Efficient and Stable Air-Processed Ternary Organic Solar Cells Incorporating Gallium-Porphyrin as an Electron Cascade Material

被引:2
|
作者
Soultati, Anastasia [1 ]
Verouti, Maria [1 ,2 ]
Polydorou, Ermioni [1 ]
Armadorou, Konstantina-Kalliopi [1 ]
Georgiopoulou, Zoi [1 ,3 ]
Palilis, Leonidas C. [2 ]
Karatasios, Ioannis [1 ]
Kilikoglou, Vassilis [1 ]
Chroneos, Alexander [4 ,5 ]
Coutsolelos, Athanassios G. [6 ]
Argitis, Panagiotis [1 ]
Vasilopoulou, Maria [1 ]
机构
[1] Inst Nanosci & Nanotechnol INN, Natl Ctr Sci Res Demokritos, Athens 15341, Greece
[2] Univ Patras, Dept Phys, Rio Patra 26504, Greece
[3] Natl & Kapodistrian Univ Athens, Phys Dept, Solid State Phys Sect, Athens 15784, Greece
[4] Univ Thessaly, Dept Elect & Comp Engn, Volos 38221, Greece
[5] Imperial Coll, Dept Mat, London SW7 2AZ, England
[6] Univ Crete, Dept Chem, Lab Bioinorgan Chem, Voutes Campus,POB 2208, Iraklion 70013, Greece
关键词
gallium porphyrin; electron cascade; ternary organic solar cell; exciton dissociation efficiency; photostability; PHYSICOCHEMICAL CHARACTERISTICS; RECENT PROGRESS; PEROVSKITE; PERFORMANCE; ENERGY; ENHANCEMENT; DEGRADATION; MORPHOLOGY;
D O I
10.3390/nano13202800
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Two gallium porphyrins, a tetraphenyl GaCl porphyrin, termed as (TPP)GaCl, and an octaethylporphyrin GaCl porphyrin, termed as (OEP)GaCl, were synthesized to use as an electron cascade in ternary organic bulk heterojunction films. A perfect matching of both gallium porphyrins' energy levels with that of poly(3-hexylthiophene-2,5-diyl) (P3HT) or poly[N-9' -heptadecanyl-2,7carbazole-alt-5,5-(4',7'-di-2-thienyl-2',1',3'-benzothiadiazole)] (PCDTBT) polymer donor and the 6,6-phenyl C71 butyric acid methyl ester (PCBM) fullerene acceptor, forming an efficient cascade system that could facilitate electron transfer between donor and acceptor, was demonstrated. Therefore, ternary organic solar cells (OSCs) using the two porphyrins in various concentrations were fabricated where a performance enhancement was obtained. In particular, (TPP)GaCl-based ternary OSCs of low concentration (1:0.05 vv%) exhibited a similar to 17% increase in the power conversion efficiency (PCE) compared with the binary device due to improved exciton dissociation, electron transport and reduced recombination. On the other hand, ternary OSCs with a high concentration of (TPP)GaCl (1:0.1 vv%) and (OEP)GaCl (1:0.05 and 1:0.1 vv%) showed the poorest efficiencies due to very rough nanomorphology and suppressed crystallinity of ternary films when the GaCl porphyrin was introduced to the blend, as revealed from X-ray diffraction (XRD) and atomic force microscopy (AFM). The best performing devices also exhibited improved photostability when exposed to sunlight illumination for a period of 8 h than the binary OSCs, attributed to the suppressed photodegradation of the ternary (TPP)GaCl 1:0.05-based photoactive film.
