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RESEARCHERS CREATE 'FORCE FIELD' FOR SUPER MATERIALS

机译:研究人员为超级材料创造“力场”

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Researchers have developed a revolutionary method to intricately grow and protect some of the world's most exciting nanomaterials - graphene and carbon nanotubes (CNT). When curved and rolled into cylinders, thin graphene layers form CNT structures. These rolled sheets of carbon can be a thousandth of the diameter of human hair and possess extraordinary properties such as extreme electrical conduction, or 100 times the strength of high tensile steel. Although widely regarded as the key to developing future batteries and supercapacitor technologies, CNTs are plagued with environmental 'poisoning' which causes the materials to lose their catalyst properties. In a paper published by the journal Carbon, researchers from the University of Surrey detail their new method for covering the CNTs' catalyst by using a protective layer that is configured to allow carbon diffusion and thus can be used to protect the catalyst from environmental contamination. The technique allows the catalyst to be transported, stored or accurately calibrated for future use.
机译:研究人员制定了一种革命性的方法,可以复杂地生长和保护世界上最令人兴奋的纳米材料 - 石墨烯和碳纳米管(CNT)。当弯曲和轧制成圆柱体时,薄石墨烯层形成CNT结构。这些轧制的碳碳可以是人头发的千分之一的直径,并且具有极端的电导等特性,或者高拉伸钢的强度100倍。虽然被广泛被视为发展未来电池和超级电容器技术的关键,但CNT困扰着环境“中毒”,导致材料失去催化剂性质。在碳杂志上发表的一篇文章中,萨里大学的研究人员通过使用构造成允许碳扩散的保护层覆盖CNTS催化剂的新方法,因此可用于保护催化剂免受环境污染的保护。该技术允许将催化剂运输,储存或精确校准以供将来使用。

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