首页> 外文期刊>Nano Energy >Cesium-lead based inorganic perovskite quantum-dots as interfacial layer for highly stable perovskite solar cells with exceeding 21% efficiency
【24h】

Cesium-lead based inorganic perovskite quantum-dots as interfacial layer for highly stable perovskite solar cells with exceeding 21% efficiency

机译:基于铯引入的无机钙钛矿量子点作为高度稳定的钙钛矿太阳能电池的界面层,其效率超过21%

获取原文
获取原文并翻译 | 示例
           

摘要

Despite the excellent photovoltaic performances of perovskite solar cells (PSCs), the instability of PSCs under severe environment (e.g. humidity, light-induced, etc.) limits further commercialization of such devices. Therefore, in recent years, research on the long-term stability improvement of PSCs has been actively carried out in perovskite field. To address these issues, we demonstrated the incorporation of ultra-thin interfacial layer of inorganic CsPbBr1.85I1.15 perovskite quantum-dots (PQDs) that can effectively passivate defects at or near to the perovskite/hole transport material (HTM) interface, significantly suppressing interfacial recombination. This passivation layer increased the open circuit voltage (V-oc) of triple-cation perovskite cells by as much as 50 mV, with champion cells achieving V-oc similar to 1.14 V. As a result, we obtained hysteresis-free cells with the efficiency beyond 21%. More importantly, devices based on such architecture are capable of resisting humidity and light-induced. Remarkably, the device employing CsPbBr1.85I1.15 demonstrated a superb shelf-stability aganist to humidity under ambient conditions (R.H. >= 40%), retaining nearly 91% of initial efficiency after 30 days, while the efficiency of control device rapidly dropped to 45% from its initial value under the same conditions. Besides benefiting from the high moisture resistivity as well as supressed ion migration, PSC5 based on PQDs showed better operational stability (retaining 94% of their initial performance) than that of the PQDs-free one under continuous light irradiation over 400 h. In addition, a faster PL decay time of 4.66 ns was attained for perovskite/PQDs structure (5.77 ns for only PQDs structure) due to the favorable energy transfer at the interface, indicating a Forster resonance energy transfer (FRET) mechanism. This work indicates that inorganic PQDs are important materials as interlayer in PSC5 to supremely enhance the device stability and efficiency.
机译:尽管具有优异的钙钛矿太阳能电池(PSC)的光伏性能,但在严重环境下PSC的不稳定性(例如湿度,光引起的等)限制了这种装置的进一步商业化。因此,近年来,对PSC的长期稳定性改善的研究已在Perovskite领域积极进行。为了解决这些问题,我们证明了掺入无机CSPBBR1.85i1.15的超薄界面层,可以显着地将钙钛矿/空穴传输材料(HTM)界面处有效地钝化缺陷或附近的缺陷抑制界面重组。这种钝化层通过多达50 mV增加了三阳离子钙钛矿细胞的开路电压(V-oc),冠军细胞类似于1.14 V的V-oc。结果,我们获得了无滞圈的细胞效率超过21%。更重要的是,基于这种架构的器件能够抵抗湿度和光源。值得注意的是,采用CSPBBR1.85i1.15的装置在环境条件下向湿度(RH> = 40%)展示了一款卓越的储备稳定性,在30天后保持近91%的初始效率,而控制装置的效率迅速下降到在相同条件下的初始值下45%。除了从高湿度电阻率和压制离子迁移中受益,基于PQD的PSC5显示出更好的操作稳定性(保持其初始性能的94%)比连续光照射在400小时内的不含PQDS的稳定性。另外,由于界面处有利的能量传递,佩罗夫斯基特/ PQDS结构(仅适用于PQDS结构的5.77ns,仅为PQDS结构的5.77ns)的更快PL衰减时间。这项工作表明无机PQD是PSC5中的中间层的重要材料,以极其提高器件稳定性和效率。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号