Physical device simulation of dopant-free asymmetric silicon heterojunction solar cell featuring tungsten oxide as a hole-selective layer with ultrathin silicon oxide passivation layer

材料科学 异质结 掺杂剂 工作职能 光电子学 带材弯曲 钝化 太阳能电池 兴奋剂 非晶硅 纳米技术 图层(电子) 晶体硅
作者
Haris Mehmood,Hisham Nasser,Syed Muhammad Hassan Zaidi,Tauseef Tauqeer,Raşit Turan
出处
期刊:Renewable Energy [Elsevier]
卷期号:183: 188-201 被引量:5
标识
DOI:10.1016/j.renene.2021.10.073
摘要

The dopant-related issues are amongst the major performance bottleneck in crystalline silicon solar cells that can be alleviated via implementation of dopant-free layers. This work presents the implementation of tungsten oxide (WOx) and titanium oxide (TiOx) as hole- and electron-selective films for heterostructure solar cell design whereby n-type Si wafer has been passivated with ultrathin silicon oxide (SiO2) layer. Several designs have been investigated including passivated hydrogenated amorphous silicon (i-a-Si:H) and characterized by evaluating work function, electron affinity, interfacial charge, and layer thickness. The high work function of WOx induces significant upward band bending to permit holes transportation towards anode, whereas, low electron-affinity for TiOx reduces the barrier against electrons at the cathode. Smaller band offsets have been observed against minority carriers for devices that employ passivated i-a-Si:H film. However, incorporating SiO2 significantly improves the energy barrier height against minority carriers that leads to an enhancement in electric field along with reduction in recombination. The best-performance device with an optimum SiO2 thickness of 1 nm numerically validated Voc of 751 mV, Jsc 40.2 mA/cm2, FF 79.7%, and η of 24.06%. A comparative analysis with hole-selective vanadium oxide (V2Ox) demonstrated η of 21.73% limited by the low work function of V2Ox.
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