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Microbial synthesis of Pd/Fe3O4 Au/Fe3O4 and PdAu/Fe3O4 nanocomposites for catalytic reduction of nitroaromatic compounds

机译:微生物合成Pd / Fe3O4Au / Fe3O4和PdAu / Fe3O4纳米复合材料以催化还原硝基芳族化合物

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摘要

Magnetically recoverable noble metal nanoparticles are promising catalysts for chemical reactions. However, the chemical synthesis of these nanocatalysts generally causes environmental concern due to usage of toxic chemicals under extreme conditions. Here, Pd/Fe3O4, Au/Fe3O4 and PdAu/Fe3O4 nanocomposites are biosynthesized under ambient and physiological conditions by Shewanella oneidensis MR-1. Microbial cells firstly transform akaganeite into magnetite, which then serves as support for the further synthesis of Pd, Au and PdAu nanoparticles from respective precursor salts. Surface-bound cellular components and exopolysaccharides not only function as shape-directing agent to convert some Fe3O4 nanoparticles to nanorods, but also participate in the formation of PdAu alloy nanoparticles on magnetite. All these three kinds of magnetic nanocomposites can catalyze the reduction of 4-nitrophenol and some other nitroaromatic compounds by NaBH4. PdAu/Fe3O4 demonstrates higher catalytic activity than Pd/Fe3O4 and Au/Fe3O4. Moreover, the magnetic nanocomposites can be easily recovered through magnetic decantation after catalysis reaction. PdAu/Fe3O4 can be reused in at least eight successive cycles of 4-nitrophenol reduction. The biosynthesis approach presented here does not require harmful agents or rigorous conditions and thus provides facile and environmentally benign choice for the preparation of magnetic noble metal nanocatalysts.
机译:磁性可回收的贵金属纳米粒子是用于化学反应的有前途的催化剂。然而,由于在极端条件下使用有毒化学品,这些纳米催化剂的化学合成通常引起环境问题。在此,Pd / Fe3O4,Au / Fe3O4和PdAu / Fe3O4纳米复合材料是在环境和生理条件下由沙瓦氏菌(Shewanella oneidensis)MR-1生物合成的。微生物细胞首先将赤铁矿转化为磁铁矿,然后为从相应的前体盐进一步合成Pd,Au和PdAu纳米粒子提供支持。表面结合的细胞成分和胞外多糖不仅充当形状导向剂,将一些Fe3O4纳米颗粒转化为纳米棒,而且还参与磁铁矿上PdAu合金纳米颗粒的形成。这三种磁性纳米复合材料均可催化NaBH4还原4-硝基苯酚和其他一些硝基芳族化合物。 PdAu / Fe3O4具有比Pd / Fe3O4和Au / Fe3O4更高的催化活性。此外,磁性纳米复合材料可以通过催化反应后的磁倾析容易地回收。 PdAu / Fe3O 4 可以在至少八个连续的4-硝基苯酚还原循环中重复使用。本文提出的生物合成方法不需要有害的试剂或严格的条件,因此为磁性贵金属纳米催化剂的制备提供了简便且环境友好的选择。

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