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聚吡咯纳米棒网络/碳纳米粒子复合对电极用于高效染料敏化太阳能电池。

Polypyrrole nanorod networks/carbon nanoparticles composite counter electrodes for high-efficiency dye-sensitized solar cells.

机构信息

School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798.

出版信息

ACS Appl Mater Interfaces. 2012 Jan;4(1):397-404. doi: 10.1021/am201461c. Epub 2011 Dec 27.

Abstract

Polypyrrole(PPy) nanorod networks with a high electrical conductivity of 40 S cm(-1) have been obtained in a high yield by employing an ion association of heparin-methylene blue as a new morphology-directing agent. The polypyrrole nanorod networks are mixed with different content of carbon nanoparticles to make PPy nanorod networks/carbon nanoparticles(PPy/C) counter electrodes. It is found that the PPy/C composite with 10% carbon content shows a lower charge transfer resistance and better catalytic performance for the reduction of I(3)(-), compared with the pristine PPy and carbon electrodes. The better catalytic performance is attributed to the interaction of the superior electrocatalytic activity of the unique polypyrrole nanorod networks and the carbon nanoparticles, which can accelerate triiodide reduction and electron transfer in the electrode. Under standard AM 1.5 sunlight illumination, the dye-sensitized solar cell based on the PPy/C composite with 10% carbon content as the counter electrode demonstrates a high efficiency of 7.2%, which is much higher than that of pristine PPy and carbon electrode-based DSCs and comparable to that of the thermal decomposed Pt-based DSC.

摘要

通过使用肝素-亚甲蓝的离子缔合作为一种新的形态导向剂,以高产率获得了具有 40 S cm(-1)高电导率的聚吡咯(PPy)纳米棒网络。将 PPy 纳米棒网络与不同含量的碳纳米粒子混合,制得 PPy 纳米棒网络/碳纳米粒子(PPy/C)对电极。结果发现,与原始的 PPy 和碳电极相比,含有 10%碳含量的 PPy/C 复合材料具有更低的电荷转移电阻和更好的催化性能,用于还原 I(3)(-)。更好的催化性能归因于独特的聚吡咯纳米棒网络和碳纳米粒子的优越电催化活性的相互作用,这可以加速三碘化物在电极中的还原和电子转移。在标准 AM 1.5 阳光照射下,以含有 10%碳含量的 PPy/C 复合材料作为对电极的染料敏化太阳能电池表现出 7.2%的高效率,远高于原始的 PPy 和碳电极基 DSCs 的效率,与热分解 Pt 基 DSC 的效率相当。

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