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Mechanistic Studies of Hydrogen Evolution Reaction on Donor-Acceptor Conjugated Polymer Photocatalysts

机译:供体占缀合聚合物光催化剂氢进化反应的机械研究

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摘要

The application of donor-acceptor (D-A) conjugated polymer catalysts for hydrogen evolution reaction (HER) has shown great promise because of the tunability of such catalysts to have desired properties. Herein, we synthesized two polymer catalysts: poly[4,4′-(9-(4-aminophenyl)-9H-carbazole-3,6-diamine-alt-5-oxido-5-phenylbenzo[b]phosphindole-3,7-diyl)dibenzaldehyde] (PCzPO) and poly[N1,N1-bis(4-amino-2-fluorophenyl)-2-fluorobenzene-1,4-diamine-alt-5-oxido-5-phenylbenzo[b]phosphindole-3,7-diyl)dibenzaldehyde] (PNoFPO). The UV-vis absorption spectra showed that the less planar structure and the presence of electronegative fluorine atoms in the donor group of PNoFPO led to a higher optical gap compared to PCzPO, leading to almost five times faster HER rate using PCzPO compared to PNoFPO. However, density functional theory (DFT) calculations show that the frontier orbitals and the highest occupied molecular orbitals – lowest unoccupied molecular orbitals (HOMO-LUMO) gaps of PCzPO and PNoFPO D-A moiety models are very similar, such that, during light absorption, electrons move from donor to acceptor group where proton binding is preferred to happen thereafter. For both PCzPO and PNoFPO D-A moieties, H2 formation through an intramolecular reaction with a barrier of 0.6–0.7 eV, likely occurs at the acceptor group atoms where protons bind through electrostatic interaction. The intermolecular reaction has nearly zero activation energy but is expected to occur only when the repulsion is low between separate polymers chains. Finally, experimental and DFT results reveal the importance of extended configurations of D-A polymers on HER rate.
机译:供体 - 受体(D-A)缀合的聚合物催化剂用于氢进化反应(她)的缀合性聚合物催化剂由于这种催化剂的可调节性具有所需的性质而显着的希望。在此,我们合成了两种聚合物催化剂:聚[4,4' - (9-(4-氨基苯基)-9H-咔唑-3,6-二胺 - ALT-5-氧基-5-苯基苯并[B]磷吲哚-3, 7-二苯甲醛](PCZPO)和聚[N1,N1-BIS(4-氨基-2-氟苯基)-2-氟苯-1,4-二胺 - ALT-5-氧基-5-苯基苯并[B]磷吲哚-3,7-二基)二苯甲醛](pnofpo)。 UV-Vis吸收光谱表明,与PCZPO相比,PNOFPO的供体组中的平面结构和电信氟原子的存在导致了更高的光学间隙,与PNOFPO相比,使用PCZPO的速率提高了速度较快的五倍。然而,密度函数理论(DFT)计算表明,前轨道和最高占用的分子轨道 - 最低未占用的分子轨道(Homo-Lumo)间隙的PCZPO和PNOFPO DA部分模型非常相似,使得在光吸收时电子从供体转移到受体组,其中优选质子结合此后优选发生。对于PCZPO和PNOFPO D-A部分,H2通过与0.6-0.7eV的屏障的分子内反应形成,可能发生在受体基质原子中,其中质子通过静电相互作用结合。分子间反应具有几乎零激活能量,但预期仅在单独的聚合物链之间排斥时发生。最后,实验和DFT结果揭示了D-A聚合物的扩展配置对她的速率的重要性。

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