串联
材料科学
光电子学
电阻式触摸屏
等效串联电阻
光伏系统
铟
氧化铟锡
电极
透明导电膜
网格
电压
太阳能
能量转换效率
导电体
共发射极
氧化物
工作职能
助推器(火箭)
太阳能电池
电子工程
接触电阻
可扩展性
光伏
光学
电气工程
作者
Yuhui Ji,Fang Wang,Junjun Li,Yunren Luo,Haichuan Zhang,Qi Liu,Pengxu Chen,Kexin Yao,Qiang Shi,Fanying Meng,Liping Zhang,Chen Yang,Jiakai Liu,Zhengxin Liu,Wenzhu Liu,Jian Yu
摘要
ABSTRACT Perovskite/silicon tandem solar cells (PSTSCs) have broken the efficiency ceiling of single‐junction solar cells, standing as a core technology for next‐generation photovoltaics. Nevertheless, carrier losses at the front electrode, composed of transparent conductive films and metal grids, are often underestimated and hinder further performance improvement. Herein, we synergistically optimized the transparent electrode and front metal grid to reduce interfacial carrier loss while balancing optical shading and series resistance losses. Tungsten‐doped indium oxide (IWO) with a lower work function and suitable energy alignment was adopted to replace conventional indium zinc oxide (IZO), improving carrier extraction and the device's fill factor (FF). Using our self‐developed simulation tool, we quantified grid‐induced power loss and systematically investigated how grid width and spacing affect photovoltaic performance. Guided by simulations, tandem cells with varied grid geometries were fabricated and tested. The optimized device delivered a champion power conversion efficiency (PCE) of 33.06% (certified 32.28%), with an FF of 80.87%, a short‐circuit current density ( J SC ) of 20.72 mA/cm 2, and an open‐circuit voltage ( V OC ) of 1.973 V. This work mitigates the understudied front‐electrode carrier losses in PSTSCs and offers a feasible route toward scalable high‐performance tandem photovoltaics.
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