Citation: Wenhao Zhang,  Haisheng Fang,  Lijuan Liu,  Huaihao Tang,  Chengyi Xiao,  Weiwei Li. Spacer isomerization engineering in double-cable conjugated polymers for optimized molecular packing and enhanced photovoltaic performance[J]. Acta Physico-Chimica Sinica, ;2026, 42(10): 100229. doi: 10.1016/j.actphy.2025.100229 shu

Spacer isomerization engineering in double-cable conjugated polymers for optimized molecular packing and enhanced photovoltaic performance

  • Corresponding author: Haisheng Fang,  Weiwei Li, 
  • Received Date: 19 October 2025
    Revised Date: 27 November 2025
    Accepted Date: 10 December 2025

  • Double-cable conjugated polymers consist of a donor backbone and acceptor side chains linked by a long, flexible spacer. While this molecular design offers a promising solution to address the thermal instability and phase separation issues inherent in conventional binary blend systems, the development of high-performance double-cable polymers faces multiple significant challenges. The synthetic complexity is considerably high, requiring multi-step functionalization to attach the spacer to the acceptor unit, which often results in low yields and difficulties in purification. Moreover, the selection of suitable acceptor materials is severely limited, as only a narrow range of acceptors possess appropriate sites for spacer attachment while maintaining their intrinsic electronic properties. This limitation greatly restricts the exploration of material combinations and the potential for performance breakthroughs. Another critical yet underexplored challenge lies in the precise engineering of the spacer itself. Although studies have investigated the effect of spacer length, the role of spacer attachment position—a subtle but crucial structural parameter—remains poorly understood. This study designed and synthesized two such polymers, ZP-1 (with the spacer attached at the para-positions of the indenone benzene ring) and ZP-2 (at the ortho-positions), through spacer isomerization engineering. Investigations reveal that shifting the substitution from the ortho-(ZP-2) to the para-position (ZP-1) optimizes favorable molecular packing and enhances film crystallinity. This structural optimization facilitates exciton dissociation and charge transport, resulting in a significant improvement in the short-circuit current density and fill factor for ZP-1-based devices. Consequently, a power conversion efficiency (PCE) of 10.43% has been achieved, outperforming ZP-2 (9.44%). Furthermore, both polymers exhibit excellent thermal stability, retaining over 80% of their initial PCE after 8,000 h of continuous thermal aging. Notably, when incorporated as a third component into the D18:BTP-eC9 binary blend, ZP-1 effectively optimizes the donor-acceptor interface, leading to a simultaneous enhancement in short-circuit current density (JSC) and fill factor (FF) and a high PCE of 19.81%. This improvement is attributed to its templating effect during film formation and the promotion of charge generation at the optimized interface. The ternary device also demonstrates significantly enhanced thermal stability compared to the binary counterpart. This work provides valuable insights for the rational design of efficient and stable single-component organic solar cells, as well as novel ternary systems, by highlighting spacer isomerization engineering—specifically, the precise control of linkage position—as a powerful strategy to tailor molecular packing, crystallinity, and ultimate device performance.
  • 加载中
    1. [1]

      G.T. Feng, J.Y. Li, Y.K. He, W.Y. Zheng, J. Wang, C. Li, Z. Tang, A. Osvet, N. Li, C.J. Brabec, et al., Joule 3(2019) 1765, https://doi.org/10.1016/j.joule.2019.05.008.

    2. [2]

      S.J. Liang, B.Q. Liu, S. Karuthedath, J. Wang, Y.K. He, W.L. Tan, H. Li, Y.H. Xu, N. Li, J.H. Hou, et al., Angew. Chem. Int. Ed. 61(2022) e202209316, https://doi.org/10.1002/anie.202209316.

    3. [3]

      B.Q. Liu, S.J. Liang, S. Karuthedath, C.Y. Xiao, J. Wang, W.L. Tan, R.N. Li, H. Li, J.H. Hou, Z. Tang, et al., J. Mater. Chem. A 11(2023) 12236, https://doi.org/10.1039/D3TA01501G.

