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由绿色溶剂浇铸而成的生物/金属氧化物复合传输层,用于增强室内有机光伏电池的光捕获响应。

Biological/metal oxide composite transport layers cast from green solvents for boosting light harvesting response of organic photovoltaic cells indoors.

作者信息

Dagar Janardan, Brown Thomas M

机构信息

CHOSE (Centre for Hybrid and Organic Solar Energy), Department of Electronic Engineering, University of Rome Tor Vergata, Via del Politecnico 1, I-00133 Rome, Italy.

Helmholtz-Zentrum Berlin, HySPRINT Innovation Lab, Kekuléstrasse 5, D-12489 Berlin, Germany.

出版信息

Nanotechnology. 2022 Jul 14;33(40). doi: 10.1088/1361-6528/ac7883.

DOI:10.1088/1361-6528/ac7883
PMID:35700718
Abstract

Organic solar cells with biological/metal-oxide electron transport layers (ETLs), consisting of a ZnO compact layer covered by a thin DNA layer, both of which deposited with green solvents (water or water/alcohols mixtures) are presented for application under low intensity indoor lighting. Under white LED lamp (200, 400 lx), photovoltaic cells with P3HT:PCBM polymer semiconductor blends delivered an average maximum power density (MPD) of 8.7W cm, corresponding to a power conversion efficiency, PCE, of = 8.56% (PCE of best cell was 8.74%). The ZnO/DNA bilayer boosted efficiency by 68% and 13% in relative terms compared to cells made with DNA-only and ZnO-only ETLs at 400 lx. Photovoltaic cells with ZnO/DNA composite ETLs based on PTB7:PCBM blends, that absorb a broader range of the indoor lighting spectrum, delivered MPDs of 16.2W cmwith an estimated average PCE of 14.3% (best cell efficiency of 15.8%) at 400 lx. The best efficiencies for cells fabricated on flexible plastic substrates were 11.9% at 400 lx. This is the first report in which polymer photovoltaics incorporating biological materials have shown to increment performance at these low light levels and work very efficiently under indoor artificial light illumination. The finding can be useful for the production of more bio-compatible photovoltaics as well as bio-sensing devices based on organic semiconductors.

摘要

本文介绍了一种有机太阳能电池,其生物/金属氧化物电子传输层(ETL)由覆盖有薄DNA层的ZnO致密层组成,二者均采用绿色溶剂(水或水/醇混合物)沉积,适用于低强度室内照明。在白色LED灯(200、400勒克斯)下,采用P3HT:PCBM聚合物半导体共混物的光伏电池的平均最大功率密度(MPD)为8.7W/cm²,对应功率转换效率(PCE)为8.56%(最佳电池的PCE为8.74%)。与仅使用DNA和仅使用ZnO的ETL制成的电池相比,ZnO/DNA双层在400勒克斯时相对效率提高了68%和13%。基于PTB7:PCBM共混物且吸收更宽室内照明光谱范围的带有ZnO/DNA复合ETL的光伏电池,在400勒克斯时的MPD为16.2W/cm²,估计平均PCE为14.3%(最佳电池效率为15.8%)。在柔性塑料基板上制造的电池在400勒克斯时的最佳效率为11.9%。这是首次报道将生物材料纳入聚合物光伏中在这些低光照水平下性能有所提高且在室内人造光照明下能高效工作。这一发现对于生产更多生物相容性光伏电池以及基于有机半导体的生物传感设备可能有用。

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