首页> 美国卫生研究院文献>Scientific Reports >Electrostatic-Force-Assisted Dispensing Printing to Construct High-Aspect-Ratio of 0.79 Electrodes on a Textured Surface with Improved Adhesion and Contact Resistivity
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Electrostatic-Force-Assisted Dispensing Printing to Construct High-Aspect-Ratio of 0.79 Electrodes on a Textured Surface with Improved Adhesion and Contact Resistivity

机译:静电力辅助点胶印刷在纹理化表面上构造高纵横比的0.79电极具有改善的附着力和接触电阻

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摘要

As a novel route to construct fine and abnormally high-aspect-ratio electrodes with excellent adhesion and reduced contact resistivity on a textured surface, an electrostatic-force-assisted dispensing printing technique is reported and compared with conventional dispensing and electrohydrodynamic jet printing techniques. The electrostatic force applied between a silver paste and the textured surface of a crystalline silicon solar cell wafer significantly improves the physical adhesion of the electrodes, whereas those fabricated using a conventional dispensing printing technique peel off with a silver paste containing 2 wt% of a fluorosurfactant. Moreover, the contact resistivity and dimensionless deviation of total resistance are significantly reduced from 2.19 ± 1.53 mΩ·cm2 to 0.98 ± 0.92 mΩ·cm2 and from 0.10 to 0.03, respectively. By utilizing electrodes with an abnormally high-aspect-ratio of 0.79 (the measured thickness and width are 30.4 μm and 38.3 μm, respectively), the cell efficiency is 17.2% on a polycrystalline silicon solar cell with an emitter sheet resistance of 60 Ω/sq. This cell efficiency is considerably higher than previously reported values obtained using a conventional electrohydrodynamic jet printing technique, by +0.48–3.5%p.
机译:作为构造精细且异常的高纵横比电极的一种新途径,该电极具有优异的附着力并降低了在纹理化表面上的接触电阻率,据报道,静电力辅助的点胶印刷技术已与传统的点胶和电动流体喷射印刷技术进行了比较。在银浆和晶体硅太阳能电池晶片的纹理化表面之间施加的静电力显着改善了电极的物理粘附性,而使用常规点胶印刷技术制造的电极则被含2%重量百分比的含氟表面活性剂的银浆剥离。而且,总电阻的接触电阻率和无量纲偏差从2.19±1.53mΩ·cm 2 显着降低到0.98±0.92mΩ·cm 2 ,从0.10减小到0.03,分别。通过使用长径比异常高的0.79(测得的厚度和宽度分别为30.4μm和38.3μm)的电极,发射极薄层电阻为60μΩ/的多晶硅太阳能电池的电池效率为17.2%平方该电池效率比以前报道的使用常规电动流体喷射打印技术获得的值高+ 0.48–3.5%p。

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