首页> 外文期刊>Japanese Journal of Applied Physics. Part 1, Regular Papers & Short Notes >Influence of Structure and C_(60) Composition on Properties of Blends and Bilayers of Organic Donor-Acceptor Polymer/C_(60) Photovoltaic Devices
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Influence of Structure and C_(60) Composition on Properties of Blends and Bilayers of Organic Donor-Acceptor Polymer/C_(60) Photovoltaic Devices

机译:结构和C_(60)组成对有机给体-受体聚合物/ C_(60)光伏器件共混和双层性能的影响

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We have fabricated both blended and bilayered organic photovoltaic cells (OPVCs) using C_(60) and poly[2-methoxy-5-(2′-ethylhexoxy)-1,4-phenylenevinylene] (MEH-PPV). Improvements in photovoltaic performance are seen in blended OPVCs when the C_(60) concentration is increased. It is believed that the optimized surface morphology of MEH-PPV/C_(60) composite and improved donor-acceptor proximity, leading to electron conductivity, contribute to the increase in power conversion efficiency E_(ff). Two broad peaks were observed in the spectral response of the blended OPVCs, with maximum peaks at ~ 490nm ( = I_(BL1)) and ~ 350nm ( = I_(BL2)). The intensity ratio of I_(BL1) to I_(BL2) (I_(BL1)/I_(BL2)) decreases with an increase in the C_(60) concentration. Also, I_(BL1) is blue-shifted by 25-30 nm with an increase in the C_(60) concentration. The significant improvement in the performance was observed in the bilayered OPVCs on the thermally induced interdiffusion of C_(60) into the MEH-PPV network, leading to the existence of C_(60) molecules within the exciton diffusion radius of the MEH-PPV network. The spectral response of bilayered OPVCs reveals two peaks at 535 nm and 345 nm. The former peak is red-shifted by 45 nm compared to that in blended OPVCs. We also investigate the effect of top electrode materials on the photovoltaic performances. To the best of our knowledge, we have obtained the best performances of blended and bilayered OPVCs fabricated with the Al and Mg electrodes, respectively. In both OPVC structures, the nanoscale composition control of the two materials, the choice of metal electrode, and the device processing techniques all play an important role in determining or enhancing the solar cell performance.
机译:我们已经使用C_(60)和聚[2-甲氧基-5-(2'-乙基己氧基)-1,4-亚苯基亚乙烯基](MEH-PPV)制造了混合和双层有机光伏电池(OPVC)。当C_(60)浓度增加时,可在混合OPVC中看到光伏性能的改善。可以认为,MEH-PPV / C_(60)复合材料的最佳表面形貌和改善的供体-受体接近性(导致电子电导率)有助于提高功率转换效率E_(ff)。在共混的OPVC的光谱响应中观察到两个宽峰,最大峰在〜490nm(= I_(BL1))和〜350nm(= I_(BL2))。随着C_(60)浓度的增加,I_(BL1)与I_(BL2)的强度比(I_(BL1)/ I_(BL2))减小。此外,随着C_(60)浓度的增加,I_(BL1)发生了蓝移25-30 nm。在热诱导C_(60)互扩散到MEH-PPV网络中的双层OPVC中观察到性能的显着改善,导致在MEH-PPV网络的激子扩散半径内存在C_(60)分子。双层OPVC的光谱响应在535 nm和345 nm处显示两个峰。与混合的OPVC相比,前一个峰红移了45 nm。我们还研究了顶部电极材料对光伏性能的影响。据我们所知,我们分别获得了用铝和镁电极制造的混合和双层OPVC的最佳性能。在两种OPVC结构中,两种材料的纳米级成分控制,金属电极的选择以及器件处理技术都在确定或增强太阳能电池性能方面起着重要作用。

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