Porphyrin-Based Hole-Transporting Materials for Perovskite Solar Cells: Boosting Performance with Smart Synthesis

被引:0
|
作者
Reis, Melani J. A. [1 ,2 ]
Pereira, Ana M. V. M. [3 ,4 ]
Moura, Nuno M. M. [1 ,2 ]
Neves, Maria G. P. M. S. [1 ,2 ]
机构
[1] Univ Aveiro, LAQV Requimte, P-3010193 Aveiro, Portugal
[2] Univ Aveiro, Dept Chem, P-3010193 Aveiro, Portugal
[3] Univ Porto, Fac Engn, LEPABE Lab Proc Engn Environm Biotechnol & Energy, P-4200465 Porto, Portugal
[4] Univ Porto, Fac Engn, ALiCE Associate Lab Chem Engn, P-4200465 Porto, Portugal
来源
ACS OMEGA | 2024年 / 9卷 / 29期
关键词
ARYLAMINE-SUBSTITUTED PORPHYRINS; CHARGE-TRANSPORT; EFFICIENT; TETRAPHENYLPORPHYRINS; DERIVATIVES; LAYERS;
D O I
10.1021/acsomega.4c01961
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Perovskite solar cells (PSCs) are becoming a promising and revolutionary advancement within the photovoltaic field globally. Continuous improvement in efficiency, straightforward processing methods, and use of lightweight and cost-effective materials represent superior features, among other notable aspects. Still, long-term stability and durability are issues to address to facilitate widespread commercial adoption and practical application prospects. Research has focused on overcoming these challenges, and charge transport materials play a critical role in determining charge dynamics, photovoltaic performance, and device stability. Conventional hole-transporting materials (HTMs), spiro-OMeTAD and PTAA, contribute to remarkable power conversion efficiencies owing to high thin-film quality and matched energy alignment. However, they often show a high material cost, low carrier mobility, and poor stability, which greatly limit their practical applications. Now, this review outlines recent advances in synthetic approaches to porphyrin-based HTMs to tune the charge dynamics by optimizing their molecular structures and properties. The main structural features comprise porphyrins of A(4)-type, trans A(2)B(2)-type, and photosynthetic pigment analogues. Strategies include well-established routes to provide the required macrocycles, such as condensation of pyrrole or dipyrromethanes with suitable aldehydes, metalation of the porphyrin inner core, and postfunctionalization of peripheral positions. These functionalizations involve conventional procedures (e.g., halogenation, esterification, transesterification, nucleophilic oxidation, reduction, and nucleophilic substitution) as well as metal-catalyzed ones such as Suzuki-Miyaura, Sonogashira, Buchwald-Hartwig, and Ullmann cross-coupling reactions. As HTMs can also protect the perovskite layer from the external environment, porphyrin structures play a pivotal role in chemical, mechanical, and environmental stability, with their high hydrophobicity ability as the most significant parameter. The impact of porphyrins on the hole hopping of other HTMs while acting as an additive or an interlayer, passivating defects, and improving charge transport is also highlighted to provide real insights into ways to develop efficient and stable porphyrin-based materials for PSCs. This perspective aims to guide the scientific community in the design of new porphyrin molecules to place PSCs as an outperformer in photovoltaic technologies.
引用
收藏
页码:31196 / 31219
页数:24
相关论文
共 50 条
  • [1] Efficient and stable perovskite solar cells through electrochemically polymerized porphyrin-based hole-transporting materials
    Liu, Ziyan
    Xu, Yuting
    Li, Aijun
    Li, Yuanlin
    Xiang, Tianfu
    Sun, Yuting
    Ren, Hangchen
    Sasaki, Shin-ichi
    Miyasaka, Tsutomu
    Wang, Xiao-Feng
    [J]. JOURNAL OF MATERIALS CHEMISTRY C, 2024, 12 (32) : 12282 - 12291
  • [2] Novel π-extended porphyrin-based hole-transporting materials with triarylamine donor units for high performance perovskite solar cells
    Kang, Sung Ho
    Lu, Chunyuan
    Zhou, Haoran
    Choi, Seungjoo
    Kim, Jeongho
    Kim, Hwan Kyu
    [J]. DYES AND PIGMENTS, 2019, 163 : 734 - 739
  • [3] Hole-Transporting Materials for Perovskite Solar Cells
    Liu, Fan
    Li, Qianqian
    Li, Zhen
    [J]. ASIAN JOURNAL OF ORGANIC CHEMISTRY, 2018, 7 (11) : 2182 - 2200
  • [4] Progress in hole-transporting materials for perovskite solar cells
    Yang, Xichuan
    Wang, Haoxin
    Cai, Bin
    Yu, Ze
    Sun, Licheng
    [J]. JOURNAL OF ENERGY CHEMISTRY, 2018, 27 (03) : 650 - 672
  • [5] Progress in hole-transporting materials for perovskite solar cells
    Xichuan Yang
    Haoxin Wang
    Bin Cai
    Ze Yu
    Licheng Sun
    [J]. Journal of Energy Chemistry, 2018, 27 (03) : 650 - 672
  • [6] Progress in hole-transporting materials for perovskite solar cells
    Xichuan Yang
    Haoxin Wang
    Bin Cai
    Ze Yu
    Licheng Sun
    [J]. Journal of Energy Chemistry, 2018, (03) : 650 - 672
  • [7] Inorganic Hole-Transporting Materials for Perovskite Solar Cells
    Yu, Ze
    Sun, Licheng
    [J]. SMALL METHODS, 2018, 2 (02):
  • [8] Hole-Transporting Materials for Printable Perovskite Solar Cells
    Vivo, Paola
    Salunke, Jagadish K.
    Priimagi, Arri
    [J]. MATERIALS, 2017, 10 (09)
  • [9] A new binaphthol based hole-transporting materials for perovskite solar cells
    Zong, Xueping
    Qiao, Wenhua
    Chen, Yu
    Sun, Zhe
    Liang, Mao
    Xue, Song
    [J]. TETRAHEDRON, 2017, 73 (24) : 3398 - 3405
  • [10] Perovskite Solar Cells Based on Oligotriarylamine Hexaarylbenzene as Hole-Transporting Materials
    Shasti, Mona
    Volker, Sebastian F.
    Collavini, Silvia
    Valero, Silvia
    Ruiperez, Fernando
    Mortezaali, Abdollah
    Zakeeruddin, Shaik M.
    Gratzel, M.
    Hagfeldt, A.
    Luis Delgado, Juan
    [J]. ORGANIC LETTERS, 2019, 21 (09) : 3261 - 3264