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具有交替的 Pillarenes 和卟啉作为支链和环状节点的共轭大环聚合物纳米粒子。

Conjugated Macrocycle Polymer Nanoparticles with Alternating Pillarenes and Porphyrins as Struts and Cyclic Nodes.

机构信息

State Key Lab of Inorganic Synthesis and Preparative Chemistry, International Joint Research Laboratory of Nano-Micro Architecture Chemistry (NMAC), Department of Chemistry, Jilin University, 2699 Qianjin Street, Changchun, 130012, P. R. China.

The State Key Laboratory of Refractories and Metallurgy, School of Chemistry & Chemical Engineering, Wuhan University of Science and Technology, Wuhan, 430081, P. R. China.

出版信息

Small. 2019 Mar;15(12):e1805509. doi: 10.1002/smll.201805509. Epub 2019 Feb 8.

Abstract

Conjugated macrocycle polymers (CMPs) integrated using the macrocyclic confinement effect make imposing restrictions feasible on the growth of metal nanoparticles with confined size and high dispersion. For a proof-of-concept exploration, a novel nanoscale CMP is reported, denoted as DMP[5]-TPP-CMP, comprising two representative types of macrocyclic compounds, i.e., pillararene and porphyrin, as alternating strut/node components in the skeleton. With abundant anchoring sites, CMP implanted with Pd nanoparticles (Pd@DMP[5]-TPP-CMP, Pd@CMP for short) is successfully obtained through a simple post-treatment, exhibiting remarkable catalytic activity in Suzuki-Miyaura coupling (SMC) and nitrophenol reduction. The as-prepared Pd@CMP material shows favorable performance in expediting the process of SMC with an appreciable yield even under mild conditions, as well as in facilitating the electron transfer process from borohydride to nitrophenol through metal-hydride complex to produce aminophenol with a very short transformation time of 3 min and superior apparent kinetic rate constant k of 1.9 × 10 s , higher than most palladium supports. Significantly, this multifunctional Pd@CMP composite material not only enriches the family of CMPs, but also sheds light on the development of green catalysts with excellent stability and easy recyclability without deactivation.

摘要

通过大环约束效应集成的共轭大环聚合物(CMPs)可对金属纳米粒子的生长施加限制,实现受限尺寸和高分散性。作为概念验证探索,报告了一种新型纳米级 CMP,记为 DMP[5]-TPP-CMP,由两种代表性的大环化合物,即柱芳烃和卟啉作为骨架中的交替支柱/节点组件。CMP 具有丰富的锚固位点,通过简单的后处理成功获得了负载钯纳米粒子的 CMP(Pd@DMP[5]-TPP-CMP,简称 Pd@CMP),在铃木-宫浦偶联(SMC)和硝基苯酚还原中表现出显著的催化活性。所制备的 Pd@CMP 材料在促进 SMC 过程中表现出良好的性能,即使在温和条件下也能获得可观的产率,并且通过金属氢化物配合物促进硼氢化钠向硝基苯酚的电子转移过程,以非常短的 3 分钟转化时间生成氨基酚,表观动力学速率常数 k 为 1.9×10 s ,高于大多数钯载体。重要的是,这种多功能的 Pd@CMP 复合材料不仅丰富了 CMP 家族,而且为开发具有出色稳定性和易于回收利用的绿色催化剂提供了思路,而不会失活。

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