method on the stainless-steel substrate. The surface morphology, electrical conductivity, electrochemical properties of Cu-PPy-FWCNTS nanocomposite CE electrodes were observed by using verity of techniques such as scanning electron microscopy, a four-probe method and electrochemical workstation. The Fourier transform infrared (FTIR) spectroscopy confirms the presence of FMWCNTS into PPy-FMWCNTS nanocomposite and XRD analysis verified the Cu nanostructures had come into being. The cyclic voltammogram and Tafel polarization measurement demonstrated that solution processed Cu-PPy-FWCNTS nanocomposites CE had smaller charge transfer resistance R (4.31 Ω cm) and higher electrocatalytic performance for I/I redox solution. Finally, the photovoltaic efficiency of DSSC assembled with Cu-PPy-FWCNTS nanocomposite CE and Platinized CE were compared. The results revealed that the photovoltaic efficiency of DSSC with Cu-PPy-FWCNTS nanocomposites CE reached (7.1%), which is superior to Platinized CE (6.4%). The higher photovoltaic efficiency of the Cu-PPy-FMWCNTS film is due to copper nanostructures that lead to higher cathodic current density (2.35 mA/cm). The simple fabrication method, excellent electrocatalytic and photovoltaic properties permit the Cu-PPy-FWCNTS nanocomposites credible alternative CE to save the cost of DSSC.
为了以简单且低成本的方式替代染料敏化太阳能电池(DSSC)中的铂对电极(Pt CE),采用两步电沉积法在不锈钢基底上制备了铜聚吡咯功能化多壁碳纳米管(Cu-PPy-FWCNTs)纳米复合对电极。利用扫描电子显微镜、四探针法和电化学工作站等多种技术观察了Cu-PPy-FWCNTs纳米复合对电极的表面形貌、电导率和电化学性能。傅里叶变换红外(FTIR)光谱证实了FMWCNTs存在于PPy-FMWCNTs纳米复合物中,X射线衍射(XRD)分析验证了铜纳米结构的形成。循环伏安图和塔菲尔极化测量表明,溶液法制备的Cu-PPy-FWCNTs纳米复合对电极具有较小的电荷转移电阻R(4.31 Ω cm)以及对I/I氧化还原溶液更高的电催化性能。最后,比较了采用Cu-PPy-FWCNTs纳米复合对电极和镀铂对电极组装的DSSC的光伏效率。结果表明,采用Cu-PPy-FWCNTs纳米复合对电极的DSSC的光伏效率达到了7.1%,优于镀铂对电极(6.4%)。Cu-PPy-FMWCNTs薄膜较高的光伏效率归因于铜纳米结构导致更高的阴极电流密度(2.35 mA/cm)。这种简单的制备方法、优异的电催化和光伏性能使得Cu-PPy-FWCNTs纳米复合物成为降低DSSC成本的可靠替代对电极。