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首页> 外文期刊>ChemElectroChem >Nitrogen-Doped Graphene with a Three-Dimensional Architecture Assisted by Carbon Nitride Tetrapods as an Efficient Metal-Free Electrocatalyst for Hydrogen Evolution
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Nitrogen-Doped Graphene with a Three-Dimensional Architecture Assisted by Carbon Nitride Tetrapods as an Efficient Metal-Free Electrocatalyst for Hydrogen Evolution

机译:具有三维结构的氮掺杂石墨烯,由氮化碳四叠层辅助作为氢气进化的有效的无金属电催化剂

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Current polymer membrane-based electrolyzers use Pt as a cathode catalyst for efficient reduction of water. The high cost of Pt-based catalysts forces researchers to develop alternative electrocatalysts. Here, a simple strategy has been proposed to synthesize a metal-free electrocatalyst for the hydrogen evolution reaction (HER) by high-temperature annealing of graphene oxide-coated melamine foam. The prepared catalyst possesses both structural and functional advantages with its three-dimensional (3D) interconnected arms of carbon nitride (CNx) backbone wrapped with nitrogen-doped graphene (N-RGO) sheets (CNx@N-RGO). CNx@N-RGO faces only a 193 mV overpotential to achieve a current density of 10mAcm(-2), which is far superior to the previously reported Pt-free systems. Along with the high exchange current density 34.7 x 10(-6)A cm(-2) and low Tafel slope of 54 mV dec(-1), CNx@N-RGO follows a Volmer-Heyrovsky mechanism for the HER. DFT calculations show that the synergy between CNx and N-RGO facilitates good electrical coupling between the two moieties and provides optimal binding to H+ ions on the catalyst that, in turn, results in efficient reduction of hydrogen ions.
机译:基于聚合物膜的电解器使用PT作为阴极催化剂,以有效减少水。 PT基催化剂的高成本迫使研究人员开发替代电催化剂。这里,已经提出了一种简单的策略来通过石墨烯氧化物涂覆的三聚氰胺泡沫的高温退火来合成用于氢进化反应(她)的无金属电催化剂。制备的催化剂具有与用氮气掺杂石墨烯(N-RGO)片材包裹的三维(3D)互连臂(CNX @ N-Rgo)的三维(3D)互连臂具有结构和功能的优点。 CNX @ N-RGO仅面对193 MV过电位,以实现10macm(-2)的电流密度,远远优于先前报道的PT系统。除了高交换电流密度34.7×10(-6)和54 mV DEC(-1)的厘米(-2)和低TAFEL斜率,CNX @ N-RGO遵循她的Volmer-Heyrovsky机制。 DFT计算表明,CNX和N-RGO之间的协同作用促进了两部分部分之间的良好电耦合,并在催化剂上提供最佳结合与H +离子,又导致氢离子的有效减少。

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