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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >The catalytic behaviour in aqueous-phase hydrogenation over a renewable Ni catalyst derived from a perovskite-type oxide
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The catalytic behaviour in aqueous-phase hydrogenation over a renewable Ni catalyst derived from a perovskite-type oxide

机译:从钙钛矿型氧化物衍生的可再生Ni催化剂上水相氢化的催化性能

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摘要

Water is inevitably associated with the production of bio-derived platform molecules, but most supported metallic catalysts have poor water compatibility. Although there have been a great number of investigations regarding the hydrogenation of bio-derived unsaturated compounds in the organic phase, the reactions that proceed in water are still quite challenging. Herein, we report the synthesis of a supported nickel catalyst (Ni-LN650) by the reduction of the perovskite-type oxide LaNiO3 precursor at 650 degrees C. The derived catalyst affords attractive activity in the hydrogenation of furfural by using water as the reaction medium, in which furfural is completely converted into tetrahydrofurfuryl alcohol with the highest productivity of 289.7 mmol g(Ni)(-1) h(-1) at 120 degrees C and 1 MPa of H-2 within 5 h of reaction. The Ni-LN650 catalyst also exhibits good stability and renewability in a cycle test, stemming from the self-regeneration peculiarity of the perovskite-type oxide precursor. Moreover, the catalyst can also demonstrate high activity in the aqueous-phase hydrogenation of various aldehydes, alkenes and carboxylic acids in a series of experiments. Due to the merits of usability in water, the renewability and wide application scope, the Ni-LN650 catalyst can be treated as a promising candidate for the catalytic conversion of bio-derived platform molecules into high value-added fuels and chemicals.
机译:水不可避免地与生物衍生平台分子的产生相关,但最多负载的金属催化剂具有差的水相容性。虽然已经有大量关于有机相中氢化生物衍生的不饱和化合物的研究,但在水中进行的反应仍然是非常具有挑战性的。在此,我们通过在650℃下减少钙钛矿型氧化物LaniO3前体来报告支持的镍催化剂(Ni-LN650)的合成。通过使用水作为反应介质,衍生的催化剂在糠醛的氢化中提供吸引活性其中糠醛完全转化为在反应的120℃和1Mmol的最高生产率289.7mmol g( - 1)h(-1)的最高生产率。 Ni-LN650催化剂在循环试验中也表现出良好的稳定性和可再生性,源于钙钛矿型氧化物前体的自再生特殊性。此外,催化剂还可以在一系列实验中展示各种醛,烯烃和羧酸水相氢化的高活性。由于水中可用性的优点,可再生性和广泛的应用范围,Ni-LN650催化剂可以作为生物衍生平台分子催化转化为高附加值燃料和化学品的有希望的候选者。

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    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Inst Solid State Phys Ctr Environm &

    Energy Nanomat CAS Ctr Excellence Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Inst Solid State Phys Ctr Environm &

    Energy Nanomat CAS Ctr Excellence Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Inst Solid State Phys Ctr Environm &

    Energy Nanomat CAS Ctr Excellence Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Inst Solid State Phys Ctr Environm &

    Energy Nanomat CAS Ctr Excellence Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Inst Solid State Phys Ctr Environm &

    Energy Nanomat CAS Ctr Excellence Hefei 230031 Anhui Peoples R China;

    Chinese Acad Sci Anhui Key Lab Nanomat &

    Nanotechnol Key Lab Mat Phys Inst Solid State Phys Ctr Environm &

    Energy Nanomat CAS Ctr Excellence Hefei 230031 Anhui Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;无机化学;
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