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Glass phase alignment in front side pastes for P- and N-type solar cells

机译:P型和N型太阳能电池正面浆料中的玻璃相对准

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Using an in-situ contact resistance measurement silver pastes containing glass and aluminum additions for p- and n-type cells were investigated during rapid thermal process (RTP) firing. The glass viscosity, i.e. the formation of a liquid phase having a viscosity between 10 Pa·s and 10 Pa·s, is the crucial point for opening of the antireflection coating, regardless of the kind of wafer or aluminum addition. The maximum efficiency is obtained in an optimum between the competing effects silver precipitation and emitter corrosion and can be precisely time-resolved observed by an in-situ contact resistance measurement. The peak firing temperature determines the intensity of the interface reaction whereas the temperature related glass viscosity is crucial important for the reaction duration and acts as kinetic switch. In comparison to common pastes for p-type cells, in pastes with alumina additions for n-type cells the glass phase rearranges and depletes at the interface due to thermodynamic reasons. The rearrangement of the glass phase attenuates the reduction of silver in the interface layer and controls the solar cell contacting.
机译:使用原位接触电阻测量,在快速热处理(RTP)烧成过程中研究了用于p型和n型电池的含玻璃和铝添加剂的银浆。玻璃粘度,即,形成粘度在10Pa·s和10Pa·s之间的液相,是打开抗反射涂层的关键点,而与晶片或添加铝的种类无关。通过在银沉淀和发射极腐蚀之间的竞争效应之间取得最佳效果,可以获得最大效率,并且可以通过原位接触电阻测量精确地时间分辨。最高烧成温度决定了界面反应的强度,而温度相关的玻璃粘度对于反应持续时间至关重要,并起着动力学的作用。与用于p型电池的普通浆料相比,在用于n型电池的氧化铝添加浆料中,由于热力学原因,玻璃相在界面处重新排列并耗尽。玻璃相的重排减弱了界面层中银的还原并控制了太阳能电池的接触。

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