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Influences of Spiro-MeOTAD Hole Transport Layer on the Long-term Stabilities of Perovskite-based Solar Cells

机译:Spiro-MeOTAD空穴传输层对钙钛矿基太阳能电池长期稳定性的影响

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On the basis of concerted research efforts worldwide, there is no doubt that outstanding power conversion efficiency (PCE) can be achieved in perovskite solar cells. However, to move forward this technology towards commercialization, developments of strategies to achieve long term stability is important. At OIST, a team of researchers in the Energy Materials and Surface Sciences Unit has been making concerted efforts to develop processes aiming at high PCE, high-throughput, minimum batch-to-batch variation, compatible with large-area perovskite solar cells and modules, low toxicity, and long-term stability. Optimization of hole transport materials (HTMs) is important for enhancing solar power conversion efficiency and improving stability. In this talk, we will present our latest understanding of fundamental interactions between Li-bis(trifluoromethanesulfonyl)-imide (LiTFSI), 4-tert-butylpyridine (t-BP) and spiro-MeOTAD and how different gas exposures (e.g., exposure to O2, H2O, N2) influences electronic structures and conductivity of such HTM films. In addition, we will propose further strategies to improve perovskite solar cell performance and stability.
机译:基于全球一致的研究成果,毫无疑问,钙钛矿型太阳能电池可以实现出色的功率转换效率(PCE)。但是,为了使这项技术朝着商业化的方向发展,实现长期稳定性的策略的发展很重要。在OIST,能源材料和表面科学部门的研究人员团队一直在共同努力,开发旨在实现高PCE,高通量,最小批次间差异,与大面积钙钛矿太阳能电池和组件兼容的工艺,低毒和长期稳定性。空穴传输材料(HTM)的优化对于提高太阳能转换效率和提高稳定性很重要。在本次演讲中,我们将介绍我们对Li-双(三氟甲磺酰基)-酰亚胺(LiTFSI),4-叔丁基吡啶(t-BP)和螺-MeOTAD之间基本相互作用的最新理解,以及不同的气体暴露量(例如暴露于Ø 2 , H 2 2 )影响此类HTM膜的电子结构和导电性。另外,我们将提出进一步的策略来改善钙钛矿太阳能电池的性能和稳定性。

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