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Robust nonfullerene solar cells approaching unity external quantum efficiency enabled by suppression of geminate recombination

机译:强大的非富勒烯太阳能电池通过抑制双子重组而达到了统一的外部量子效率

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摘要

Nonfullerene solar cells have increased their efficiencies up to 13%, yet quantum efficiencies are still limited to 80%. Here we report efficient nonfullerene solar cells with quantum efficiencies approaching unity. This is achieved with overlapping absorption bands of donor and acceptor that increases the photon absorption strength in the range from about 570 to 700 nm, thus, almost all incident photons are absorbed in the active layer. The charges generated are found to dissociate with negligible geminate recombination losses resulting in a short-circuit current density of 20 mA cm−2 along with open-circuit voltages >1 V, which is remarkable for a 1.6 eV bandgap system. Most importantly, the unique nano-morphology of the donor:acceptor blend results in a substantially improved stability under illumination. Understanding the efficient charge separation in nonfullerene acceptors can pave the way to robust and recombination-free organic solar cells.
机译:非富勒烯太阳能电池的效率已提高到13%,但量子效率仍然限制在80%。在这里,我们报告量子效率接近于统一的高效非富勒烯太阳能电池。这是通过施主和受主的吸收带重叠而实现的,该吸收带在大约570至700 nm的范围内增加了光子吸收强度,因此,几乎所有入射光子都被吸收到了有源层中。发现产生的电荷与微不足道的双峰重组损失解离,导致短路电流密度为20 mA cm -2 以及开路电压> 1 V,这对于1.6 eV而言是显着的带隙系统。最重要的是,供体:受体混合物的独特纳米形态导致在光照下的稳定性大大提高。了解非富勒烯受体中的有效电荷分离可以为坚固耐用且无重组的有机太阳能电池铺平道路。

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