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首页> 外文期刊>Catalysis science & technology >Tuning the confinement space of N-carbon shell-coated ruthenium nanoparticles: highly efficient electrocatalysts for hydrogen evolution reaction
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Tuning the confinement space of N-carbon shell-coated ruthenium nanoparticles: highly efficient electrocatalysts for hydrogen evolution reaction

机译:调优N-carbon的封闭空间shell-coated钌纳米粒子:高度高效的electrocatalysts氢进化反应

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Development of efficient and durable catalysts for the hydrogen evolution reaction (HER) in an alkaline system is vital for the transformation of renewable energy into hydrogen fuel. In this study, we report the difference in the activity of semi- and fully-encapsulated Ru catalysts based on the effect of confined space. The fully-encapsulated Ru catalyst with porous nitrogen-doped carbon (5.0% F-Ru@PNC-800) displayed outstanding HER performance, a low overpotential of only 28 mV at 10 mA cm(-2), and excellent stability. The fully-encapsulated Ru catalyst performs better than the semi-encapsulated Ru catalyst (5.0% SRu@PNC-800). Density functional theory calculation revealed that the different space sizes of carbon layers affect the charge transfer of the Ru nanoparticles and the carbon surface, leading to different activities. This work demonstrates that the control of confined space is an important strategy for designing highly efficient catalysts for energy conversion.
机译:发展高效、耐用的催化剂氢反应(她)进化碱性系统是至关重要的转变可再生能源转化为氢燃料。研究中,我们报告的差异活动半和全封装俄文的催化剂基于有限空间的影响。全封装俄文与多孔催化剂nitrogen-doped碳(5.0% f - ru@pnc - 800)显示突出她的表演,一个低马过电压的只有28号上午10厘米(2),和优秀的稳定性。催化剂性能比semi-encapsulated俄文催化剂(5.0% sru@pnc - 800)。密度泛函理论计算了不同的空间大小的碳层影响俄罗斯的电荷转移纳米颗粒和碳表面,导致不同的活动。有限空间是一个重要的控制战略设计高效催化剂能量转换。

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