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Surface Electrochemical Stability and Strain-Tunable Lithium Storage of Highly Flexible 2D Transition Metal Carbides

机译:高柔性二维过渡金属碳化物的表面电化学稳定性和可调谐应变的锂存储

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2D transition metal carbides and/or nitrides (MXenes) have attracted enormous attention because of their potential applications in energy storage, catalysis, and others. The control of surface terminations is generally believed to offer the potential preparation approaches to novel MXenes, while an external strain may provide solution to property modification. However, an atomistic understanding on the stabilization of surface complexity and the influence of strain on electrochemical properties of MXenes are scarce yet much demanded. Herein, taking Ti2CTn as a representative MXene, the thermodynamically favorable configurations are explored with a mixture of functional groups under various electrochemical environments. It predicts that five thermodynamically preferable Ti2CTn terminated by O Symbol of the Klingon Empire and F Symbol of the Klingon Empire cofunctionalized groups are discovered, all of which show excellent mechanical flexibility and strength that appear a decreasing trend as increasing F/O ratio. Further investigations on strain-controllable Li-transport of these cofunctionalized Ti2CT2 indicate that a mixture of surface terminations decreases the diffusion barriers, while the uniaxial strain modifies the diffusion pathways of Li atom owing to asymmetrical surface geometry and electronic polarization. These findings provide a view on the modification of properties by controlling surface complexity, demonstrating effective pathways in designing MXenes by electrochemical approach and tuning electrochemical property by strains.
机译:二维过渡金属碳化物和/或氮化物(MXenes)由于其在能量存储,催化等方面的潜在应用而备受关注。通常认为,控制表面末端可为新型MXene提供潜在的制备方法,而外部应变可为改性提供解决方案。然而,对原子表面活性的稳定性的稳定以及应变对MXene电化学性能的影响的原子学认识尚需很少。在此,以Ti 2 CTn为代表的MXene,在各种电化学环境下用官能团的混合物探索了热力学上有利的构型。可以预测发现了五个热力学上优选的Ti2CTn,它们被Klingon Empire的O Symbol和Klingon Empire共官能化的基团的F Symbol终止,所有这些都显示出优异的机械柔韧性和强度,随着F / O比的增加而呈现下降趋势。对这些共官能化的Ti2CT2的应变可控Li传输的进一步研究表明,表面终止剂的混合物降低了扩散势垒,而单轴应变由于不对称的表面几何形状和电子极化而改变了Li原子的扩散途径。这些发现为通过控制表面复杂性,演示通过电化学方法设计MXenes的有效途径以及通过应变调节电化学性能提供了有效的途径。

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