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Two-Dimensional, Ordered, Double Transition Metals Carbides (MXenes)

ACS Nano · 2015 · Vol. 9(10) · pp. 9507–9516
Babak AnasoriYu XieMajid BeidaghiJun LuBrian HoslerLars HultmanPaul R. C. KentYury GogotsiMichel W. Barsoum

Abstract

The higher the chemical diversity and structural complexity of two-dimensional (2D) materials, the higher the likelihood they possess unique and useful properties. Herein, density functional theory (DFT) is used to predict the existence of two new families of 2D ordered, carbides (MXenes), M'2M″C2 and M'2M″2C3, where M' and M″ are two different early transition metals. In these solids, M' layers sandwich M″ carbide layers. By synthesizing Mo2TiC2Tx, Mo2Ti2C3Tx, and Cr2TiC2Tx (where T is a surface termination), we validated the DFT predictions. Since the Mo and Cr atoms are on the outside, they control the 2D flakes' chemical and electrochemical properties. The latter was proven by showing quite different electrochemical behavior of Mo2TiC2Tx and Ti3C2Tx. This work further expands the family of 2D materials, offering additional choices of structures, chemistries, and ultimately useful properties.

MXene and MAX Phase Materials2D Materials and ApplicationsSupercapacitor Materials and FabricationMXenesCarbideMaterials scienceTransition metalNanotechnologyChemistryMetallurgy

Funding

  • Vetenskapsrådet
  • Basic Energy Sciences
Citations
1,980
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References
Projector augmented-wave method
Physical review. B, Condensed matter · 1994 · 88,353 citations
Generalized Gradient Approximation Made Simple
Physical Review Letters · 1996 · 205,888 citations
Electron-energy-loss spectra and the structural stability of nickel oxide:  An LSDA+U study
Physical review. B, Condensed matter · 1998 · 14,431 citations
Intercalation and delamination of layered carbides and carbonitrides
Nature Communications · 2013 · 2,723 citations
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