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Deliberate and Accidental Gas-Phase Alkali Doping of Chalcogenide Semiconductors: Cu(InGa)Se2

机译:硫族化物半导体的故意和偶然气相碱掺杂:Cu(InGa)Se2

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摘要

Alkali metal doping is essential to achieve highly efficient energy conversion in Cu(In,Ga)Se2 (CIGSe) solar cells. Doping is normally achieved through solid state reactions, but recent observations of gas-phase alkali transport in the kesterite sulfide (Cu2ZnSnS4) system (re)open the way to a novel gas-phase doping strategy. However, the current understanding of gas-phase alkali transport is very limited. This work (i) shows that CIGSe device efficiency can be improved from 2% to 8% by gas-phase sodium incorporation alone, (ii) identifies the most likely routes for gas-phase alkali transport based on mass spectrometric studies, (iii) provides thermochemical computations to rationalize the observations and (iv) critically discusses the subject literature with the aim to better understand the chemical basis of the phenomenon. These results suggest that accidental alkali metal doping occurs all the time, that a controlled vapor pressure of alkali metal could be applied during growth to dope the semiconductor, and that it may have to be accounted for during the currently used solid state doping routes. It is concluded that alkali gas-phase transport occurs through a plurality of routes and cannot be attributed to one single source.
机译:碱金属掺杂对于实现Cu(In,Ga)Se2(CIGSe)太阳能电池中的高效能量转换至关重要。掺杂通常是通过固相反应实现的,但是最近在钾长石硫化物(Cu2ZnSnS4)系统中气相碱迁移的观察结果(重新)为新型气相掺杂策略开辟了道路。但是,目前对气相碱传输的理解非常有限。这项工作(i)表明,仅通过气相钠的引入,CIGSe装置的效率就可以从2%提高到8%;(ii)根据质谱研究确定气相碱传输的最可能途径,(iii)提供热化学计算以合理化观测结果;(iv)批判性地讨论主题文献,以更好地了解现象的化学基础。这些结果表明偶然的碱金属掺杂一直发生,在生长期间可以施加受控的碱金属蒸气压来掺杂半导体,并且可能必须在当前使用的固态掺杂路线中加以考虑。结论是碱气相传输通过多种途径发生并且不能归因于单一来源。

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