空穴和电子传输材料:用于高效、稳定和可扩展的钙钛矿太阳能电池的有机电荷传输材料的最新进展综述

B. Gopal Krishna , Dhriti Sundar Ghosh , Sanjay Tiwari
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摘要

电荷传输材料是制备稳定、高效的钙钛矿太阳能电池必不可少的材料。高温加工、表面缺陷和低迁移率是无机电荷传输材料普遍存在的问题,阻碍了低成本、高效、稳定的钙钛矿太阳能电池的制造。掺杂物增加了空穴输运材料的加工成本。在高温加工的无机电子输运材料中观察到表面缺陷。在钙钛矿太阳能电池中,需要开发用于电荷传输的有机化合物。本文综述了钙钛矿太阳能电池中用于电荷传输的有机材料的研究进展。有机化合物加工成本低、溶解度好、电荷迁移率高、分子轨道可调、稳定性好等特点是其作为钙钛矿太阳能电池中电荷输运材料的优势。有机小分子、聚合物和酞菁化合物可以用作无掺杂的空穴传输材料。富勒烯和非富勒烯衍生物如C60、C70、叠氮杂烯、吲哚二噻吩、聚合物和二甲苯二亚胺是很有前途的电子传输材料。讨论了不同有机材料的功能、工程、电荷输运特性和器件特性。该综述将从结构、工程和材料等方面为提高器件的稳定性和效率,早日实现钙钛矿太阳能电池的商业化提供预测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Hole and electron transport materials: A review on recent progress in organic charge transport materials for efficient, stable, and scalable perovskite solar cells

Hole and electron transport materials: A review on recent progress in organic charge transport materials for efficient, stable, and scalable perovskite solar cells

Charge transporting materials are essential for fabricating stable and efficient perovskite solar cells. The high-temperature processing, surface defects, and low mobility are common issues in inorganic charge transport materials which can hinder the fabrication of low-cost, efficient, and stable perovskite solar cells. Dopants increase the processing cost of the hole transport materials. Surface defects are observed in the high-temperature processed inorganic electron transport materials. There is a need to develop organic compounds for charge transportation in perovskite solar cells. Herein, the advancements in the organic materials for charge transport in the perovskite solar cells are reviewed. The low-cost processing, better solubility, efficient charge mobility, tunable molecular orbitals, and better stability of organic compounds are some properties for their utilization as charge transport materials in perovskite solar cells. Organic small molecules, polymers, and phthalocyanine compounds can be utilized as dopant-free hole transport materials. Fullerene and non-fullerene derivatives like C60, C70, azaacenes, indacenodithiophene, polymers, and rylene diimides are promising electron transport materials. The functionality, engineering, charge transport properties, and device characteristics of different organic materials are discussed. The review will offer a forecast for improving device stability and efficiency in terms of architecture, engineering, and materials to realize the commercialization of perovskite solar cells soon.

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