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Metal@COFs: Covalent organic frameworks as templates for pd nanoparticles and hydrogen storage properties of Pd@COF-102 hybrid material

机译:Metal @ COFs:共价有机框架,作为pd纳米颗粒和Pd @ COF-102杂化材料储氢特性的模板

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Three-dimensional covalent organic frameworks (COFs) have been demonstrated as a new class of templates for nanoparticles. Photodecomposition of the [Pd(· ~3-C _3H _5)(· ~5-C _5H _5)]@COF-102 inclusion compound (synthesized by a gas-phase infiltration method) led to the formation of the Pd@COF-102 hybrid material. Advanced electron microscopy techniques (including high-angle annular dark-field scanning transmission electron microscopy and electron tomography) along with other conventional characterization techniques unambiguously showed that highly monodisperse Pd nanoparticles ((2.4±0.5) nm) were evenly distributed inside the COF-102 framework. The Pd@COF-102 hybrid material is a rare example of a metal-nanoparticle-loaded porous crystalline material with a very narrow size distribution without any larger agglomerates even at high loadings (30 wta %). Two samples with moderate Pd content (3.5 and 9.5 wta %) were used to study the hydrogen storage properties of the metal-decorated COF surface. The uptakes at room temperature from these samples were higher than those of similar systems such as Pd@metal-organic frameworks (MOFs). The studies show that the H _2 capacities were enhanced by a factor of 2-3 through Pd impregnation on COF-102 at room temperature and 20 bar. This remarkable enhancement is not just due to Pd hydride formation and can be mainly ascribed to hydrogenation of residual organic compounds, such as bicyclopentadiene. The significantly higher reversible hydrogen storage capacity that comes from decomposed products of the employed organometallic Pd precursor suggests that this discovery may be relevant to the discussion of the spillover phenomenon in metal/MOFs and related systems. In the frame: Pd@COF-102 hybrid material (COF=covalent organic framework; see figure) is a rare example of a metal-nanoparticle-loaded porous crystalline material with a very narrow size distribution, cavity size matching, and an absence of larger agglomerates even at high loadings (30 wta %). Hydrogen storage studies showed that the H _2 capacities were enhanced by a factor of 2-3 as a result of Pd impregnation on COF-102 at room temperature and 20 bar.
机译:三维共价有机骨架(COF)已被证明是纳米颗粒的新型模板。 [Pd(·〜3-C _3H _5)(·〜5-C _5H _5)] @ COF-102包合物的光分解(通过气相渗透法合成)导致形成Pd @ COF- 102种混合材料。先进的电子显微镜技术(包括高角度环形暗场扫描透射电子显微镜和电子断层扫描)以及其他常规表征技术明确表明,COF-102内部均匀分布了高度单分散的Pd纳米颗粒((2.4±0.5)nm)框架。 Pd @ COF-102杂化材料是负载金属纳米粒子的多孔晶体材料的罕见示例,即使在高载荷(30 wt%)下,其粒度分布也非常狭窄,没有任何较大的团聚体。使用两个具有适中Pd含量(3.5和9.5 wta%)的样品来研究金属装饰的COF表面的储氢性能。这些样品在室温下的吸收量高于类似系统(如Pd @金属有机骨架(MOF))的吸收量。研究表明,在室温和20 bar下,通过Pd浸渍在COF-102上,H _2的容量提高了2-3倍。这种显着增强不仅是由于钯氢化物的形成,而且还可以归因于残余有机化合物(如双环戊二烯)的氢化。来自所用有机金属Pd前驱物分解产物的显着较高的可逆储氢能力表明,这一发现可能与金属/ MOF和相关系统中溢出现象的讨论有关。在框架中:Pd @ COF-102杂化材料(COF =共价有机骨架;见图)是金属纳米粒子负载的多孔晶体材料的罕见示例,其粒度分布非常狭窄,腔体尺寸匹配且不存在即使在高负荷(30 wt%)下,较大的团聚体也是如此。储氢研究表明,在室温和20 bar下,Pd浸渍在COF-102上的结果是H _2的容量提高了2-3倍。

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