    4. [4]

      W.B. Lai, S. Karuthedath, C.Y. Xiao, L. Meng, F. Laquaic, W.W. Li, Y.F. Li, Chin. Chem. Lett. 35(2024) 108287, https://doi.org/10.1016/j.cclet.2023.108287.

    5. [5]

      Y.K. Wang, Q.M. Chen, S.J. Liang, D.D. Xia, C.W. Zhao, C.R. Mcneill, W.W. Li, Chin. Chem. Lett. 35(2024) 109164, https://doi.org/10.1016/j.cclet.2023.109164.

    6. [6]

      Y.W. Guo, D.W. Li, Y. Gao, C.H. Li, Acta Phys. Chim. Sin. 40(2024) 2306050, https://doi.org/10.3866/PKU.WHXB202306050.

    7. [7]

      Y. Li, R.A. Pacalaj, Y.M. Luo, K.R. Ai, Y.L. Hai, S.J. Liang, K.Z. Fan, A.A. Sergeev, R.J. Ma, T.A. Dela Peña, et al., Adv. Mater. 37(2025) 2409212, https://doi.org/10.1002/adma.202409212.

    8. [8]

      F. Qi, Y.X. Li, R. Zhang, F.R. Lin, K.K. Liu, Q.P. Fan, A.K.-Y. Jen, Angew. Chem. Int. Ed. 62(2023) e202303066, https://doi.org/10.1002/anie.202303066.

    9. [9]

      J.Y. Yu, S.X. Li, M.M. Shi, H.M. Zhu, H.Z. Chen, Polymer Science & Technology 1(2025) 25, https://doi.org/10.1021/polymscitech.4c00054.

    10. [10]

      C.C. Xie, C.Y. Xiao, H.S. Niu, G.T. Feng, W.W. Li, Chin. Chem. Lett. 35(2024) 109849, https://doi.org/10.1016/j.cclet.2024.109849.

    11. [11]

      R.N. Li, S.J. Liang, Y.H. Xu, C.F. Zhang, Z. Tang, B.Q. Liu, W.W. Li, Acta Phys. Chim. Sin. 40(2024) 2307037, https://doi.org/10.3866/PKU.WHXB202307037.

    12. [12]

      C. Li, X.X. Wu, X.Y. Sui, H.B. Wu, C. Wang, G.T. Feng, Y.G. Wu, F. Liu, X.F. Liu, Z. Tang, et al., Angew. Chem. Int. Ed. 58(2019) 15532, https://doi.org/10.1002/anie.201910489.

    13. [13]

      Z.F. Yang, S.J. Liang, B.Q. Liu, J. Wang, F. Yang, Q.M. Chen, C.Y. Xiao, Z. Tang, W.W. Li, Polym. Chem. 12(2021) 6865, https://doi.org/10.1039/D1PY01188J.

    14. [14]

      S.J. Liang, C.Y. Xiao, C.C. Xie, B.Q. Liu, H.S. Fang, W.W. Li, Adv. Mater. 35(2023) 2300629, https://doi.org/10.1002/adma.202300629.

    15. [15]

      H.S. Fang, C.Y. Xiao, S.J. Liang, L.H. Liu, J.M. Huang, Y.W. Wang, A.D. Zhang, Y. Li, C.R. Mcneill, H. Cheng, et al., Angew. Chem. Int. Ed. 64(2025) e202514735, https://doi.org/10.1002/anie.202514735.

    16. [16]

      M.L. Xie, Z.X. Wei, K. Lu, Chem. Sci. 15(2024) 8265, https://doi.org/10.1039/D4SC01481B.

    17. [17]

      C. Wang, Q.M. Chen, C.F. Zhang, B.Y. Han, X.C. Liu, S.J. Liang, B. Wang, C.Y. Xiao, B. Gao, Z. Tang, et al., CCS Chem. 7(2024) 1177, https://doi.org/10.31635/ccschem.024.202404023.

    18. [18]

      Z.H. Wang, W.F. Wei, R.J. Ma, D. Luo, Z.X. Chen, J. Zhang, L.Y. Yu, G. Li, Z.H. Luo, Acta Phys. Chim. Sin. 42(2026) 100182, https://doi.org/10.1016/j.actphy.2025.100182.

