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首页> 外文期刊>Chemistry - A European Journal >Highly Crystalline and Conductive Nitrogen-Doped Mesoporous Carbon with Graphitic Walls and Its Electrochemical Performance
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Highly Crystalline and Conductive Nitrogen-Doped Mesoporous Carbon with Graphitic Walls and Its Electrochemical Performance

机译:具石墨壁的高结晶导电氮掺杂介孔碳及其电化学性能

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摘要

We present a rational and simple methodology to fabricate highly conductive nitrogen-doped ordered mesoporous carbon with a graphitic wall structure by the simple adjustment of the carbonization temperature of mesoporous carbon nitride without the addition of any external nitrogen sources. By simply controlling the heat-treatment temperature, the structural order and intrinsic properties such as surface area, conductivity, and pore volume, and the nitrogen content of ordered graphitic mesoporous carbon can be controlled. Among the materials studied, the sample heat-treated at 1000 °C shows the highest conductivity, which is 32 times higher than that for the samples treated at 800 °C and retains the well-ordered mesoporous structure of the parent mesoporous carbon nitride and a reasonable amount of nitrogen in the graphitic framework. Since these materials exhibit high conductivity with the nitrogen atoms in the graphitic framework, we further demonstrate their use as a support for nanoparticle fabrication without the addition of any external stabilizing or size-controlling agent, as well as the anode electrode catalysts. Highly dispersed platinum nanoparticles with a size similar to that of the pore diameter of the support can be fabricated since the nitrogen atoms and the well-ordered porous structure in the mesoporous graphitic carbon framework act as a stabilizing and size-controlling agent, respectively. Furthermore the Pt-loaded, nitrogen-doped mesoporous graphitic carbon sample with a high conductivity shows much higher anodic electrocatalytic activity than the other materials used in the study.
机译:我们提出了一种合理而简单的方法,可以通过简单地调节介孔氮化碳的碳化温度而无需添加任何外部氮源来制造具有石墨壁结构的高导电性氮掺杂有序介孔碳。通过简单地控制热处理温度,可以控制有序石墨介孔碳的结构顺序和固有性质,例如表面积,电导率和孔体积以及氮含量。在研究的材料中,经1000 C热处理的样品显示出最高的电导率,是在800 C下进行热处理的样品的电导率的32倍,并且保留了母体介孔碳氮化物的良好有序介孔结构和石墨框架中合理的氮含量。由于这些材料在石墨骨架中具有与氮原子的高导电性,因此我们进一步证明了它们在不添加任何外部稳定剂或尺寸控制剂以及阳极电极催化剂的情况下用作纳米颗粒制造的载体。由于中孔石墨碳骨架中的氮原子和有序的多孔结构分别充当稳定剂和尺寸控制剂,因此可以制造尺寸与载体孔径相似的高度分散的铂纳米粒子。此外,具有高电导率的Pt负载,氮掺杂的介孔石墨碳样品显示出比研究中使用的其他材料高得多的阳极电催化活性。

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