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Building MOF Nanocomposites with Oxidized Graphitic Carbon Nitride Nanospheres: The Effect of Framework Geometry on the Structural Heterogeneity

机译:用氧化的石墨氮化碳纳米球构建MOF纳米复合材料:框架几何形状对结构异质性的影响

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摘要

Composite of two MOFs, copper-based Cu-BTC (HKUST-1) and zirconium-based Zr-BDC (UiO-66), with oxidized graphitic carbon nitride nanospheres were synthesized. For comparison, pure MOFs were also obtained. The surface features were analyzed using x-ray diffraction (XRD), sorption of nitrogen, thermal analysis, and scanning electron microscopy (SEM). The incorporation of oxidized g-C N to the Cu-BTC framework caused the formation of a heterogeneous material of a hierarchical pores structure, but a decreased surface area when compared to that of the parent MOF. In the case of UiO-66, functionalized nanospheres were acting as seeds around which the crystals grew. Even though the MOF phases were detected in both materials, the porosity analysis indicated that in the case of Cu-BTC, a collapsed MOFonporous and amorphous matter was also present and the MOF phase was more defectous than that in the case of UiO-66. The results suggested different roles of oxidized g-C N during the composite synthesis, depending on the MOF geometry. While spherical units of UiO-66 grew undisturbed around oxidized and spherical g-C N , octahedral Cu-BTC units experienced geometrical constraints, leading to more defects, a disturbed growth of the MOF phase, and to the formation of mesopores at the contacts between the spheres and MOF units. The differences in the amounts of CO adsorbed between the MOFs and the composites confirm the proposed role of oxidized g-C N in the composite formation.
机译:合成了两种MOFs,它们分别是铜基Cu-BTC(HKUST-1)和锆基Zr-BDC(UiO-66)与氧化石墨氮化碳纳米球。为了进行比较,还获得了纯MOF。使用X射线衍射(XRD),氮吸附,热分析和扫描电子显微镜(SEM)分析表面特征。氧化的g-C N结合到Cu-BTC骨架中导致形成具有分级孔结构的异质材料,但与母体MOF相比表面积却减小了。在UiO-66的情况下,功能化的纳米球充当晶体生长的种子。即使在两种材料中都检测到MOF相,孔隙度分析表明,在Cu-BTC的情况下,MOF /无孔和无定形物质也存在坍塌,并且MOF相比UiO-的情况更具有缺陷。 66。结果表明,取决于MOF几何形状,在复合合成过程中氧化的g-C N具有不同的作用。虽然UiO-66球形单位在氧化和球形gC N周围不受干扰地生长,但八面体Cu-BTC单位受到几何约束,导致更多的缺陷,MOF相的生长受干扰以及在球之间的接触处形成中孔和MOF单位。 MOF和复合材料之间的CO吸附量差异证实了氧化的g-C N在复合材料形成中的拟议作用。

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