    19. [19]

      G.T. Feng, W.L. Tan, S. Karuthedath, C. Li, X.C. Jiao, A.C.Y. Liu, H. Venugopal, Z. Tang, L. Ye, F. Laquai, et al., Angew. Chem. Int. Ed. 60(2021) 25499, https://doi.org/10.1002/anie.202111192.

    20. [20]

      S.J. Liang, J. Wang, Y.N. Ouyang, W.L. Tan, C.R. Mcneill, Q.M. Chen, Z. Tang, W.W. Li, Macromolecules 55(2022) 2517, https://doi.org/10.1021/acs.macromol.1c02593.

    21. [21]

      Y.L. Fan, K. Ziabrev, S.Y. Zhang, B.P. Lin, S. Barlow, S.R. Marder, ACS Omega 2(2017) 377, https://doi.org/10.1021/acsomega.6b00537.

    22. [22]

      M.E. Farahat, G.C. Welch, Colorants 2(2023) 151, https://doi.org/10.3390/colorants2010011.

    23. [23]

      W.F. Wei, C.E. Zhang, Z.X. Chen, W. Chen, G.L. Ran, G.J. Pan, W.K. Zhang, P. Müller-Buschbaum, Z.S. Bo, C.L. Yang, et al., Angew. Chem. Int. Ed. 63(2024) e202315625, https://doi.org/10.1002/anie.202315625.

    24. [24]

      P.A. Leermakers, H.T. Thomas, L.D. Weis, F.C. James, J. Am. Chem. Soc. 88(1966) 5075, https://doi.org/10.1021/ja00974a006.

    25. [25]

      A. Mahmood, A. Irfan, Comput. Theor. Chem. 1179(2020) 112797, https://doi.org/10.1016/j.comptc.2020.112797.

    26. [26]

      Y.F. Zhu, F.W. Zhao, W. Wang, Y.W. Li, S.M. Zhang, Y.Z. Lin, Adv. Energy Sustainability Res. 3(2022) 2100184, https://doi.org/10.1002/aesr.202100184.

    27. [27]

      M. Privado, P. De La Cruz, P. Malhotra, G.D. Sharma, F. Langa, Sol. Energy 221(2021) 393, https://doi.org/10.1016/j.solener.2021.04.049.

    28. [28]

      X. Chang, M. Balooch Qarai, F.C. Spano, J. Chem. Phys. 155(2021) 034905, https://doi.org/10.1063/5.0054877.

    29. [29]

      J.Q. Du, K. Hu, J.Y. Zhang, L. Meng, J.L. Yue, I. Angunawela, H.P. Yan, S.C. Qin, X.L. Kong, Z.J. Zhang, et al., Nat. Commun. 12(2021) 5264, https://doi.org/10.1038/s41467-021-25638-9.

    30. [30]

      G.T. Feng, J.Y. Li, F.J.M. Colberts, M.M. Li, J.Q. Zhang, F. Yang, Y.Z. Jin, F.L. Zhang, R.a.J. Janssen, C. Li, et al., J. Am. Chem. Soc. 139(2017) 18647, https://doi.org/10.1021/jacs.7b10499.

    31. [31]

      G. Kupgan, X.-K. Chen, J.-L. Brédas, ACS Appl. Energy Mater. 4(2021) 4002, https://doi.org/10.1021/acsaem.1c00375.

    32. [32]

      H. FrÖhlich, Nature 164(1949) 377, https://doi.org/10.1038/164377a0.

    33. [33]

      P.N. Murgatroyd, J. Phys. D: Appl. Phys. 3(1970) 151, https://doi.org/10.1088/0022-3727/3/2/308.

    34. [34]

      D.H. Li, N. Deng, Y.W. Fu, C.H. Guo, B.J. Zhou, L. Wang, J. Zhou, D. Liu, W. Li, K. Wang, et al., Adv. Mater. 35(2023) 2208211, https://doi.org/10.1002/adma.202208211.

    35. [35]

      A.L. Patterson, Phys. Rev. 56(1939) 978, https://doi.org/10.1103/PhysRev.56.978.

    36. [36]

      M.L. Li, M. Liu, F. Qi, F.R. Lin, A.K.Y. Jen, Chem. Rev. 124(2024) 2138, https://doi.org/10.1021/acs.chemrev.3c00396.

