首页> 外文期刊>Nanotechnology >Using non-combustion explosion in H2O/DMF to synthesize 3D Structure of ultrathin Bi nanofilm with high catalytic activity for p-nitrophenol reduction
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Using non-combustion explosion in H2O/DMF to synthesize 3D Structure of ultrathin Bi nanofilm with high catalytic activity for p-nitrophenol reduction

机译:使用H2O / DMF中的非燃烧爆炸,用高催化活性合成超薄Bi纳米丝的3D结构,用于降低对硝基苯酚的高催化活性

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摘要

The synthesis of inorganic micro-/nano-materials by dry combustion is somewhat dangerous since it is performed under high temperature. The ultrathin Bi nanofilms with 3D structures were synthesized using a safe approach of non-combustion explosion in H2O/DMF solution at room temperature and atmospheric pressure. The violent reaction between H2O2 and NH3 H2O resulted in a non-combustion explosion due to the fast evolution of gases. Then under high temperature and high pressure during solvothermal process, the further slight explosion occurred where the oxygen-containing molecules of H2O2 and NO3- acted as oxidants, while the hydrogen-containing molecules of NaBH4, NH3 H2O and DMF acted as reductants. The release of gases was accompanied with Bi-III reduction by NaBH4. The 3D structure of ultrathin Bi nanofilms with many void spaces formed due to the explosive force and foams from the sharp liberation of gases. Such ultrathin Bi nanofilms with 3D structure exhibited outstanding catalytic activity for p-nitrophenol hydrogenation which is important to treat the environmental pollution from p-nitrophenol discharge. Within only several seconds p-nitrophenol hydrogenation was completed without delay. The non-combustion explosion exhibits potential applications for the synthesis of 3D ultrathin film materials as high efficient catalysts.
机译:通过干燃烧的无机微/纳米材料的合成有些危险,因为它在高温下进行。使用H2O / DMF溶液在室温和大气压下使用H 2 O / DMF溶液中的安全方法来合成具有3D结构的超薄纤维。由于气体快速进化,H 2 O 2和NH 3 H 2 O之间的剧烈反应导致了不燃烧的爆炸。然后在溶剂热过程中高温和高压下,发生进一步轻微的爆炸,其中H 2 O 2的含氧分子和NO3-作用为氧化剂,而NaBH4,NH 3 H 2 O和DMF的含氢分子作用为还原剂。气体的释放伴随着NaBH4的Bi-III减少。超薄纤维素的3D结构由于爆炸力和来自气体急剧释放的爆炸力和泡沫而形成的许多空隙空间。具有3D结构的这种超薄的Bi纳米纤维表现出对P-硝基苯酚氢化的良好催化活性,这对于治疗对硝基苯酚分泌物的环境污染很重要。在仅在没有延迟的情况下,仅在几秒钟内完成p-硝基苯酚氢化。非燃烧爆炸表现出潜在的应用,用于合成3D超薄薄膜材料作为高效催化剂。

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