引用
收藏
页数:21
相关论文
共 50 条
  • [21] Stable and efficient air-processed perovskite solar cells employing low-temperature processed compact In2O3 thin films as electron transport materials
    Zhang, Xiaoqing
    Li, Jingling
    Bi, Zhuoneng
    He, Kun
    Xu, Xueqing
    Xiao, Xiudi
    Zhu, Yanqing
    Zhan, Yongjun
    Zhong, Liuwen
    Xu, Gang
    Yu, Huangzhong
    JOURNAL OF ALLOYS AND COMPOUNDS, 2020, 836
  • [22] Efficient and Versatile Interconnection Layer by Solvent Treatment of PEDOT: PSS Interlayer for Air-Processed Organic Tandem Solar Cells
    Prosa, Mario
    Tessarolo, Marta
    Bolognesi, Margherita
    Cramer, Tobias
    Chen, Zhihua
    Facchetti, Antonio
    Fraboni, Beatrice
    Seri, Mirko
    Ruani, Giampiero
    Muccini, Michele
    ADVANCED MATERIALS INTERFACES, 2016, 3 (23):
  • [23] Low temperature processed ternary oxide as an electron transport layer for efficient and stable perovskite solar cells
    Li, Xin
    Yang, Junyou
    Jiang, Qinghui
    Chu, Weijing
    Xin, Jiwu
    Hou, Jingdi
    Lai, Hui
    ELECTROCHIMICA ACTA, 2018, 261 : 474 - 481
  • [24] Tailoring Crystal Growth Regulation and Dual Passivation for Air-Processed Efficient Perovskite Solar Cells
    Li, Qianyi
    Li, Dongyang
    Li, Zhiqi
    Liang, Qiong
    Fong, Patrick W. K.
    Han, Yu
    Liu, Kuan
    Yu, Jiangsheng
    Bai, Peng
    Zhu, Tao
    Bai, Yang
    Yang, Guang
    Ren, Zhiwei
    Li, Gang
    ADVANCED SCIENCE, 2025,
  • [25] Preparation of PCDTBT nanofibers with a diameter of 20 nm and their application to air-processed organic solar cells
    Kim, Taehoon
    Yang, Seung Jae
    Kim, Sung Kyun
    Choi, Hong Soo
    Park, Chong Rae
    NANOSCALE, 2014, 6 (05) : 2847 - 2854
  • [26] Unveiling the Selenization Reaction Mechanisms in Ambient Air-Processed Highly Efficient Kesterite Solar Cells
    Yu, Zixuan
    Li, Chuanhao
    Chen, Shuo
    Zheng, Zhuanghao
    Fan, Ping
    Li, Yingfen
    Tan, Manlin
    Yan, Chang
    Zhang, Xianghua
    Su, Zhenghua
    Liang, Guangxing
    ADVANCED ENERGY MATERIALS, 2023, 13 (19)
  • [27] The role of solvent vapor annealing in highly efficient air-processed small molecule solar cells
    Sun, Kuan
    Xiao, Zeyun
    Hanssen, Eric
    Klein, Michael F. G.
    Dam, Henk H.
    Pfaff, Marina
    Gerthsen, Dagmar
    Wong, Wallace W. H.
    Jones, David J.
    JOURNAL OF MATERIALS CHEMISTRY A, 2014, 2 (24) : 9048 - 9054
  • [28] Air-stable, efficient polymer solar cells incorporating solution-processed titanium oxide layer
    Lee, Kwanghee
    Kim, Jin Young
    Heeger, Alan J.
    ORGANIC PHOTOVOLTAICS VIII, 2007, 6656
  • [29] Air-processed and mixed-cation single crystal engineering-based perovskite films for efficient and air-stable perovskite solar cells
    Zhao, Yanna
    Zhao, Chunyan
    Chen, Xiayan
    Luo, Tianyuan
    Ding, Manman
    Ye, Tian
    Zhang, Wenfeng
    Chang, Haixin
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 2020, 31 (03) : 2167 - 2176
  • [30] Air-processed and mixed-cation single crystal engineering-based perovskite films for efficient and air-stable perovskite solar cells
    Yanna Zhao
    Chunyan Zhao
    Xiayan Chen
    Tianyuan Luo
    Manman Ding
    Tian Ye
    Wenfeng Zhang
    Haixin Chang
    Journal of Materials Science: Materials in Electronics, 2020, 31 : 2167 - 2176