等离子体增强化学气相沉积
材料科学
氮化硅
薄脆饼
沉积(地质)
钝化
硅
光电子学
化学气相沉积
涂层
纳米技术
太阳能电池
电子工程
等离子体
过程(计算)
薄膜
机车
氧化硅
计算流体力学
工程物理
工作(物理)
共发射极
氮化物
物理气相沉积
硒化铜铟镓太阳电池
蚀刻(微加工)
作者
Vinay Prasad,Arun Appadurai
出处
期刊:
日期:2026-01-20
卷期号:3
标识
DOI:10.52825/siliconpv.v3i.2695
摘要
This study presents a computational fluid dynamics (CFD)-based simulation of the plasma-enhanced chemical vapor deposition (PECVD) process utilizing COMSOL Multiphysics. Specifically, the research focuses on the deposition of silicon nitride (SiNx) on silicon wafers, where this layer functions as an anti-reflective coating (ARC) to enhance light absorption. Regardless of the solar technology in question such as passivated emitter and rear contact (PERC), tunnel oxide passivated contact (TOPCon), hetero-junction technology (HJT), or tandem, understanding the deposition of ARC is crucial. This work simulates the multi-physics involved in PECVD process, encompassing fluid flow, plasma reactions, gas-phase reactions, and surface reactions. In this work we successfully demonstrated the modelling of the complex PECVD process capturing various physics like fluid flow, plasma physics, heavy species transports, and plasma, gas-phase, as well as surface reactions, and further validated it experimentally. The model was then used for various parametric studies i.e., effect of input parameters like pressure and temperature on the key output parameter i.e., deposition rate. This research not only demonstrates the capability of simulating intricate solar manufacturing processes like PECVD but also lays the groundwork for future simulation-based optimization of such processes and creating digital-twins as a part of Industry 4.0. This study represents the first documented investigation in the literature to report electron density distribution and transient thin film growth dynamics on silicon wafers within a tubular PECVD chamber.
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