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设计具有应变可控储锂性能的柔性二维过渡金属碳化物。

Designing flexible 2D transition metal carbides with strain-controllable lithium storage.

机构信息

School of Materials Science and Engineering, Beihang University, Beijing 100191, People's Republic of China.

Center for Integrated Computational Materials Engineering, International Research Institute for Multidisciplinary Science, Beihang University, Beijing 100191, People's Republic of China.

出版信息

Proc Natl Acad Sci U S A. 2017 Dec 26;114(52):E11082-E11091. doi: 10.1073/pnas.1717219115. Epub 2017 Dec 11.

Abstract

Efficient flexible energy storage systems have received tremendous attention due to their enormous potential applications in self-powering portable electronic devices, including roll-up displays, electronic paper, and "smart" garments outfitted with piezoelectric patches to harvest energy from body movement. Unfortunately, the further development of these technologies faces great challenges due to a lack of ideal electrode materials with the right electrochemical behavior and mechanical properties. MXenes, which exhibit outstanding mechanical properties, hydrophilic surfaces, and high conductivities, have been identified as promising electrode material candidates. In this work, taking 2D transition metal carbides (TMCs) as representatives, we systematically explored several influencing factors, including transition metal species, layer thickness, functional group, and strain on their mechanical properties (e.g., stiffness, flexibility, and strength) and their electrochemical properties (e.g., ionic mobility, equilibrium voltage, and theoretical capacity). Considering potential charge-transfer polarization, we employed a charged electrode model to simulate ionic mobility and found that ionic mobility has a unique dependence on the surface atomic configuration influenced by bond length, valence electron number, functional groups, and strain. Under multiaxial loadings, electrical conductivity, high ionic mobility, low equilibrium voltage with good stability, excellent flexibility, and high theoretical capacity indicate that the bare 2D TMCs have potential to be ideal flexible anode materials, whereas the surface functionalization degrades the transport mobility and increases the equilibrium voltage due to bonding between the nonmetals and Li. These results provide valuable insights for experimental explorations of flexible anode candidates based on 2D TMCs.

摘要

高效灵活的储能系统由于其在自供电便携式电子设备中的巨大应用潜力而受到了极大的关注,这些设备包括可卷起的显示器、电子纸以及“智能”服装,这些服装配备了压电贴片,可以从人体运动中收集能量。不幸的是,由于缺乏具有正确电化学行为和机械性能的理想电极材料,这些技术的进一步发展面临着巨大的挑战。MXenes 具有出色的机械性能、亲水表面和高导电性,被认为是很有前途的电极材料候选物。在这项工作中,我们以二维过渡金属碳化物(TMCs)为例,系统地研究了几个影响因素,包括过渡金属种类、层厚、官能团和应变对其机械性能(如刚度、柔韧性和强度)和电化学性能(如离子迁移率、平衡电压和理论容量)的影响。考虑到潜在的电荷转移极化,我们采用了带电电极模型来模拟离子迁移率,发现离子迁移率具有独特的依赖性,其表面原子构型受键长、价电子数、官能团和应变的影响。在多轴载荷下,电导率、高离子迁移率、低平衡电压且稳定性良好、柔韧性优异、理论容量高,这表明裸二维 TMCs 具有成为理想的柔性阳极材料的潜力,而表面官能化由于非金属与 Li 的键合,会降低传输迁移率并增加平衡电压。这些结果为基于二维 TMCs 的柔性阳极候选材料的实验探索提供了有价值的见解。

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Lithium Storage in Carbon Nanostructures.碳纳米结构中的锂存储
Adv Mater. 2009 Jul 13;21(25-26):2664-2680. doi: 10.1002/adma.200901079.
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Design principles for solid-state lithium superionic conductors.固态锂超离子导体的设计原则。
Nat Mater. 2015 Oct;14(10):1026-31. doi: 10.1038/nmat4369. Epub 2015 Aug 17.

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