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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Low-temperature growth of carbon shells on gold and copper nanoparticles inside a transmission electron microscope
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Low-temperature growth of carbon shells on gold and copper nanoparticles inside a transmission electron microscope

机译:透射电子显微镜内的金和铜纳米颗粒上的碳壳低温生长

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Assisted by electron beam irradiation in a transmission electron microscope chamber, carbon shells are grown on both gold (Au) and copper (Cu) nanoparticles at low temperatures. Using single-walled carbon nanotube film as support, it is observed that graphene shells can nucleate on Au nanoparticles at 350 degrees C and at a temperature as low as 150 degrees C on Cu nanoparticles. The low temperature carbon assembly is attributed to a truncated graphene formation pathway, low reaction barriers and exothermic reaction processes. The calculated energy barriers for graphene assembly from active carbon atoms on Au (111) and Cu (111) surfaces are 0.57 eV and 0.44 eV, respectively, which are roughly 1/3 of the barriers for carbon source dissociation. On the one hand, the decomposition of hydrocarbon molecules is entirely driven by the electron collision-induced radiolysis reaction and thus does not contribute to the graphene formation energetics. On the other hand, the feasible nucleation process ensures the synthesis of carbon shells at low temperature in view of both kinetics and thermodynamics. This work not only opens a new avenue for low temperature synthesis of graphitic shells, but also helps to understand the growth mechanisms of graphene encapsulated materials. (C) 2020 Elsevier Ltd. All rights reserved.
机译:通过电子束照射在透射电子显微镜室中的辅助,在低温下在金(Au)和铜(Cu)纳米颗粒上生长碳壳。使用单壁碳纳米管薄膜作为支撑件,观察到石墨烯壳可以在350℃的Au纳米颗粒上核成核,在Cu纳米颗粒上的低至150℃的温度下。低温碳组件归因于截短的石墨烯形成途径,低反应屏障和放热反应过程。从Au(111)和Cu(111)表面上的活性炭原子的石墨烯组件的计算能屏障分别为0.57eV和0.44eV,分别为碳源解离的屏障的大约1/3。一方面,烃分子的分解完全由电子碰撞诱导的辐射反应驱动,因此不会导致石墨烯形成能量。另一方面,考虑到动力学和热力学,可行的成核过程确保在低温下在低温下合成碳壳。这项工作不仅开启了石墨壳的低温合成的新途径,而且有助于了解石墨烯包封材料的生长机制。 (c)2020 elestvier有限公司保留所有权利。

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