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纳米金刚石表面化学性质控制聚吡咯的组装及光电压的产生。

Nanodiamond surface chemistry controls assembly of polypyrrole and generation of photovoltage.

作者信息

Miliaieva Daria, Matunova Petra, Cermak Jan, Stehlik Stepan, Cernescu Adrian, Remes Zdenek, Stenclova Pavla, Muller Martin, Rezek Bohuslav

机构信息

Institute of Physics, Czech Academy of Sciences, Cukrovarnická 10, Prague 6, Czech Republic.

Faculty of Electrical Engineering, Czech Technical University in Prague, Technická 2, Prague 6, Czech Republic.

出版信息

Sci Rep. 2021 Jan 12;11(1):590. doi: 10.1038/s41598-020-80438-3.

Abstract

Nanoscale composite of detonation nanodiamond (DND) and polypyrrole (PPy) as a representative of organic light-harvesting polymers is explored for energy generation, using nanodiamond as an inorganic electron acceptor. We present a technology for the composite layer-by-layer synthesis that is suitable for solar cell fabrication. The formation, pronounced material interaction, and photovoltaic properties of DND-PPy composites are characterized down to nanoscale by atomic force microscopy, infrared spectroscopy, Kelvin probe, and electronic transport measurements. The data show that DNDs with different surface terminations (hydrogenated, oxidized, poly-functional) assemble PPy oligomers in different ways. This leads to composites with different optoelectronic properties. Tight material interaction results in significantly enhanced photovoltage and broadband (1-3.5 eV) optical absorption in DND/PPy composites compared to pristine materials. Combination of both oxygen and hydrogen functional groups on the nanodiamond surface appears to be the most favorable for the optoelectronic effects. Theoretical DFT calculations corroborate the experimental data. Test solar cells demonstrate the functionality of the concept.

摘要

以爆轰纳米金刚石(DND)和聚吡咯(PPy)的纳米级复合材料作为有机光捕获聚合物的代表,探索利用纳米金刚石作为无机电子受体来产生能量。我们提出了一种适用于太阳能电池制造的复合材料逐层合成技术。通过原子力显微镜、红外光谱、开尔文探针和电子输运测量,对DND-PPy复合材料的形成、显著的材料相互作用和光伏特性进行了纳米级表征。数据表明,具有不同表面终端(氢化、氧化、多官能化)的DND以不同方式组装PPy低聚物。这导致了具有不同光电特性的复合材料。与原始材料相比,紧密的材料相互作用使得DND/PPy复合材料中的光电压显著增强,且具有宽带(1-3.5 eV)光吸收。纳米金刚石表面的氧官能团和氢官能团的组合似乎对光电效应最为有利。理论DFT计算证实了实验数据。测试太阳能电池证明了该概念的功能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1aa3/7803993/1fe2fc826a20/41598_2020_80438_Fig1_HTML.jpg

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