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首页> 外文期刊>Journal of Photochemistry and Photobiology, A. Chemistry >Investigating the effect of polythiocyanogen on morphology and stability of the perovskite layer and its application in the hole-transport material free perovskite solar cell
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Investigating the effect of polythiocyanogen on morphology and stability of the perovskite layer and its application in the hole-transport material free perovskite solar cell

机译:研究多碘氰酮对钙钛矿层的形态和稳定性的影响及其在空穴 - 运输物质无钙钛矿太阳能电池中的应用

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摘要

Over the recent years, solid-state hybrid solar cells based on perovskite organ metal halides, i.e., CH3NH3PbX3 (X = I, Br, or Cl), have attracted considerable attention because of very rapid development and high conventional efficiency. At present, the most challenging part in perovskite solar cells is the high stability, which must be solved before putting them into the practical application. In this study, polythiocyanogen (SCN)(n) was used as an additive to improve the stability of the perovskite layer at the environmental condition. Polythiocyanogen have been used to replace iodide in CH3NH3PbI3, and the resulting perovskite films CH3NH3PbI3 center dot(SCN)(n) are used as the active material in hole-transport material (HTM) free perovskite solar cells. Polythiocyanogen in the presence of iodine in the MAPbI(3) exhibits semiconductor properties which can improve the performance of the perovskite solar cell. In this work, the CH3NH3PbI3 center dot(SCN)(n) absorber layers with the various polythiocyanogen amount (0, 8, 16 and 24 mg/mL) and perovskite solar cells with the FTO/C-TiO2/Meso-TiO2/[CH3NH3PbI3 center dot(SCN)(n)]/Au structure was fabricated. A one-step solution process was used for deposition of the CH3NH3PbI3 center dot(SCN)(n) absorber layers. UV-vis spectra and XRD results reveal that polythiocyanogen could protect perovskite layer from degradation. Moreover, polythiocyanogen has photovoltaic properties and CH3NH3PbI3 center dot(SCN)(n) perovskite solar cell shown better short-circuit current density (JSC) and subsequently the higher power-conversion efficiency (PCE) as well. By adding a small amount of polythiocyanogen to the conventional layer of perovskite solar cell, the short-circuit current density J(SC) has increased from 5.26 to 11.75 mAcm(-2), and the power-conversion efficiency PCE has increased from 2.95% to 6.27%.
机译:在近年来,基于Perovskite器官金属卤化物的固态杂种太阳能电池,即CH3NH3PBX3(X = I,BR或CL),由于显得非常快速和高常规效率,引起了相当大的关注。目前,佩罗夫斯基特太阳能电池中最具挑战性的部分是高稳定性,在将它们放入实际应用之前必须解决。在该研究中,使用多硫氰酸酯(SCN)(N)作为添加剂,以改善钙钛矿层在环境条件下的稳定性。多硫氰酸酯已用于替代CH3NH3PBI3中的碘化物,并将所得的钙钛矿膜CH3NH3PBI3中心点(SCN)(N)用作空穴传输材料(HTM)游离钙钛矿太阳能电池中的活性材料。 MAPBI(3)中碘存在的聚苯硅原具有可提高钙钛矿太阳能电池性能的半导体性能。在这项工作中,CH3NH3PBI3中心点(SCN)(N)吸收剂层具有各种聚噻硫氰酸胶量(0,8,16和24mg / mL)和钙钛矿太阳能电池,具有FTO / C-TiO2 / Meso-TiO2 / [制造CH3NH3PBI3中心点(SCN)(N)] / AU结构。一步溶液方法用于沉积CH3NH3PBI3中心点(SCN)吸收层。 UV-VIS光谱和XRD结果表明,聚硫氰酸是可以保护钙钛矿层免于降解。此外,多硫氰酸具有光伏性能和CH3NH3PBI3中心点(SCN)(N)钙钛矿太阳能电池显示出更好的短路电流密度(JSC),并且随后也是更高的功率转换效率(PCE)。通过向常规的钙钛矿太阳能电池层中加入少量多硫氰化,短路电流密度j(sc)从5.26增加到11.75 macm(-2),功率转换效率PCE从2.95%增加6.27%。

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