W-Based Atomic Laminates and Their 2D Derivative W1.33C MXene with Vacancy Ordering

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Abstract

Structural design on the atomic level can provide novel chemistries of hybrid MAX phases and their MXenes. Herein, density functional theory is used to predict phase stability of quaternary i-MAX phases with in-plane chemical order and a general chemistry (W2/3M21/3)2AC, where M2 = Sc, Y (W), and A = Al, Si, Ga, Ge, In, and Sn. Of over 18 compositions probed, only two—with a monoclinic C2/c structure—are predicted to be stable: (W2/3Sc1/3)2AlC and (W2/3Y1/3)2AlC and indeed found to exist. Selectively etching the Al and Sc/Y atoms from these 3D laminates results in W1.33C-based MXene sheets with ordered metal divacancies. Using electrochemical experiments, this MXene is shown to be a new, promising catalyst for the hydrogen evolution reaction. The addition of yet one more element, W, to the stable of M elements known to form MAX phases, and the synthesis of a pure W-based MXene establishes that the etching of i-MAX phases is a fruitful path for creating new MXene chemistries that has hitherto been not possible, a fact that perforce increases the potential of tuning MXene properties for myriad applications.

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Meshkian, R., Dahlqvist, M., Lu, J., Wickman, B., Halim, J., Thörnberg, J., … Rosen, J. (2018). W-Based Atomic Laminates and Their 2D Derivative W1.33C MXene with Vacancy Ordering. Advanced Materials, 30(21). https://doi.org/10.1002/adma.201706409

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