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首页> 外文期刊>Applied Catalysis, A. General: An International Journal Devoted to Catalytic Science and Its Applications >Structural and catalytic properties of mono- and bimetallic nickel-copper nanoparticles derived from MgNi(Cu)Al-LDHs under reductive conditions
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Structural and catalytic properties of mono- and bimetallic nickel-copper nanoparticles derived from MgNi(Cu)Al-LDHs under reductive conditions

机译:MgNi(Cu)Al-LDHs衍生的单金属和双金属镍铜纳米粒子在还原条件下的结构和催化性能

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Herein, a way to generate mono- and bi-metallic copper and/or nickel nanoparticles by the direct reduction of Mg(Ni)CuAl-layered double hydroxide (LDH) precursors is reported. Cu and Ni with various molar ratios (0:1,1:4,1:1,4:1 and 1:0) were substituted in the MgAl brucite-like sheets during synthesis. Studies on the evolution of LDH structures under H-2 reduction of as-synthesized samples at different temperatures (30-550 degrees C) followed by in situ XRD evidenced the high reducibility of copper cations. The metallic phases generated during reduction of LDHs were dependent on the chemical composition of the sample. The corresponding TEM images display small, very well-dispersed metallic nanoparticles. A positive effect of nickel cations on the dispersion and thermostability of metallic copper phase was also observed, especially with increasing Ni content. For instance, metallic particle sizes of 6.5 and 3.3 nm were calculated for the NPs generated by reduction at 500 degrees C of MgCuAl and MgNiCuAl (Ni:Cu = 1:1), respectively. Outstanding results for the hydrogenation of cinnamaldehyde in liquid phase were obtained on Cu-rich materials that are able to generate metallic active sites even after reduction at temperature as low as 150 degrees C. Due to the difficulty to detect the metallic phases generated after reduction at 150 degrees C by usual techniques (e.g., TPR, in situ XRD and TEM), Cu-0 was put in evidence by the dissociative chemisorption of N2O. (C) 2014 Elsevier B.V. All rights reserved.
机译:本文中,报道了通过直接还原Mg(Ni)CuAl层状双氢氧化物(LDH)前体来生成单金属和双金属铜和/或镍纳米粒子的方法。在合成过程中,将各种摩尔比(0:1、1:4、1:1、4:1和1:0)的Cu和Ni替换为MgAl水镁石状片。在不同温度(30-550摄氏度)下,通过原位XRD对合成样品进行H-2还原后,LDH结构的演变研究证明了铜阳离子的高还原性。 LDH还原过程中产生的金属相取决于样品的化学组成。相应的TEM图像显示出很小的分散良好的金属纳米颗粒。还观察到镍阳离子对金属铜相的分散性和热稳定性的积极影响,尤其是随着镍含量的增加。例如,对于通过在500摄氏度下还原MgCuAl和MgNiCuAl(Ni:Cu = 1:1)生成的NP,计算出的金属颗粒尺寸分别为6.5和3.3 nm。在富含铜的材料上获得了肉桂醛在液相中氢化的出色结果,这些材料即使在低至150摄氏度的温度下还原后仍能够生成金属活性位。由于难以检测在还原条件下还原后生成的金属相通过常规技术(例如TPR,原位XRD和TEM)在150摄氏度下,通过N2O的解离化学吸附可以证明Cu-0。 (C)2014 Elsevier B.V.保留所有权利。

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