Multiple noncovalent conformational locks combined with π-bridge engineering as high-performance Y-series acceptors for organic photovoltaics

被引:2
|
作者
Yang, Jie [1 ]
Li, Quansong [1 ]
Li, Zesheng [1 ]
机构
[1] Beijing Inst Technol, Sch Chem & Chem Engn, Beijing 100081, Peoples R China
来源
基金
中国国家自然科学基金;
关键词
noncovalent conformational locks; first-principles calculation; organic photovoltaics (OPVs); interfacial charge transfer; EXCITON DISSOCIATION; ENERGY; STATE;
D O I
10.1007/s40843-023-2831-y
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Noncovalent conformational lock (NCL) strategies are widely employed to construct high-performance organic semiconductors. The systematic exploration of the influence of NCLs on the acceptors and interfaces from the atomic scale can help to achieve high-performance optoelectronic materials and devices. Here, we present a strategy integrating NCLs and pi-bridge to design three novel acceptors (YO, YS, YSe) to enhance molecular properties and uncover the underlying mechanism of NCLs. The photoelectric properties of acceptors and donor (D)/acceptor interfaces are thoroughly explored by first-principles calculations. We find for the first time that introducing pi-bridge at the appropriate position not only forms multiple NCLs within the backbone but also forms NCLs with the wing chain, further enhancing acceptors' planarity and rigidity. For acceptors, NCLs contribute to stronger light harvesting and reduced energy losses. Except for the charge-transfer (CT) directions, the amounts of interfacial CT states of D/YO, D/YS, and D/YSe increase by 8%, 20%, and 36%, rspectively. Therefore, introducing multiple NCLs by pi-bridge engineering into the benchmark acceptors is a possible avenue toward high-performce organic photovoltaic. Overall, our findings underscore that the incorporation of multiple NCLs through pi-bridges can substantially enhance power conversion efficiencies through improved photoelectric properties, and interfacial characteristics. (sic)(sic)(sic)(sic)(sic)(sic)(NCLs)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic). (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)NCLs(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic) (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic). (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)NCLs(sic)pi(sic)(sic)(sic)(sic), (sic)(sic)(sic) (sic)(sic)(sic)(sic)Y(sic)(sic)(sic)(sic)(YO,YS,YSe)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)NCLs (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic). (sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic) (sic)(sic)(sic)(sic)(sic)pi(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)NCLs, (sic)(sic)(sic)(sic)(sic)(sic)(sic)NCLs, (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic) (sic)(sic). (sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic) (sic)(sic)8%,20%(sic)36%, (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic). (sic)(sic)(sic)(sic)(sic)pi(sic)(sic)(sic)(sic)(sic)(sic) (sic)NCL, (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic) (sic)(sic)(sic)(sic)(sic)(sic).
引用
收藏
页码:1612 / 1620
页数:9
相关论文
共 50 条
  • [41] Medium band-gap non-fullerene acceptors based on a benzothiophene donor moiety enabling high-performance indoor organic photovoltaics
    Li, Xiaojun
    Luo, Siwei
    Sun, Huiliang
    Sung, Herman Ho-Yung
    Yu, Han
    Liu, Tao
    Xiao, Yiqun
    Bai, Fujin
    Pan, Mingao
    Lu, Xinhui
    Williams, Ian Duncan
    Guo, Xugang
    Li, Yongfang
    Yan, He
    ENERGY & ENVIRONMENTAL SCIENCE, 2021, 14 (08) : 4555 - 4563
  • [42] Asymmetrical side-chain engineering of small-molecule acceptors enable high-performance nonfullerene organic solar cells
    Kan, Bin
    Chen, Xuebin
    Gao, Ke
    Zhang, Ming
    Lin, Francis
    Peng, Xiaobin
    Liu, Feng
    Jen, Alex K-Y.
    NANO ENERGY, 2020, 67 (67)
  • [43] Alkoxy Side-Chain Engineering of Quinoxaline-Based Small Molecular Acceptors Enables High-Performance Organic Solar Cells
    Cao, Haoyu
    Zhang, Wenjing
    Yang, Hang
    Li, Kui
    Fan, Hongyu
    Wu, Yue
    Cui, Chaohua
    ACS APPLIED ENERGY MATERIALS, 2023, 6 (18) : 9663 - 9671
  • [44] Y-Series-Based Polymer Acceptors for High-Performance All-Polymer Solar Cells in Binary and Non-binary Systems
    Kataria, Meenal
    Chau, Hong Diem
    Kwon, Na Yeon
    Park, Su Hong
    Cho, Min Ju
    Choi, Dong Hoon
    ACS ENERGY LETTERS, 2022,
  • [45] Quantum chemical design of near-infrared sensitive fused ring electron acceptors containing selenophene as π-bridge for high-performance organic solar cells
    Mehboob, Muhammad Yasir
    Hussain, Riaz
    Khan, Muhammad Usman
    Adnan, Muhammad
    Ehsan, Muhammad Ali
    Rehman, Abdul
    Janjua, Muhammad Ramzan Saeed Ashraf
    JOURNAL OF PHYSICAL ORGANIC CHEMISTRY, 2021, 34 (08)
  • [46] High-performance semitransparent organic solar cells enabled by pseudo-planar heterojunction structures combined with optical engineering
    Yang, Ding
    Zhang, Rui
    Shi, Yu
    Guo, Xia
    Zhang, Maojie
    JOURNAL OF MATERIALS CHEMISTRY C, 2022, 10 (39) : 14597 - 14604
  • [47] Modified optoelectronic parameters by end-group engineering of A-D-A type non-fullerene-based small symmetric acceptors constituting IBDT core for high-performance photovoltaics
    Majeed, Maham
    Waqas, Muhammad
    Mehmood, Rana Farhat
    Alatawi, Naifa S.
    Essid, Manel
    Khera, Rasheed Ahmad
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2023, 181
  • [48] Side chain engineering of quinoxaline-based small molecular nonfullerene acceptors for high-performance poly(3-hexylthiophene)-based organic solar cells
    Bo Xiao
    Qianqian Zhang
    Gongqiang Li
    Mengzhen Du
    Yanfang Geng
    Xiangnan Sun
    Ailing Tang
    Yingliang Liu
    Qiang Guo
    Erjun Zhou
    Science China(Chemistry) , 2020, (02) : 254 - 264
  • [49] Side chain engineering of quinoxaline-based small molecular nonfullerene acceptors for high-performance poly(3-hexylthiophene)-based organic solar cells
    Bo Xiao
    Qianqian Zhang
    Gongqiang Li
    Mengzhen Du
    Yanfang Geng
    Xiangnan Sun
    Ailing Tang
    Yingliang Liu
    Qiang Guo
    Erjun Zhou
    Science China Chemistry, 2020, 63 : 254 - 264
  • [50] Side chain engineering of quinoxaline-based small molecular nonfullerene acceptors for high-performance poly(3-hexylthiophene)-based organic solar cells
    Xiao, Bo
    Zhang, Qianqian
    Li, Gongqiang
    Du, Mengzhen
    Geng, Yanfang
    Sun, Xiangnan
    Tang, Ailing
    Liu, Yingliang
    Guo, Qiang
    Zhou, Erjun
    SCIENCE CHINA-CHEMISTRY, 2020, 63 (02) : 254 - 264