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预测线性碳的碳纳米管包裹链的约束增强稳定性和非凡力学性能。

Predicted Confinement-Enhanced Stability and Extraordinary Mechanical Properties for Carbon Nanotube Wrapped Chains of Linear Carbon.

作者信息

Gao Enlai, Li Ruishan, Baughman Ray H

机构信息

Department of Engineering Mechanics, School of Civil Engineering, Wuhan University, Wuhan, Hubei 430072, China.

Alan G. MacDiarmid NanoTech Institute, The University of Texas at Dallas, Richardson, Texas 75080, United States.

出版信息

ACS Nano. 2020 Dec 22;14(12):17071-17079. doi: 10.1021/acsnano.0c06602. Epub 2020 Nov 16.

DOI:10.1021/acsnano.0c06602
PMID:33197309
Abstract

The demand for high-modulus, high-strength, lightweight materials has continuously driven the bottom-up assembly of carbon nanostructures into high-performance bulk carbon materials, such as graphene sheets and carbon nanotube yarns. Carbyne, often called linear carbon, has a higher predicted gravimetric modulus and gravimetric strength than any other form of carbon, but possibly reacts under near-ambient conditions because of the extended hybridization. The successful fabrication of carbon nanotube wrapped single carbyne chain (Shi . . , , 634) suggests the possibility of carbyne's bulk production. Herein, we designed a type of carbon assembly that includes a possibly large array of carbyne chains confined within a single-walled nanotube sheath (nanotube wrapped carbynes, NTWCs), in which carbyne chains act as reinforcing building blocks, and the carbon nanotube sheath protects the multiple carbyne chains against chemical or topochemical reaction. We showed that NTWCs exhibit confinement-enhanced stabilities, even when they contain multiple neighboring carbyne chains. We developed a mechanics model for exploring the mechanical properties of NTWCs. On the basis of this model, the gravimetric modulus (and strength) of NTWCs was predicted to increase from 356.4 (50.25) to 977.2 GPa·g·cm (71.20 GPa·g·cm) as the mass ratio of carbyne carbons to sheath carbons increases, which is supported by atomistic simulations. The highest calculated gravimetric modulus and strength of NTWCs are 174.2% and 41.7%, respectively, higher than those of either graphene or carbon nanotubes. The corresponding highest values of engineering modulus and strength of NTWCs with a density of 1.54 g·cm are 1505 and 109.6 GPa, respectively. Hence, NTWCs are promising for uses in high-modulus, high-strength, lightweight composites.

摘要

对高模量、高强度、轻质材料的需求不断推动碳纳米结构自下而上组装成高性能块状碳材料,如石墨烯片和碳纳米管纱线。卡宾,通常称为线性碳,其预测的重量模量和重量强度高于任何其他形式的碳,但由于其扩展的杂化作用,可能在接近环境条件下发生反应。碳纳米管包裹的单卡宾链的成功制备(Shi……,634)表明了卡宾大规模生产的可能性。在此,我们设计了一种碳组装体,其中包括可能大量的卡宾链被限制在单壁纳米管鞘内(纳米管包裹的卡宾,NTWC),其中卡宾链作为增强结构单元,而碳纳米管鞘保护多个卡宾链免受化学反应或拓扑化学反应。我们表明,即使NTWC包含多个相邻的卡宾链,它们也表现出受限增强的稳定性。我们开发了一个力学模型来探索NTWC的力学性能。基于该模型,随着卡宾碳与鞘碳的质量比增加,NTWC的重量模量(和强度)预计将从356.4(50.25)增加到977.2 GPa·g·cm(71.20 GPa·g·cm),这得到了原子模拟的支持。NTWC计算得到的最高重量模量和强度分别比石墨烯或碳纳米管高174.2%和41.7%。密度为1.54 g·cm的NTWC的相应最高工程模量和强度值分别为1505和109.6 GPa。因此,NTWC有望用于高模量、高强度、轻质复合材料。

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Predicted Confinement-Enhanced Stability and Extraordinary Mechanical Properties for Carbon Nanotube Wrapped Chains of Linear Carbon.预测线性碳的碳纳米管包裹链的约束增强稳定性和非凡力学性能。
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