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含有1-甲基-2-苯基咪唑部分作为永久偶极子生成单元的共聚物:合成、光谱、电化学及光伏性质

Copolymers Containing 1-Methyl-2-phenyl-imidazole Moieties as Permanent Dipole Generating Units: Synthesis, Spectroscopic, Electrochemical, and Photovoltaic Properties.

作者信息

Kulszewicz-Bajer Irena, Nowakowski Robert, Zagórska Małgorzata, Maranda-Niedbała Agnieszka, Mech Wojciech, Wróbel Zbigniew, Drapała Jakub, Wielgus Ireneusz, Korona Krzysztof P

机构信息

Faculty of Chemistry, Warsaw University of Technology, Noakowskiego 3, 00-664 Warsaw, Poland.

Institute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224 Warsaw, Poland.

出版信息

Molecules. 2022 Jan 28;27(3):915. doi: 10.3390/molecules27030915.

Abstract

New donor-acceptor conjugated alternating or random copolymers containing 1-methyl-2-phenylbenzimidazole and benzothiadiazole (), diketopyrrolopyrrole (), or both acceptors () are reported. The specific feature of these copolymers is the presence of a permanent dipole-bearing moiety (1-methyl-2-phenyl imidazole (MPI)) fused with the 1,4-phenylene ring of the polymer main chain. For comparative reasons, polymers of the same main chain but deprived of the MPI group were prepared, namely, with diketopyrrolopyrrole and with both acceptors. The presence of the permanent dipole results in an increase of the optical band gap from 1.51 eV in to 1.57 eV in and from 1.49 eV in to 1.55 eV in It also has a measurable effect on the ionization potential (IP) and electrochemical band gap (E), leading to their decrease from 5.00 and 1.83 eV in to 4.92 and 1.79 eV in as well as from 5.09 and 1.87 eV in to 4.94 and 1.81 eV in Moreover, the presence of permanent dipole lowers the exciton binding energy (E) from 0.32 eV in to 0.22 eV in and from 0.38 eV in to 0.26 eV in These dipole-induced changes in the polymer properties should be beneficial for photovoltaic applications. Bulk heterojunction solar cells fabricated from these polymers (with PCBM acceptor) show low series resistance (r), indicating good electrical transport properties. The measured power conversion efficiency (PCE) of 0.54% is limited by the unfavorable morphology of the active layer.

摘要

据报道,新型供体 - 受体共轭交替或无规共聚物包含1 - 甲基 - 2 - 苯基苯并咪唑和苯并噻二唑()、二酮吡咯并吡咯()或两者作为受体()。这些共聚物的独特之处在于存在与聚合物主链的1,4 - 亚苯基环稠合的带有永久偶极的部分(1 - 甲基 - 2 - 苯基咪唑(MPI))。出于比较目的,制备了具有相同主链但不含MPI基团的聚合物,即含二酮吡咯并吡咯的聚合物以及含两种受体的聚合物。永久偶极的存在导致光学带隙从聚合物的1.51 eV增加到聚合物的1.57 eV,以及从聚合物的1.49 eV增加到聚合物的1.55 eV。它对电离势(IP)和电化学带隙(E)也有可测量的影响,导致它们从聚合物中的5.00和1.83 eV降低到聚合物中的4.92和1.79 eV,以及从聚合物中的5.09和1.87 eV降低到聚合物中的4.94和1.81 eV。此外,永久偶极的存在将激子结合能(E)从聚合物中的0.32 eV降低到聚合物中的0.22 eV,以及从聚合物中的0.38 eV降低到聚合物中的0.26 eV。这些由偶极引起的聚合物性质变化对光伏应用应该是有益的。由这些聚合物(与PCBM受体)制备的本体异质结太阳能电池显示出低串联电阻(r),表明具有良好的电传输性能。测得的0.54%的功率转换效率(PCE)受到活性层不利形态的限制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/92f3/8840365/9755c0527cc5/molecules-27-00915-sch001.jpg

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