Mechanism of Primary Charge Photogeneration in Polyfluorene Copolymer/Fullerene Blends and Influence of the Donor/Acceptor Lowest Unoccupied Molecular Orbital Level Offset

被引:23
作者
Zhang, Wei [1 ,2 ]
Wang, Yu-Wei [1 ]
Hu, Rong [1 ]
Fu, Li-Min [1 ]
Ai, Xi-Cheng [1 ]
Zhang, Jian-Ping [1 ,2 ]
Hou, Jian-Hui [3 ]
机构
[1] Renmin Univ China, Dept Chem, Beijing 100872, Peoples R China
[2] Harbin Inst Technol, Dept Phys, Ctr Condensed Matter Sci & Technol, Harbin 150001, Peoples R China
[3] Chinese Acad Sci, Inst Chem, Beijing Natl Lab Mol Sci, State Key Lab Polymer Phys & Chem, Beijing 100190, Peoples R China
关键词
POLYMER SOLAR-CELLS; OPEN-CIRCUIT VOLTAGE; ENERGY-TRANSFER PROCESSES; EXCITON DISSOCIATION; PHOTOVOLTAIC CELLS; TRANSFER STATES; ELECTRON-DONOR; TANDEM POLYMER; EFFICIENCY; FILMS;
D O I
10.1021/jp308442t
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Primary charge photogeneration dynamics in the films of polyfluorene copolymer PFDTBT (poly([2,7-(9,9-bis(3,7-dimethyloctyl)fluorene)]-alt-[5,5-(4,7-di-2'-thienyl-2,1,3-benzothiadiazole)])) blended with fullerene derivatives, with variation of fullerene/polymer lowest unoccupied molecular orbital level offsets (-Delta E-L) over 110-320 meV, are investigated by using near-infrared transient absorption spectroscopy under low excitation photon fluence. Time-resolved spectra combined with spectroelectrochemical characterization enable us to verify the signature spectra of the S-1 exciton of the polymer, the interfacial charge transfer (ICT) state, and the charge-separated (CS) state, with which the species-associated kinetics are derived via decomposition of the time-resolved data matrices. For a neat film the interchain CT state is generated irrespective of the excitation photon energy; however, the CS state forms merely upon the above-gap excitation with a quantum yield of 15%, which subsequently recombines into the S-1 exciton within 1 ps. For blend films a dual-path scheme of free charge formation is revealed: The S-1 exciton transforms in a parallel manner into the ICT and CS states with branching ratios Phi(ICT):Phi(CS) approximate to 3:1 and time constants of 180-800 fs depending on -Delta E-L. When -Delta E-L is relatively large, i.e., 0.29 or 0.32 eV for PFDTBT blended with PC61BOE (4-(pentyl-[6,6]-C61)benzene octyl ether) or PC61BM (phenyl-[6,6]-C61-butyric acid methyl ester), respectively, the ICT state further dissociates into the CS state with a time constant of similar to 300 ps and an efficiency exceeding 50%. This channel, however, closes when -Delta E-L < 0.20 eV, and the ICT state fully recombines back to the ground state within a few hundred picoseconds. The large ICT-to-CS branching ratio and high dissociation efficiency of the ICT state consolidate the crucial role of this state in photocurrent generation. On the other hand, the process of exciton-to-CS transition is found to obey Marcus's nonadiabatic electron transfer mechanism with a coupling strength V = 55 +/- 7 cm(-1) and a reorganization energy lambda = 0.33 +/- 0.02 eV, whereas the dissociation of the ICT state can be accounted for by Braun-Onsager's model of e(-)-h(+) dissociation. The dynamic properties of the ICT state and roles of -Delta E-L in yielding charge species (ICT and CS) revealed in the present work may shed light on the development of new photovoltaic materials.
引用
收藏
页码:735 / 749
页数:15
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