    37. [37]

      N.K. Elumalai, A. Uddin, Energy Environ. Sci. 9(2016) 391, https://doi.org/10.1039/C5EE02871J.

    38. [38]

      Y.F. Liu, J.Y. Zhang, G.Q. Zhou, F. Liu, X.Z. Zhu, F.L. Zhang, J. Phys. Chem. C 124(2020) 15132, https://doi.org/10.1021/acs.jpcc.0c05654.

    39. [39]

      D.H. Yun, S. Xuyao, S.-Y. Lee, V.V. Sharma, H. Li, S.-J. Park, Y.-H. Kim, G.-H. Kim, ACS Appl. Energy Mater. 7(2024) 1243, https://doi.org/10.1021/acsaem.3c02876.

  • 加载中
    1. [1]

      Zhenhuan WangWeifei WeiRuijie MaDou LuoZhanxiang ChenJun ZhangLiyang YuGang LiZhenghui Luo . 苯并[a]苯嗪受体的核心氰基化实现高效(19.04%)绿色溶剂加工的二元有机太阳能电池. Acta Physico-Chimica Sinica, 2026, 42(2): 100182-0. doi: 10.1016/j.actphy.2025.100182

    2. [2]

      Yikai WangXiaolin JiangHaoming SongNan WeiYifan WangXinjun XuCuihong LiHao LuYahui LiuZhishan Bo . Thickness-Insensitive, Cyano-Modified Perylene Diimide Derivative as a Cathode Interlayer Material for High-Efficiency Organic Solar Cells. Acta Physico-Chimica Sinica, 2025, 41(3): 100027-0. doi: 10.3866/PKU.WHXB202406007

    3. [3]

      Yawen GuoDawei LiYang GaoCuihong Li . Recent Progress on Stability of Organic Solar Cells Based on Non-Fullerene Acceptors. Acta Physico-Chimica Sinica, 2024, 40(6): 2306050-0. doi: 10.3866/PKU.WHXB202306050

    4. [4]

      Chaowei Zhao Ting Li Dongdong Xia Qian Xie Jie Fang Yuefeng Zhang Yu Xie Alex K. -Y. Jen . Solvatochromic Ti-oxo clusters as cathode interlayer for efficient organic solar cells. Acta Physico-Chimica Sinica, 2026, 42(10): 100280-. doi: 10.1016/j.actphy.2026.100280

    5. [5]

      Xiaotian Hu Binhuan Qiu Jinglin Le Runrui Dai Xiaolan Lü Yu Hu . Digital Design, Computational Modeling, Fabrication and Characterization of Organic Solar Cells Based on Green Energy Principles. University Chemistry, 2026, 41(1): 298-309. doi: 10.12461/PKU.DXHX202506034

    6. [6]

      Xing YanYetai ChengYixun ShuLuyao YangWeidong WangXinlu BaiYa-Nan ChenHao LuZhishan BoYahui Liu . Highly efficient and stable organic solar cells based on dimeric non-fused ring acceptors as the third component. Acta Physico-Chimica Sinica, 2026, 42(7): 100228-0. doi: 10.1016/j.actphy.2025.100228

    7. [7]

      Wenxu Liu Feng Han Yuhan Liu Huayi Liu Wentian Han Xiaobin Gu Xin Zhang Yao Liu . 基于简单非稠环电子受体的有机太阳能电池制备与表征——推荐一个综合化学实验. University Chemistry, 2026, 41(9): 324-336. doi: 10.12461/PKU.DXHX202509033

    8. [8]

      Ruonan LiShijie LiangYunhua XuCuifen ZhangZheng TangBaiqiao LiuWeiwei Li . Chlorine-Substituted Double-Cable Conjugated Polymers with Near-Infrared Absorption for Low Energy Loss Single-Component Organic Solar Cells. Acta Physico-Chimica Sinica, 2024, 40(8): 2307037-0. doi: 10.3866/PKU.WHXB202307037

    9. [9]

      Shuixing Dai Jilei Jiang Yuxiao Wang Jinqi Hu Minghua Huang . Application of Knoevenagel Reaction in Organic Chemistry Teaching. University Chemistry, 2025, 40(5): 334-341. doi: 10.12461/PKU.DXHX202405208

