Literature DB >> 31199138

Multi-Step Topochemical Pathway to Metastable Mo2AlB2 and Related Two-Dimensional Nanosheet Heterostructures.

Lucas T Alameda, Robert W Lord, Jordan A Barr, Parivash Moradifar, Zachary P Metzger, Benjamin C Steimle, Cameron F Holder, Nasim Alem, Susan B Sinnott, Raymond E Schaak.   

Abstract

The rational synthesis of metastable inorganic solids, which is a grand challenge in solid-state chemistry, requires the development of kinetically controlled reaction pathways. Topotactic strategies can achieve this goal by chemically modifying reactive components of a parent structure under mild conditions to produce a closely related analogue that has otherwise inaccessible structures and/or compositions. Refractory materials, such as transition metal borides, are difficult to structurally manipulate at low temperatures because they generally are chemically inert and held together by strong covalent bonds. Here, we report a multistep low-temperature topotactic pathway to bulk-scale Mo2AlB2, which is a metastable phase that has been predicted to be the precursor needed to access a synthetically elusive family of 2-D metal boride (MBene) nanosheets. Room-temperature chemical deintercalation of Al from the stable compound MoAlB (synthesized as a bulk powder at 1400 °C) formed highly strained and destabilized MoAl1-xB, which was size-selectively precipitated to isolate the most reactive submicron grains and then annealed at 600 °C to deintercalate additional Al and crystallize Mo2AlB2. Further heating resulted in topotactic decomposition into bulk-scale Mo2AlB2-AlOx nanolaminates that contain Mo2AlB2 nanosheets with thickness of 1-3 nm interleaved by 1-3 nm of amorphous aluminum oxide. The combination of chemical destabilization, size-selective precipitation, and low-temperature annealing provides a potentially generalizable kinetic pathway to metastable variants of refractory compounds, including bulk Mo2AlB2 and Mo2AlB2-AlOx nanosheet heterostructures, and opens the door to other previously elusive 2-D materials such as 2-D MoB (MBene).

Entities:  

Year:  2019        PMID: 31199138     DOI: 10.1021/jacs.9b04726

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  3 in total

1.  New refractory MAB phases and their 2D derivatives: insight into the effects of valence electron concentration and chemical composition.

Authors:  Yinqiao Liu; Zhou Jiang; Xue Jiang; Jijun Zhao
Journal:  RSC Adv       Date:  2020-07-08       Impact factor: 4.036

2.  Path Less Traveled: A Contemporary Twist on Synthesis and Traditional Structure Solution of Metastable LiNi12B8.

Authors:  Gourab Bhaskar; Volodymyr Gvozdetskyi; Scott L Carnahan; Renhai Wang; Aishwarya Mantravadi; Xun Wu; Raquel A Ribeiro; Wenyu Huang; Aaron J Rossini; Kai-Ming Ho; Paul C Canfield; Oleg I Lebedev; Julia V Zaikina
Journal:  ACS Mater Au       Date:  2022-06-10

3.  Electrochemical synthesis of urea on MBenes.

Authors:  Xiaorong Zhu; Xiaocheng Zhou; Yu Jing; Yafei Li
Journal:  Nat Commun       Date:  2021-07-02       Impact factor: 14.919

  3 in total

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