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Designing IBC cells with FFE: Long range effects with circuit simulation

机译:使用FFE设计IBC电池:电路仿真的远距离效应

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IBC cells with Front Floating Emitter (FFE) pose different design challenges compared to more conventional IBC cells with FSF (Front Surface Field). The FFE enables hole transport over distances that are large compared to the typical BSF or emitter width. The core of the cell design is commonly a device simulation in which, because of the computer resources involved, typically one simulates an as small as possible, but representative part of the solar cell. In an IBC cell this corresponds to 1/2 of the BSF and 1/2 of the emitter. Such a unit cell does not account for important geometric features, such as busbars and pads, edges or interruptions in metallization fingers. We show how to construct an equivalent circuit for our Mercury FFE IBC cells to model features beyond the unit cell efficiently, taking into account the lateral hole transport in the FFE. We compare and calibrate the circuit model against device simulations with quokka.
机译:与具有FSF(前表面场)的更传统的IBC电池相比,具有前浮动发射器(FFE)的IBC电池面临着不同的设计挑战。与典型的BSF或发射极宽度相比,FFE可以实现更大距离的空穴传输。电池设计的核心通常是设备仿真,其中由于所涉及的计算机资源的原因,通常会仿真尽可能小但具有代表性的太阳能电池部分。在IBC单元中,这相当于BSF的1/2和发射极的1/2。这样的晶胞不考虑重要的几何特征,例如母线和焊盘,边缘或金属化指状物中的中断。我们展示了如何为我们的Mercury FFE IBC电池构建等效电路,以有效地模拟除晶胞之外的特征,同时考虑到FFE中的横向空穴传输。我们使用quokka比较和校准电路模型与器件仿真。

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