    10. [10]

      Binbin LiuYang ChenTianci JiaChen ChenZhanghao WuYuhui LiuYuhang ZhaiTianshu MaChanglei Wang . Hydroxyl-functionalized molecular engineering mitigates 2D phase barriers for efficient wide-bandgap and all-perovskite tandem solar cells. Acta Physico-Chimica Sinica, 2026, 42(1): 100128-0. doi: 10.1016/j.actphy.2025.100128

    11. [11]

      Yixuan Gao Lingxing Zan Wenlin Zhang Qingbo Wei . Comprehensive Innovation Experiment: Preparation and Characterization of Carbon-based Perovskite Solar Cells. University Chemistry, 2024, 39(4): 178-183. doi: 10.3866/PKU.DXHX202311091

    12. [12]

      Shantao ZhangTianAo HouYandong WangZhimin FangYu WuHaolin WangTao ChenShuang ChenWenhua ZhangShengzhong (Frank) LiuShangfeng Yangπ-Conjugation-extended dinaphthocarbazole phosphonic acid as a hole-selective layer for inverted perovskite solar cells. Acta Physico-Chimica Sinica, 2026, 42(3): 100194-0. doi: 10.1016/j.actphy.2025.100194

    13. [13]

      Longxiang LUOXiaoguo CAOYannan QIAN . Interface engineering with NH4PF6 for CsPbI2Br quantum dots for enhancing the performance of carbon-based all-inorganic perovskite solar cells. Chinese Journal of Inorganic Chemistry, 2026, 42(2): 227-236. doi: 10.11862/CJIC.20250279

    14. [14]

      Yuxia Luo Xiaoyu Xie Fangfang Chen . 药物递送魔法师——分子印迹聚合物. University Chemistry, 2025, 40(8): 202-210. doi: 10.12461/PKU.DXHX202409129

    15. [15]

      Bao Jia Yunzhe Ke Shiyue Sun Dongxue Yu Ying Liu Shuaishuai Ding . Innovative Experimental Teaching for the Preparation and Modification of Conductive Organic Polymer Thin Films in Undergraduate Courses. University Chemistry, 2024, 39(10): 271-282. doi: 10.12461/PKU.DXHX202404121

    16. [16]

      Zhao Gao Jianxiang Sun Bin Mu Yi Yan Wei Tian . Exploration of Supramolecular Polymer “Chameleons” in Innovative Chemistry Experiments. University Chemistry, 2026, 41(4): 349-355. doi: 10.12461/PKU.DXHX202504044

    17. [17]

      Xie Yao Li Shuangjun Chen Chao Fan Siyu Tao Ying Zhang Qitao . Ionic polarization engineering of polymeric carbon nitride toward efficient H2O2 photosynthesis. Acta Physico-Chimica Sinica, 2026, 42(5): 100183-. doi: 10.1016/j.actphy.2025.100183

    18. [18]

      Chuan′an DINGWeibo YANShaoying WANGHao XIN . Preparation of wide-band gap copper indium gallium sulfide solar cells by solution method. Chinese Journal of Inorganic Chemistry, 2025, 41(9): 1755-1764. doi: 10.11862/CJIC.20250198

    19. [19]

      Gengjia Chen Junjie Ou . Application of the van Deemter Equation in Instrumental Analysis Teaching: A Case of Organic Polymer Monolithic Columns. University Chemistry, 2025, 40(11): 362-368. doi: 10.12461/PKU.DXHX202502003

    20. [20]

      Heng Zhang Ying Ma Shiling Yuan . Machine Learning-based Prediction of Antifouling Performance in Polymer Materials: An Integrated Molecular Simulation Experiment. University Chemistry, 2026, 41(1): 346-353. doi: 10.12461/PKU.DXHX202506015

Metrics
  • PDF Downloads(0)
  • Abstract views(12)
  • HTML views(0)

通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索
Address:Zhongguancun North First Street 2,100190 Beijing, PR China Tel: +86-010-82449177-888
Powered By info@rhhz.net

/

DownLoad:  Full-Size Img  PowerPoint
Return