Defect Passivation Enabled by Amphiphilic Polymer Additives for Perovskite Solar Cells with Suppressed Charge Recombination

被引:5
作者
Ke, Lili [1 ]
Xiong, Xin [1 ]
Hu, Ding [2 ]
Liu, Gang [1 ]
Zhou, Conghua [3 ]
Chen, Hanyue [1 ]
Li, Ling [4 ]
Li, Hongxing [1 ]
机构
[1] Xiangtan Univ, Sch Phys & Optoelect, Hunan Key Lab Micronano Energy Mat & Devices, Xiangtan 411105, Hunan, Peoples R China
[2] Xiangtan Univ, Sch Chem Engn, Xiangtan 411105, Hunan, Peoples R China
[3] Cent South Univ, Sch Phys & Elect, Hunan Key Lab Supermicrostruct & Ultrafast Proc, Changsha 410083, Hunan, Peoples R China
[4] Hunan Agr Univ, Coll Chem & Mat Sci, Changsha 410218, Hunan, Peoples R China
来源
ACS SUSTAINABLE CHEMISTRY & ENGINEERING | 2024年 / 12卷 / 19期
关键词
amphiphilic polymer; defect passivation; additiveengineering; ambient stability; perovskite solarcells;
D O I
10.1021/acssuschemeng.4c00806
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Harmful defects are typically major performance and stability degrading factors in perovskite solar cells (PSCs). In order to prevent defect formation and ion migration, some small molecule additives are often used in PSCs, which, however, are highly volatile and very likely to drift. In this work, an amphiphilic polymer, p(HEMA-co-DEAMA), is synthesized and doped into organic salt solution. Through Lewis base coordination and hydrogen bonding, it can be chemically bonded to a perovskite. Further analysis reveals that trap density is significantly reduced after simple treatment with p(HEMA-co-DEAMA), suppressing charge recombination and boosting the power conversion efficiency (PCE) of PSCs. Moreover, the ordered long chain structure of p(HEMA-co-DEAMA) forms a gridlike crystal, which stitches the grain boundaries and thus modulates the growth of perovskite crystals therein. Importantly, the exposure of the long alkyl chains on p(HEMA-co-DEAMA) also provides a hydrophobic coating, which protects the perovskite film from environmental humidity and further enhances the operation stability. Therefore, the unpackaged devices modified with p(HEMA-co-DEAMA) exhibit excellent stability with retaining more than 90% of the original PCE when stored for 1000 h in an air environment, indicating the viability of our strategies.
引用
收藏
页码:7434 / 7442
页数:9
相关论文
共 31 条
  • [1] An Efficient Trap Passivator for Perovskite Solar Cells: Poly(propylene glycol) bis(2-aminopropyl ether)
    Chen, Ningli
    Yi, Xiaohui
    Zhuang, Jing
    Wei, Yuanzhi
    Zhang, Yanyan
    Wang, Fuyi
    Cao, Shaokui
    Li, Cheng
    Wang, Jizheng
    [J]. NANO-MICRO LETTERS, 2020, 12 (01)
  • [2] DTBDT-Based Polymer Hole Transport Materials for Low Voltage Loss CsPbI2Br Perovskite Solar Cells
    Duan, Chen
    Tang, Ailing
    Guo, Qiang
    Zhang, Weilin
    Yang, Lei
    Ding, Yuanjia
    Dai, Zheng
    Zhou, Erjun
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (19)
  • [3] Efficient and Stable MAPbI3-Based Perovskite Solar Cells Using Polyvinylcarbazole Passivation
    Frolova, Lyubov A.
    Davlethanov, Aivaz, I
    Dremova, Nadezhda N.
    Zhidkov, Ivan
    Akbulatov, Azat F.
    Kurmaev, Ernst Z.
    Aldoshin, Sergey M.
    Stevenson, Keith J.
    Troshin, Pavel A.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2020, 11 (16): : 6772 - 6778
  • [4] Hysteresis Index: A Figure without Merit for Quantifying Hysteresis in Perovskite Solar Cells
    Habisreutinger, Severin N.
    Noel, Nakita K.
    Snaith, Henry J.
    [J]. ACS ENERGY LETTERS, 2018, 3 (10): : 2472 - 2476
  • [5] Perovskite-polymer composite cross-linker approach for highly-stable and efficient perovskite solar cells
    Han, Tae-Hee
    Lee, Jin-Wook
    Choi, Chungseok
    Tan, Shaun
    Lee, Changsoo
    Zhao, Yepin
    Dai, Zhenghong
    De Marco, Nicholas
    Lee, Sung-Joon
    Bae, Sang-Hoon
    Yuan, Yonghai
    Lee, Hyuck Mo
    Huang, Yu
    Yang, Yang
    [J]. NATURE COMMUNICATIONS, 2019, 10 (1)
  • [6] Recent defect passivation drifts and role of additive engineering in perovskite photovoltaics
    Hassan, Ali
    Wang, Zhijie
    Ahn, Yeong Hwan
    Azam, Muhammad
    Khan, Abbas Ahmad
    Farooq, Umar
    Zubair, Muhammad
    Cao, Yu
    [J]. NANO ENERGY, 2022, 101
  • [7] Perovskite Solar Cells: From Materials to Devices
    Jung, Hyun Suk
    Park, Nam-Gyu
    [J]. SMALL, 2015, 11 (01) : 10 - 25
  • [8] 2D Polymers with Lead Anchoring Groups Enable Perovskite Solar Cells with Over 24% Efficiency
    Lai, Hongtao
    Tang, Xingchen
    Bi, Leyu
    Tian, Binqiang
    Wang, Huanhuan
    Ji, Xiaofei
    Fu, Qiang
    [J]. SOLAR RRL, 2024, 8 (04)
  • [9] High performance perovskite solar cells by hybrid chemical vapor deposition
    Leyden, Matthew R.
    Ono, Luis K.
    Raga, Sonia R.
    Kato, Yuichi
    Wang, Shenghao
    Qi, Yabing
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2014, 2 (44) : 18742 - 18745
  • [10] Surface Regulation with Polymerized Small Molecular Acceptor Towards Efficient Inverted Perovskite Solar Cells
    Li, Dongyang
    Huang, Yulan
    Ma, Ruijie
    Liu, Heng
    Liang, Qiong
    Han, Yu
    Ren, Zhiwei
    Liu, Kuan
    Fong, Patrick Wai-Keung
    Zhang, Zhuoqiong
    Lian, Qing
    Lu, Xinhui
    Cheng, Chun
    Li, Gang
    [J]. ADVANCED ENERGY MATERIALS, 2023, 13 (18)