首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Inverted polymer solar cells including ZnO electron transport layer fabricated by facile spray pyrolysis
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Inverted polymer solar cells including ZnO electron transport layer fabricated by facile spray pyrolysis

机译:包括通过简易喷雾热解法制备的ZnO电子传输层的倒置聚合物太阳能电池

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摘要

Efficient inverted polymer solar cells (PSCs) were fabricated with ZnO electron transport layers (ETLs) prepared by spray pyrolysis, which is a simple and cost efficient method producing a thin oxide layer by direct spray of precursor on hot substrate. To investigate the effect of substrate temperature on the structural and optical properties as well as performance of PSCs, ZnO ETLs were fabricated by spray pyrolysis on hot substrate controlled at 150, 250, and 350 C, respectively. The PSC with ZnO prepared by spray pyrolysis at 150 C exhibited poor power conversion efficiency (PCE) of 0.94% due to the mis-matched energy level and microscopic roughness of ZnO ETL. On the other hand, enhanced efficiency of 2.99% and 3.22% was obtained by using ZnO prepared by spray pyrolysis at 250 and 350 C, respectively. Enhancement of efficiency at higher temperature is attributed to better matching of ZnO coated ITO work-function with the lowest unoccupied molecular orbital (LUMO) energy level of PCBM and the formation of smooth and homogeneous polycrystalline ZnO, resulting in improved interfacial property and electron transport. In the durability test, inverted ZnO solar cell was retained above 80% during 9 days in an ambient atmosphere without any encapsulation, while conventional solar cells showed dramatic decrease of efficiency.
机译:使用通过喷雾热解制备的ZnO电子传输层(ETL)来制造高效的倒置聚合物太阳能电池(PSC),这是一种通过将前体直接喷涂在热基板上来生产薄氧化层的简单且经济高效的方法。为了研究衬底温度对PSC的结构和光学性能以及性能的影响,分别在150、250和350 C的热衬底上通过喷雾热解制备了ZnO ETL。通过不匹配的能级和ZnO ETL的微观粗糙度,在150℃下通过喷雾热解制备的具有ZnO的PSC的功率转换效率(PCE)为0.94%。另一方面,通过使用分别在250和350℃下喷雾热解制备的ZnO,获得了2.99%和3.22%的提高的效率。高温下效率的提高归因于ZnO涂层的ITO功函与PCBM的最低未占用分子轨道(LUMO)能级更好的匹配以及平滑且均匀的多晶ZnO的形成,从而改善了界面性能和电子传输。在耐久性测试中,倒置的ZnO太阳能电池在环境气氛中放置9天的时间保持80%以上,没有任何封装,而常规太阳能电池的效率却大大降低。

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