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将[FeFe]氢化酶模型通过共价键与非共价键连接到碳纳米管上以用于水相析氢反应。

Covalent versus noncovalent attachments of [FeFe]‑hydrogenase models onto carbon nanotubes for aqueous hydrogen evolution reaction.

机构信息

School of Materials Science and Engineering, North University of China, Taiyuan 030051, PR China.

School of Materials Science and Engineering, North University of China, Taiyuan 030051, PR China.

出版信息

J Inorg Biochem. 2024 Oct;259:112665. doi: 10.1016/j.jinorgbio.2024.112665. Epub 2024 Jul 14.

DOI:10.1016/j.jinorgbio.2024.112665
PMID:39018746
Abstract

In an effort to develop the biomimetic chemistry of [FeFe]‑hydrogenases for catalytic hydrogen evolution reaction (HER) in aqueous environment, we herein report the integrations of diiron dithiolate complexes into carbon nanotubes (CNTs) through three different strategies and compare the electrochemical HER performances of the as-resulted 2Fe2S/CNT hybrids in neutral aqueous medium. That is, three new diiron dithiolate complexes [{(μ-SCH)N(CHCHC(O)R)}Fe(CO)] (R = N-oxylphthalimide (1), NHCHpyrene (2), and NHCHPh (3)) were prepared and could be further grafted covalently to CNTs via an amide bond (this 2Fe2S/CNT hybrid is labeled as H1) as well as immobilized noncovalently to CNTs via π-π stacking interaction (H2) or via simple physisorption (H3). Meanwhile, the molecular structures of 1-3 are determined by elemental analysis and spectroscopic as well as crystallographic techniques, whereas the structures and morphologies of H1-H3 are characterized by various spectroscopies and scanning electronic microscopy. Further, the electrocatalytic HER activity trend of H1 > H2 ≈ H3 is observed in 0.1 M phosphate buffer solution (pH = 7) through different electrochemical measurements, whereas the degradation processes of H1-H3 lead to their electrocatalytic deactivation in the long-term electrolysis as proposed by post operando analysis. Thus, this work is significant to extend the potential application of carbon electrode materials engineered with diiron molecular complexes as heterogeneous HER electrocatalysts for water splitting to hydrogen.

摘要

为了开发仿生 [FeFe]-氢化酶的化学性质,以在水相环境中用于催化析氢反应(HER),我们在此通过三种不同策略将二铁二硫配合物整合到碳纳米管(CNT)中,并在中性水相介质中比较所得 2Fe2S/CNT 混合物的电化学 HER 性能。也就是说,我们制备了三种新的二铁二硫配合物[{(μ-SCH)N(CHCHC(O)R)}Fe(CO)](R = N-氧代邻苯二甲酰亚胺(1)、NHCHpyrene(2)和 NHCHPh(3)),它们可以通过酰胺键进一步共价接枝到 CNT 上(这种 2Fe2S/CNT 混合物标记为 H1),也可以通过π-π 堆积相互作用(H2)或通过简单的物理吸附(H3)非共价固定在 CNT 上。同时,通过元素分析和光谱学以及晶体学技术确定了 1-3 的分子结构,而 H1-H3 的结构和形态则通过各种光谱学和扫描电子显微镜进行了表征。此外,通过不同的电化学测量观察到在 0.1 M 磷酸盐缓冲溶液(pH = 7)中 H1>H2≈H3 的电催化 HER 活性趋势,而通过后操作分析提出的 H1-H3 的降解过程导致它们在长期电解中的电催化失活。因此,这项工作对于将工程化具有二铁分子配合物的碳电极材料作为非均相 HER 电催化剂扩展到水分解为氢气的潜在应用具有重要意义。

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