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Hydride in BaTiO_(2.5)H_(0.5): A Labile Ligand in Solid State Chemistry

机译:BaTiO_(2.5)H_(0.5)中的氢化物:固态化学中的不稳定配体

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摘要

In synthesizing mixed anion oxides, direct syntheses have often been employed, usually involving high temperature and occasionally high pressure. Compared with these methods, here we show how the use of a titanium perovskite oxyhydride (BaTiO_(2.5)H_(0.5) as a starting material enables new multistep low temperature topochemical routes to access mixed anion compounds. Similar to labile ligands in inorganic complexes, the lability of H~- provides the necessary reactivity for syntheses, leading to reactions and products previously difficult to obtain. For example, BaTiO_(2.5)N_(0.2) can be prepared with the otherwise inert N_2 gas at 400-600 ℃, in marked contrast with currently available oxynitride synthetic routes. F~-/H~- exchange can also be accomplished at 150 ℃, yielding the oxyhydride-fluoride BaTi(O, H, F)_3. For BaTiO_(2.4)D_(0.3)F_(0.3), we find evidence that further anionic exchange with OD~- yields BaTiO_(2.4)(D~-)_(0.26)(OD~-)_(0.34), which implies stable coexistence of H~+ and H~- at ambient conditions. Such an arrangement is thermodynamically unstable and would be difficult to realize otherwise. These results show that the labile nature of hydride imparts reactivity to oxide hosts, enabling it to participate in new multistep reactions and form new materials.
机译:在合成混合的阴离子氧化物中,经常采用直接合成,通常涉及高温,偶尔涉及高压。与这些方法进行比较,在这里我们展示了如何使用钙钛矿氢氧化物(BaTiO_(2.5)H_(0.5)作为起始材料,使新的多步低温拓扑化学方法能够访问混合阴离子化合物。类似于无机配合物中的不稳定配体, H〜-的不稳定性为合成提供了必要的反应性,导致反应和以前难以获得的产物,例如,BaTiO_(2.5)N_(0.2)可以用惰性的N_2气体在400-600℃的条件下制备。与目前可用的氮氧化物合成路线形成鲜明对比,F〜-/ H〜-交换也可以在150℃下完成,生成氟化氢氟化BaTi(O,H,F)_3。对于BaTiO_(2.4)D_(0.3)F_ (0.3),我们发现有证据表明,与OD〜-进行进一步的阴离子交换会生成BaTiO_(2.4)(D〜-)_(0.26)(OD〜-)_(0.34),这意味着H〜+和H〜稳定地共存。 -在环境条件下,这种布置在热力学上是不稳定的,否则很难实现,这些结果表明氢化物的不稳定性质赋予氧化物主体以反应性,使其能够参与新的多步反应并形成新材料。

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  • 来源
    《Journal of the American Chemical Society》 |2015年第48期|15315-15321|共7页
  • 作者单位

    Department of Energy and Hydrocarbon Chemistry, Graduate School of Engineering, Kyoto University, Nishikyo-ku, Kyoto 615-8510, Japan;

    Department of Energy and Hydrocarbon Chemistry, Graduate School of Engineering, Kyoto University, Nishikyo-ku, Kyoto 615-8510, Japan,PRESTO, Japan Science and Technology Agency (JST), Kawaguchi-shi, Saitama 332-0012, Japan;

    Institut des Sciences Chimiques de Rennes, UMR CNRS 6226, Universite de Rennes 1, Batiment 10B, Campus de Beaulieu, Rennes F-35042, France;

    Institut des Sciences Chimiques de Rennes, UMR CNRS 6226, Universite de Rennes 1, Batiment 10B, Campus de Beaulieu, Rennes F-35042, France;

    Institut des Sciences Chimiques de Rennes, UMR CNRS 6226, Universite de Rennes 1, Batiment 10B, Campus de Beaulieu, Rennes F-35042, France;

    Department of Energy and Hydrocarbon Chemistry, Graduate School of Engineering, Kyoto University, Nishikyo-ku, Kyoto 615-8510, Japan;

    Institut Laue-Langevin, 6, rue Jules Horowitz, Grenoble 38000, France;

    Department of Chemistry, Graduate School of Science, Kyoto University, Sakyo-ku, Kyoto 606-8502, Japan;

    Department of Chemistry, Graduate School of Science, Kyoto University, Sakyo-ku, Kyoto 606-8502, Japan;

    Department of Chemistry, Graduate School of Science, Kyoto University, Sakyo-ku, Kyoto 606-8502, Japan;

    Department of Energy and Hydrocarbon Chemistry, Graduate School of Engineering, Kyoto University, Nishikyo-ku, Kyoto 615-8510, Japan;

    Department of Energy and Hydrocarbon Chemistry, Graduate School of Engineering, Kyoto University, Nishikyo-ku, Kyoto 615-8510, Japan;

    Department of Energy and Hydrocarbon Chemistry, Graduate School of Engineering, Kyoto University, Nishikyo-ku, Kyoto 615-8510, Japan,CREST, Japan Science and Technology Agency (JST), Kawaguchi-shi, Saitama 332-0012, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 入库时间 2022-08-18 03:09:50

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