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Ink formulation and low-temperature incorporation of sodium to yield 12% efficient Cu(ln,Ga)(S,Se)_2 solar cells from sulfide nanocrystal inks

机译:油墨配方和钠的低温掺入,可从硫化物纳米晶体油墨中获得12%的高效Cu(ln,Ga)(S,Se)_2太阳能电池

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摘要

Solution phase deposition methods offer great potential for low-cost photovoltaic device fabrication. We have previously developed a method for copper indium gallium disulfoselenide (CIGSSe) device fabrication based on drop-casting copper indium gallium disulfide (CIGS) nanocrystals in a toluene or hexane-based ink followed by chalcogen exchange in elemental selenium vapor at 500 °C. By starting with the chalcopyrite or sphaelerite phase of CIGS nanocrystals with controlled stoichiometry, superior composition uniformity can be achieved inherently. Here, we present a dramatic improvement in ink formulation using alkanethiol as the solvent, which enables the ability to create uniform nanocrystal coatings over large areas using a simple knife coating technique. In addition, we show a major improvement in device performance by a simple and low-temperature method of incorporating sodium into the CIGSSe film based on soaking the films in aqueous NaCl solution. The addition of sodium plays an important role in improving the structural properties of the resulting CIGSSe films, where large and densely packed grain can be obtained. The improved film morphology significantly reduces recombination losses in the resulting device leading to a dramatically enhanced device performance. With the use of standard glass/ Mo/CIGSSe/CdS/i-ZnO/ITO device structure, photovoltaic devices yield total area power conversion efficiency as high as 12.0% under AM1.5 illumination without an anti-reflection coating.
机译:溶液相沉积方法为低成本光伏器件制造提供了巨大潜力。我们之前已经开发了一种用于铜铟镓二硫硒化物(CIGSSe)器件制造的方法,该方法基于在甲苯或己烷基油墨中滴铸铜铟镓二硫(CIGS)纳米晶体,然后在500°C的元素硒蒸气中进行硫族元素交换。通过从具有受控化学计量的CIGS纳米晶体的黄铜矿或方闪石相开始,可以固有地获得优异的组成均匀性。在这里,我们提出了使用链烷硫醇作为溶剂的油墨配方的显着改进,这使得能够使用简单的刮刀涂布技术在大面积上创建均匀的纳米晶体涂层。此外,通过将钠浸泡在NaCl水溶液中,将钠掺入CIGSSe膜中的简单而低温的方法,我们显示出器件性能的重大改善。钠的添加对改善所得CIGSSe膜的结构性能起着重要作用,在该膜中可以获得大而密实的晶粒。改善的膜形态可显着减少所得器件的复合损失,从而显着提高器件性能。通过使用标准的玻璃/ Mo / CIGSSe / CdS / i-ZnO / ITO器件结构,在不使用抗反射涂层的AM1.5照明下,光电器件的总面积功率转换效率高达12.0%。

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