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Effect of Ion-Chelating Chain Lengths in Thiophene-Based Monomers on in Situ Photoelectrochemical Polymerization and Photovoltaic Performances

机译:噻吩基单体离子螯合链长对原位光电化学聚合和光伏性能的影响

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摘要

We synthesized thiophene-based monomers (bis-EDOTs) with different ethylene glycol oligomer (EGO) lengths (TBO3, TBO4, and TBO5) and investigated their polymerization characteristics during photoelectrochemical polymerization (PEP) at the surfaces of dye (D205)-sensitized TiO2 nanocrystalline particles. During the PEP reaction, monomers were expected to diffuse toward neighboring dyes through the growing polymer layers to enable continuous chain growth. We found that the less bulky monomer (TBO3) formed a more compact polymer layer with a high molecular weight. Its diffusion to the active sites through the resulting growing polymer layer was, therefore, limited. We deployed layers of the polymers (PTBO3, PTBO4, and PTBO5) in iodine-free solid-state hybrid solar cells to investigate the lithium ion chelating properties of the polymers as a function of the number of oxygen atoms present in the EGOs. PTBO4 and PTBO5 were capable of chelating lithium ions, yielding a photovoltaic performance that was 142% of the performance obtained without the polymer layers (3.0 -> 5.2%).
机译:我们合成了具有不同乙二醇低聚物(EGO)长度(TBO3,TBO4和TBO5)的噻吩基单体(bis-EDOTs),并研究了在染料(D205)敏化的TiO2表面进行光电化学聚合(PEP)期间的聚合特性。纳米晶体颗粒。在PEP反应期间,预计单体会通过正在生长的聚合物层扩散到邻近的染料中,以实现连续的链增长。我们发现,体积较小的单体(TBO3)形成了具有高分子量的更致密的聚合物层。因此,它通过所得的生长的聚合物层扩散到活性部位的作用受到限制。我们在无碘固态混合太阳能电池中部署了聚合物层(PTBO3,PTBO4和PTBO5),以研究聚合物的锂离子螯合性能与EGO中存在的氧原子数的关系。 PTBO4和PTBO5能够螯合锂离子,产生的光伏性能是没有聚合物层时获得的性能的142%(3.0-> 5.2%)。

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