pH-modulated Activation of Pendant Amine Leading to Rapid Electrocatalytic H2 Production by a Molecular Copper Complex in Acidic Water

IF 6.4 1区 化学 Q1 CHEMISTRY, INORGANIC & NUCLEAR
Naseer Ahmed Shah, Thinles Dolkar, Suhana Karim, Jumana Ishrat, Chandan Das, Srewashi Das, ARITRO SINHA ROY, Kalishankar Bhattacharyya, Arnab Dutta
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Abstract

A modular multidentate ligand scaffold is crafted by strategically incorporating three pyridines (NPy) and three imines along with a pendant tertiary amine (Ntert) around a mononuclear copper centre. This unique design leads to the generation of a molecular copper complex C1 with a dynamically adaptive coordination environment, where the multiple proton and electron movements can be accommodated. Complex C1 demonstrates rapid hydrogen generation from water across a wide pH range (pH 1.0–7.0), with a markedly enhanced catalytic performance under acidic conditions. At pH 1.0, C1 achieves high turnover numbers (TONs) of 1014 ± 10 within 1 hour and 2980 ± 20 over 3 hours. In operando spectroelectrochemical investigations, in conjunction with density functional theory (DFT) calculations, reveal a unique pH-dependent structural flexibility of the ligand scaffold around the Cu centre in C1. In near-neutral to slightly acidic media (pH 3.0-7.0), the protonation of an NPy group (pKa1~ 11.6) following its cleavage from Cu linkage provides the primary protonation site, which is essential for Cu-complex driven H2 production catalysis. The Ntert group (pKa2~ 2.8), positioned in the outer coordination sphere of Cu, gets involved in highly acidic conditions (pH < 3.0). Here, this pendant amine acts as the initial protonation site and alters the course of the catalysis by unleashing an energetically downhill reaction pathway consisting of spontaneous electron and proton transfer steps. This pH-specific participation of the pendant Ntert functionality is key for the escalated HER activity by C1 under strongly acidic conditions, which is rarely observed for Cu-based molecular complexes. Complementary surface and solution-phase analyses confirm the molecular integrity of the complex, supporting a homogeneous catalytic mechanism operative throughout the hydrogen evolution process.
悬垂胺的ph调节活化导致酸性水中铜分子络合物快速电催化制氢
模块化的多齿配体支架是通过在单核铜中心周围战略性地结合三个吡啶(NPy)和三个亚胺以及一个垂坠的叔胺(intert)来制作的。这种独特的设计导致产生具有动态自适应配位环境的分子铜配合物C1,其中可以容纳多个质子和电子的运动。配合物C1在很宽的pH范围内(pH 1.0-7.0)从水中快速产氢,在酸性条件下具有显著增强的催化性能。在pH 1.0时,C1在1小时内达到1014 ± 10的高周转量(吨),在3小时内达到2980 ± 20。在operando光谱电化学研究中,结合密度泛函理论(DFT)计算,揭示了C1中Cu中心周围配体支架的独特的ph依赖性结构灵活性。在接近中性到微酸性的介质中(pH 3.0-7.0), NPy基团(pKa1~ 11.6)从Cu键裂解后的质子化提供了初级质子化位点,这对于Cu络合物驱动的H2生成催化是必不可少的。中间基(pKa2~ 2.8)位于Cu的外配位球,在高酸性条件下(pH <;3.0)。在这里,这个悬垂胺作为初始质子化位点,通过释放由自发电子和质子转移步骤组成的能量下降反应途径来改变催化过程。在强酸性条件下,悬垂的intert功能的ph特异性参与是C1提高HER活性的关键,这在cu基分子复合物中很少观察到。互补的表面和溶液相分析证实了络合物的分子完整性,支持在整个析氢过程中均相催化机制。
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来源期刊
Inorganic Chemistry Frontiers
Inorganic Chemistry Frontiers CHEMISTRY, INORGANIC & NUCLEAR-
CiteScore
10.40
自引率
7.10%
发文量
587
审稿时长
1.2 months
期刊介绍: The international, high quality journal for interdisciplinary research between inorganic chemistry and related subjects
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