首页> 外文期刊>Applied Catalysis, A. General: An International Journal Devoted to Catalytic Science and Its Applications >The influence of the nanostructure on the effect of CO2 on the properties of Pd-Ag thin-film for H2 separation
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The influence of the nanostructure on the effect of CO2 on the properties of Pd-Ag thin-film for H2 separation

机译:纳米结构对CO2对Pd-Ag薄膜H2分离性能的影响

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The use of co-deposition instead of sequential deposition during the preparation of Pd-Ag thin films by electroless plating deposition leads to two different nanostructures, e.g. a dendritic nanostructure or a more compact and dense film, allowing to analyze the role of this parameter, at equal membrane composition, on the performances. In pure H2 the permeability to hydrogen of the second type of thin films is 3-4 times higher, but the presence of CO2 in the feed changes considerably the performances. The results are tentatively interpreted on the basis of a non-permanent in situ modification of the characteristics of the Pd-Ag thinfilms, with creation of strains and microholes particularly enhanced for the nanostructure present in the sample prepared by co-deposition. These strains and microholes are suggested to derive from the combined effect of CO2 (with creation of subsurface 0 and/or C) and of hydrogen diffusion through the thin film, which induces lattice expansion and stress on the nanograins. When the flux of H2 stops, there is a relatively rapid restoring of the initial situation. Scanning electron microscopy (SEM) characterization after the tests in the presence of CO2 indicates the presence of desintering consistently with above indications and the creation of crack like voids.
机译:在通过化学镀沉积制备Pd-Ag薄膜期间,使用共沉积而不是顺序沉积导致两种不同的纳米结构,例如纳米结构。树状纳米结构或更致密且致密的薄膜,可以分析在相同膜组成下该参数对性能的作用。在纯H2中,第二种薄膜对氢的渗透性高3-4倍,但进料中CO2的存在会大大改变性能。暂时根据Pd-Ag薄膜特性的非永久性原位修饰来解释结果,特别是对于通过共沉积制备的样品中存在的纳米结构,产生的应变和微孔的产生特别明显。这些应变和微孔被认为是源于CO2(产生次表面0和/或C)和氢通过薄膜扩散的综合作用,这会在纳米晶粒上引起晶格膨胀和应力。当H2的通量停止时,初始状态会相对较快地恢复。在存在二氧化碳的情况下进行测试后的扫描电子显微镜(SEM)表征表明,与上述指示一致地存在解烧结现象,并且产生了类似空隙的裂纹。

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