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Glass Forming Acceptor Alloys for Highly Efficient and Thermally Stable Ternary Organic Solar Cells

机译:高效,热稳定的三元有机太阳能电池的玻璃形成受体合金

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摘要

The stability of donor:acceptor (D:A) semiconductor blends plays a key role in the development of solution-processed organic solar cells. One essential condition for both high-yield production and a long lifetime is excellent thermal stability. Recently, A(1):A(2) acceptor mixtures have received considerable attention and alloys of two miscible acceptors are singled out as a powerful tool for the design of efficient and durable organic solar cells. This progress report introduces a thermodynamic rationale for the superior thermal stability and reproducibility that is observed for some ternary blends. The increase in entropy upon mixing of several acceptors reduces the tendency for phase separation as well as crystallization, which facilitates the controlled formation of a fine blend nanostructure. Further, when combined with a high glass transition temperature many ternary blends can be readily quenched into a glassy state. Recent progress with regard to the thermal stability and efficiency of D:A(1):A(2) ternary blends is summarized in the light of the thermodynamic and kinetic arguments discussed in this article. Both, fullerene and fullerene-free acceptor alloys now yield solar cell efficiencies in excess of 10%, which indicates that ternary blends are a promising avenue that is poised to considerably enhance the prospect of organic photovoltaics.
机译:施主:受主(D:A)半导体混合物的稳定性在溶液加工有机太阳能电池的开发中起着关键作用。高产量和长寿命的一个基本条件是优异的热稳定性。最近,A(1):A(2)受体混合物受到了广泛关注,并且两个可混溶受体的合金被选为设计高效耐用有机太阳能电池的有力工具。该进展报告介绍了一种热力学原理,以证明某些三元共混物具有优异的热稳定性和可重复性。几种受体混合后熵的增加减少了相分离和结晶的趋势,这有利于精细共混纳米结构的受控形成。此外,当与高玻璃化转变温度结合时,许多三元共混物可以容易地淬灭为玻璃态。根据本文讨论的热力学和动力学参数,总结了D:A(1):A(2)三元共混物的热稳定性和效率方面的最新进展。现在,富勒烯和无富勒烯的受体合金都可产生超过10%的太阳能电池效率,这表明三元共混物是一种有前途的途径,有望大大提高有机光伏的前景。

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