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Review-Electrochemical Growth of Carbon Nanotubes and Graphene from Ambient Carbon Dioxide: Synergy with Conventional Gas-Phase Growth Mechanisms

机译:含有环境二氧化碳的碳纳米管和石墨烯的电化学生长:常规气相生长机制的协同作用

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摘要

The rising levels of atmospheric CO2 threaten the promise of human sustainability on earth. Electrochemical conversion of CO2 into secondary chemicals and materials presents the most economically viable approach to solve this global challenge, and provides a method to utilize otherwisewasted CO2 as a chemical feedstock for the production of valuable products. Challenged by the processing cost versus value of converted materials, known routes for the production of hydrocarbons and alcohol products remain impractical. Electrochemical CO2 conversion into high-value carbon nanostructures presents a new area of research with the opportunity to build upon the last two decades of understanding of gas-phase synthesis processes for fullerenes, carbon nanotubes, and graphene. However, efforts so far to convert atmospheric carbon dioxide into functional carbon materials are limited by a systems-level approach that provides only coarse control over the types and quality of materials that can be synthesized. In this short review, we make a strong case for the synergy between the catalytic mechanisms that have been developed over past decades to understand carbon nanostructure growth and the emerging research area where electrochemical reduction of ambient CO2 can be used to produce carbon nanostructured materials. This presents a new opportunity for researchers to address one of the most pressing environmental issues for modern mankind with the synthesis of carbon materials that will shape our future. (C) The Author(s) 2017. Published by ECS.
机译:大气二氧化碳的上升水平威胁到地球上人类可持续性的承诺。 CO2进入二级化学品和材料的电化学转化呈现出解决这一全球挑战的最具经济可行的方法,并提供了一种用于生产有价值产品的化学原料作为化学原料的方法。由加工成本与转化材料的价值挑战,已知碳氢化合物和酒精产品的已知路线保持不切实际。电化学二氧化碳转化为高价值的碳纳米结构呈现出新的研究领域,有机会建立在富勒烯,碳纳米管和石墨烯的气相合成方法的最后二十年后。然而,到目前为止将大气二氧化碳转化为功能碳材料的努力受到系统级方法的限制,这些方法仅提供对可以合成的材料的类型和质量的粗控制。在这篇短暂的审查中,我们对过去数十年来说已经过度发展的催化机制之间的协同作用是理解碳纳米结构的生长和环境CO2的电化学减少的新兴研究领域,可以使用碳纳米结构的催化机制。这为研究人员提供了一个新的机会,以解决现代人类最紧迫的环境问题之一,含碳材料将塑造我们未来的碳材料。 (c)2017年提交人。由ECS发布。

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