首页> 外文期刊>Advanced Functional Materials >Harnessing the Extracellular Electron Transfer Capability of Geobacter sulfurreducens for Ambient Synthesis of Stable Bifunctional Single-Atom Electrocatalyst for Water Splitting
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Harnessing the Extracellular Electron Transfer Capability of Geobacter sulfurreducens for Ambient Synthesis of Stable Bifunctional Single-Atom Electrocatalyst for Water Splitting

机译:利用Geobacter Sulcurredence的细胞外电子传递能力进行稳定双官能单原子电催化剂的环境合成水分分裂

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摘要

Single-atom metal (SA-M) catalysts with high dispersion of active metal sites allow maximum atomic utilization. Conventional synthesis of SA-M catalysts involves high-temperature treatments, leading to low yield with a random distribution of atoms. Herein, a nature-based facile method to synthesize SA-M catalysts (M = Fe, Ir, Pt, Ru, Cu, or Pd) in a single step at ambient temperature, using the extracellular electron transfer capability of Geobacter sulfurreducens (GS), is presented. Interestingly, the SA-M is coordinated to three nitrogen atoms adopting an MN3 on the surface of GS. Dry samples of SA-Ir@GS without further heat treatment show exceptionally high activity for oxygen evolution reaction when compared to benchmark IrO2 catalyst and comparable hydrogen evolution reaction activity to commercial 10 wt% Pt/C. The SA-Ir@GS exhibits the best water-splitting performance compared to other SA-M@GS, showing a low applied potential of 1.65 V to achieve 10 mA cm(-2) in 1.0 M KOH with cycling over 5 h. The density functional calculations reveal that the large adsorption energy of H2O and moderate adsorption energies of reactants and reaction intermediates for SA-Ir@GS favorably improve its activity. This synthesis method at room temperature provides a versatile platform for the preparation of SA-M catalysts for various applications by merely altering the metal precursors.
机译:具有高分子活性金属部位的单原子金属(SA-M)催化剂允许最大的原子利用。常规合成SA-M催化剂涉及高温处理,导致原子随机分布的低产率。在此,使用Geobacter Sulcurreducens(GS)的细胞外电子传递能力在环境温度下在环境温度下合成SA-M催化剂(M = Fe,IR,Pt,Ru,Cu或Pd)的基于自然的容易方法。 , 被表达。有趣的是,SA-M与在GS表面上采用MN3的三个氮原子配位。与基准IRO2催化剂和商业10wt%pt / c的相当氢演化反应活性相比,SA-IR @ GS的干燥样品显示出氧气进化反应的异常高活性。与其他SA-M @ GS相比,SA-IR @ GS表现出最佳的水分解性能,显示出1.65 V的低施加电位,以在1.0 m KOH中实现10 mA cm(-2),循环超过5小时。密度函数计算表明,SA-IR @ GS的反应物的高吸附能量和反应物的中等吸附能量有利地改善其活性。在室温下该合成方法提供了一种通过仅改变金属前体来制备各种应用的SA-M催化剂的通用平台。

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