Sequence-Controlled Electron Transport in Conjugated Copolymers

被引:4
|
作者
Maier, J. Charlie [1 ]
Jackson, Nicholas E. [2 ]
机构
[1] Univ Illinois, Dept Phys, Urbana, IL 61801 USA
[2] Univ Illinois, Dept Chem, Urbana, IL 61801 USA
关键词
INTRACHAIN CHARGE-TRANSPORT; DONOR-ACCEPTOR POLYMERS; SEMI-RANDOM; SOLAR-CELLS; POLYMERIZATION; BENZOTHIADIAZOLE; BENZODITHIOPHENE; TERPOLYMERS; DERIVATIVES; MOLECULES;
D O I
10.1021/acs.macromol.1c01194
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Chemical sequence control is a powerful means for modifying the physical properties of conjugated polymers, with alternating, gradient, block, and random copolymer motifs being commonly employed. Here, we combine a Markov process treatment of copolymer sequence correlations with electron transport models spanning three regimes to understand how the conjugated copolymer sequence influences electronic mobility. Within the delocalized polaron hopping and electronically coherent transport regimes, electronic mobility is a nonmonotonic function of the sequence correlation parameter A, which smoothly interpolates between alternating (lambda = -1), ideally random (lambda = 0), and blocky copolymer (0 < lambda < 1) architectures. Alternating and blocky copolymer sequences exhibit higher mobilities than random sequences, though within the localized polaron hopping regime, mobility displays only a weak dependence on sequence. Our theoretical approach also facilitates a controlled analysis of how sequence defects in alternating copolymers impact electronic mobility, demonstrating that one sequence defect per similar to 100 repeat units can be sufficient to negate the ostensible benefits of an alternating copolymer architecture for increasing electron mobilities.
引用
收藏
页码:7060 / 7069
页数:10
相关论文
共 50 条
  • [1] Sequence-controlled π-conjugated copolymers: Synthetic and mechanistic studies
    McNeil, Anne J.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2011, 241
  • [2] Toward the synthesis of sequence-controlled vinyl copolymers
    Tong, Xinming
    Guo, Bao-hua
    Huang, Yanbin
    CHEMICAL COMMUNICATIONS, 2011, 47 (05) : 1455 - 1457
  • [3] Hydrosilylation for the synthesis of sequence-controlled periodic copolymers
    Luh, Tien-Yau
    Cheng, Yen-Ju
    JOURNAL OF THE CHINESE CHEMICAL SOCIETY, 2022, 69 (08) : 1223 - 1232
  • [4] The Rationale Behind Sequence-Controlled Maleimide Copolymers
    Klumperman, Bert
    SEQUENCE-CONTROLLED POLYMERS: SYNTHESIS, SELF-ASSEMBLY, AND PROPERTIES, 2014, 1170 : 213 - 221
  • [5] Photoinduced Synthesis of α,ω-Telechelic Sequence-Controlled Multiblock Copolymers
    Anastasaki, Athina
    Nikolaou, Vasiliki
    McCaul, Nicholas William
    Simula, Alexandre
    Godfrey, Jamie
    Waldron, Christopher
    Wilson, Paul
    Kempe, Kristian
    Haddleton, David M.
    MACROMOLECULES, 2015, 48 (05) : 1404 - 1411
  • [6] Sequence-Controlled α-Methylstyrene/Styrene Copolymers: Syntheses and Sequence Distribution Resolution
    Wolf, Arnaud
    Desport, Jessica S.
    Dieden, Reiner
    Frache, Gilles
    Weydert, Marc
    Poorters, Laurent
    Schmidt, Daniel F.
    Verge, Pierre
    MACROMOLECULES, 2020, 53 (18) : 8032 - 8040
  • [7] Ring-opening polymerizations for the synthesis of sequence-controlled copolymers
    Cho, I
    MACROMOLECULAR SYMPOSIA, 2003, 195 : 89 - 94
  • [8] Predicting self-assembly of sequence-controlled copolymers with stochastic sequence variation
    Curtis, Kaleigh A.
    Statt, Antonia
    Reinhart, Wesley F.
    SOFT MATTER, 2025, 21 (11) : 2143 - 2151
  • [9] Evolution of Microphase Separation with Variations of Segments of Sequence-Controlled Multiblock Copolymers
    Zhang, Junliang
    Deubler, Robert
    Hartlieb, Matthias
    Martin, Liam
    Tanaka, Joji
    Patyukova, Elena
    Topham, Paul D.
    Schacher, Felix H.
    Perrier, Sebastien
    MACROMOLECULES, 2017, 50 (18) : 7380 - 7387
  • [10] Sequence-Controlled Multiblock Copolymers via RAFT Polymerization: Modeling and Simulations
    Zetterlund, Per B.
    Gody, Guillaume
    Perrier, Sebastien
    MACROMOLECULAR THEORY AND SIMULATIONS, 2014, 23 (05) : 331 - 339