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用于磷交联聚噻吩的具有磷调控光催化析氢性能的施蒂勒型P-C偶联缩聚反应

Stille type P-C coupling polycondensation towards phosphorus-crosslinked polythiophenes with P-regulated photocatalytic hydrogen evolution.

作者信息

Zhang Zhikai, Zhang Boyang, Han Xue, Chen Hongyi, Xue Cece, Peng Min, Ma Guijun, Ren Yi

机构信息

School of Physical Science and Technology, ShanghaiTech University Shanghai 201210 China

出版信息

Chem Sci. 2023 Feb 14;14(11):2990-2998. doi: 10.1039/d2sc06702a. eCollection 2023 Mar 15.

DOI:10.1039/d2sc06702a
PMID:36937600
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10016342/
Abstract

Recently, exploring new type polymerization protocols has been a major driving force in advancing organic polymers into highly functional materials. Herein we report a new polycondensation protocol to implant the phosphorus (P) atom in the main backbone of crosslinked polythiophenes. The polycondensation harnesses a Stille phosphorus-carbon (P-C) coupling reaction between phosphorus halides and aryl stannanes that has not been reported previously. Mechanistic studies uncovered that the P-electrophile makes the reactivity of a catalytic Pd-center highly sensitive towards the chemical structures of aryl stannanes, which is distinct from the typical Stille carbon-carbon coupling reaction. The efficient P-C polycondensation afforded a series of P-crosslinked polythiophenes (PC-PTs). Leveraging on the direct P-crosslinking polymerization, solid-state P NMR studies revealed highly uniform crosslinking environments. Efficient post-polymerization P-chemistry was also applied to the PC-PTs, which readily yielded the polymers with various P-environments. As a proof of concept, new PC-PTs were applied as the photocatalysts for H evolution under visible light irradiation. PC-PTs with an ionic P(Me)-center exhibit a H evolution rate up to 2050 μmol h g, which is much higher than those of PC-PTs with a P(O)-center (900 μmol h g) and P(iii)-center (155 μmol h g). For the first time, the studies reveal that regulating P-center environments can be an effective strategy for fine tuning the photocatalytic H evolution performance of organic polymers.

摘要

最近,探索新型聚合方案一直是推动有机聚合物发展成为高功能材料的主要驱动力。在此,我们报告了一种新的缩聚方案,用于将磷(P)原子引入交联聚噻吩的主链中。该缩聚反应利用了卤化磷与芳基锡烷之间的Stille磷-碳(P-C)偶联反应,这是此前尚未报道过的。机理研究发现,亲电磷使催化钯中心的反应活性对芳基锡烷的化学结构高度敏感,这与典型的Stille碳-碳偶联反应不同。高效的P-C缩聚反应得到了一系列P交联聚噻吩(PC-PTs)。基于直接的P交联聚合,固态磷核磁共振研究揭示了高度均匀的交联环境。高效的聚合后磷化学也应用于PC-PTs,从而很容易得到具有各种磷环境的聚合物。作为概念验证,新型PC-PTs被用作可见光照射下析氢的光催化剂。具有离子型P(Me)中心的PC-PTs析氢速率高达2050 μmol h g,远高于具有P(O)中心(900 μmol h g)和P(iii)中心(155 μmol h g)的PC-PTs。这些研究首次表明,调节磷中心环境可以成为微调有机聚合物光催化析氢性能的有效策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b5f4/10016342/fc030e606660/d2sc06702a-f4.jpg
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