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Toward Efficient Carbon Nanotube/P3HT Solar Cells: Active Layer Morphology, Electrical, and Optical Properties

机译:迈向高效碳纳米管/ P3HT太阳能电池:有源层的形态,电学和光学特性

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摘要

We demonstrate single-walled carbon nanotube (SWCNT)/P3HT polymer bulk heterojunction solar cells with an AM1.5 efficiency of 0.72%, significantly higher than previously reported (0.05%). A key step in achieving high efficiency is the utilization of semiconducting SWCNTs coated with an ordered P3HT layer to enhance the charge separation and transport in the device active layer. Electrical characteristics of devices with SWCNT concentrations up to 40 wt % were measured and are shown to be strongly dependent on the SWCNT loading. A maximum open circuit voltage was measured for SWCNT concentration of 3 wt % with a value of 1.04 V, higher than expected based on the interface band alignment. Modeling of the open-circuit voltage suggests that despite the large carrier mobility in SWCNTs device power conversion efficiency is governed by carrier recombination. Optical characterization shows that only SWCNT with diameter of 1.3–1.4 nm can contribute to the photocurrent with internal quantum efficiency up to 26%. Our results advance the fundamental understanding and improve the design of efficient polymer/SWCNTs solar cells.
机译:我们演示了单壁碳纳米管(SWCNT)/ P3HT聚合物本体异质结太阳能电池,其AM1.5效率为0.72%,明显高于先前报道的(0.05%)。实现高效率的关键步骤是利用涂覆有序P3HT层的半导体SWCNT来增强器件有源层中的电荷分离和传输。测量了SWCNT浓度最高为40 wt%的器件的电学特性,并显示出其强烈依赖于SWCNT的负载。对于3wt%的SWCNT浓度,测量最大开路电压,值为1.04V,高于基于界面带取向的预期。开路电压的建模表明,尽管SWCNT中的载流子迁移率很高,但器件的功率转换效率仍由载流子重组决定。光学特性表明,只有直径为1.3–1.4 nm的SWCNT可以以内部量子效率高达26%的速率贡献光电流。我们的结果提高了基础理解,并改善了高效聚合物/ SWCNTs太阳能电池的设计。

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