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      Low-temperature synthesis of cation-ordered bulk Zn 3WN 4 semiconductor via heterovalent solid-state metathesis†

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      a , , a , b , a , c , a , d , d , e , a , a ,
      Chemical Science
      The Royal Society of Chemistry

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          Abstract

          Metathesis reactions are widely used in synthetic chemistry. While state-of-the-art organic metathesis involves highly controlled processes where specific bonds are broken and formed, inorganic metathesis reactions are often extremely exothermic and, consequently, poorly controlled. Ternary nitrides offer a technologically relevant platform for expanding synthetic control of inorganic metathesis reactions. Here, we show that energy-controlled metathesis reactions involving a heterovalent exchange are possible in inorganic nitrides. We synthesized Zn 3WN 4 by swapping Zn 2+ and Li + between Li 6WN 4 and ZnX 2 (X = Br, Cl, F) precursors. The in situ synchrotron powder X-ray diffraction and differential scanning calorimetry show that the reaction onset is correlated with the ZnX 2 melting point and that product purity is inversely correlated with the reaction's exothermicity. Therefore, careful choice of the halide counterion ( i.e., ZnBr 2) allows the synthesis to proceed in a swift but controlled manner at a surprisingly low temperature for an inorganic nitride (300 °C). High resolution synchrotron powder X-ray diffraction and diffuse reflectance spectroscopy confirm the synthesis of a cation-ordered Zn 3WN 4 semiconducting material. We hypothesize that this synthesis strategy is generalizable because many Li–M–N phases are known (where M is a metal) and could therefore serve as precursors for metathesis reactions targeting new ternary nitrides. This work expands the synthetic control of inorganic metathesis reactions in a way that will accelerate the discovery of novel functional ternary nitrides and other currently inaccessible materials.

          Abstract

          Metathesis reactions can synthesize a semiconductor Zn 3WN 4 from Li 6WN 4 combined with a ZnX 2 salt (where X = Br, Cl, F).

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          Most cited references4

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          Exothermic Metathesis Reactions

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            Metathesis Routes to Materials

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              Physical Constants of Inorganic Compounds

              (2023)
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                Author and article information

                Journal
                Chem Sci
                Chem Sci
                SC
                CSHCBM
                Chemical Science
                The Royal Society of Chemistry
                2041-6520
                2041-6539
                15 May 2024
                26 June 2024
                15 May 2024
                : 15
                : 25
                : 9709-9718
                Affiliations
                [a ] Materials, Chemical, and Computational Science, National Renewable Energy Laboratory Golden CO 80401 USA christopher.rom@ 123456nrel.gov andriy.zakutayev@ 123456nrel.gov
                [b ] Department of Chemistry, Colorado State University Fort Collins CO 80523 USA
                [c ] University of Illinois Urbana-Champaign Champaign IL 61801 USA
                [d ] Center for Neutron Research, National Institute of Standards and Technology Gaithersburg MD 20899 USA
                [e ] Department of Chemistry, Southern Methodist University Dallas TX 75275 USA
                Author information
                https://orcid.org/0000-0002-6176-3197
                https://orcid.org/0000-0003-1487-4836
                https://orcid.org/0000-0001-9771-8075
                https://orcid.org/0000-0002-6807-6701
                https://orcid.org/0009-0003-8036-6917
                https://orcid.org/0000-0002-8349-2615
                https://orcid.org/0000-0002-3054-5525
                Article
                d4sc00322e
                10.1039/d4sc00322e
                11206237
                38939135
                c6daa664-1de0-4086-9228-d73737fc60b1
                This journal is © The Royal Society of Chemistry
                History
                : 15 January 2024
                : 30 April 2024
                Page count
                Pages: 10
                Funding
                Funded by: Basic Energy Sciences, doi 10.13039/100006151;
                Award ID: Early Career Award “Kinetic Synthesis of Metastable Nitrides”
                Funded by: Office of Energy Efficiency and Renewable Energy, doi 10.13039/100006134;
                Award ID: Unassigned
                Funded by: Hydrogen and Fuel Cell Technologies Office, doi 10.13039/100010268;
                Award ID: Unassigned
                Funded by: Laboratory Directed Research and Development, doi 10.13039/100007000;
                Award ID: Unassigned
                Categories
                Chemistry
                Custom metadata
                Paginated Article

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