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Optimal irradiance for sintering of inkjet-printed Ag Electrodes with a 523 nm CW laser

机译:用523nm CW激光烧结喷墨印刷AG电极的最佳辐照度

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Industrial solar cell fabrication generally adopts printing process to deposit the front electrodes, which needs additional heat treatment after printing to enhance electrical conductivity. As a heating method, laser irradiation draws attention not only because of its special selectivity, but also because of its intense heating to achieve high electric conductivity which is essential to reduce ohmic loss of solar cells. In this study, variation of electric conductivity was examined with laser irradiation having various beam intensity. 532 nm continuous wave (CW) laser was irradiated on inkjet-printed silver lines on glass substrate and electrical resistance was measured in situ during the irradiation. The results demonstrate that electric conductivity varies nonlinearly with laser intensity, having minimum specific resistance of 4.1 x 10~(->sup<8)>/sup< ?m at 529 W/cm~>sup<2>/sup< irradiation. The results is interesting because the specific resistance achieved by the present laser irradiation was about 1.8 times lower than the best value obtainable by oven heating, even though it was still higher by 2.5 times than that of bulk silver. It is also demonstrated that the irradiation time, needed to finish sintering process, decreases with laser intensity. The numerical simulation of laser heating showed that the optimal heating temperature could be as high as 300 °C for laser sintering, while it was limited to 250 °C for oven sintering. The nonlinear response of sintering with heating intensity was discussed, based on the results of FESEM images and XRD analysis.
机译:工业太阳能电池制造一般采用印刷过程沉积前电极,在印刷后需要额外的热处理以增强电导率。作为加热方法,激光照射不仅是因为其特殊的选择性,而且由于其强烈的加热,以实现高导电性,这对于减少太阳能电池的欧姆损失至关重要。在该研究中,通过具有各种光束强度的激光照射检查导电性的变化。在玻璃基板上照射在喷墨印刷的银线上照射532nm连续波(CW)激光,在照射期间原位测量电阻。结果表明,电导率以激光强度为非线性而变化,最小特异性为4.1×10〜( - > sup <8)> sup <Δm,在529w / cm〜> sup <2> sup <辐照。结果是有趣的,因为目前激光照射所达到的比率约为烤箱加热可获得的最佳值的1.8倍,即使它仍然比批量银的2.5倍更高。还证明了完成烧结过程所需的照射时间,随着激光强度降低。激光加热的数值模拟表明,最佳加热温度可以高达300°C,用于激光烧结,而其限制在250°C中,用于烘箱烧结。基于FESEM图像和XRD分析的结果,讨论了烧结具有加热强度的非线性响应。

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