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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Cu2(pyrazine-2,3-dicarboxylate)2(4,4'-bipyridine) Porous Coordination Sorbents: Activation Temperature, Textural Properties, and CO2 Adsorption at Low Pressure Range
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Cu2(pyrazine-2,3-dicarboxylate)2(4,4'-bipyridine) Porous Coordination Sorbents: Activation Temperature, Textural Properties, and CO2 Adsorption at Low Pressure Range

机译:Cu2(吡嗪-2,3-二羧酸盐)2(4,4'-联吡啶)多孔配位吸附剂:活化温度,质构性质和低压范围内的CO2吸附

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The effect of activation temperature on the textural properties and low-pressure adsorption performance of the porous coordination polymer Cu2(pzdc)2(bpy) [pzdc = pyrazine-2,3-dicarboxylate, bpy = 4,4'-bipyridine], better known as CPL-2, was considered to elucidate the material potential for separations. The effective activation temperature range was estimated via coupled thermal gravimetric and Fourier transforms infrared spectroscopy analysis. A textural property analysis via the α_s-plot, Dubinin-Radushkevich and Horvath-Kawazoe methods show that a significant reduction in effective surface area and micropore volume occurs when the activation temperature is increased from 373 to 423 K. Cooling of the sample in a moisture-free environment revealed that such reduction is nonreversible, as evidenced by single-component CO2 equilibrium adsorption tests. Although CO2 equilibrium adsorption isotherms exhibit a linear behavior in the ambient pressure range, an increase in activation temperature eventually decreases the pore size of the structure resulting in a considerable decrease in loading amounts. This was also corroborated by means of in situ high-temperature X-ray diffraction, which was used to monitor the lattice semiquantitative changes of CPL-2 during the thermal activation sequence. In addition, adsorption uptake data was gathered to estimate a diffusion time constant and elucidate preliminary information about the kinetics involved during the transport of CO2 through the micropores of CPL-2. After inspection of the adsorbent particle morphology via scanning electron microscopy, it became ostensible that the transport phenomenological model suitable to fit the uptake data was that of a slab-shape particle. For the sample pretreated at 373 K the analysis yields an average diffusion time constant of ca. 0.5 s~(-1) at 298 K.
机译:活化温度对多孔配位聚合物Cu2(pzdc)2(bpy)[pzdc =吡嗪-2,3-二羧酸酯,bpy = 4,4'-联吡啶]的质构性质和低压吸附性能的影响更好被称为CPL-2,被认为是阐明分离的潜在材料。有效活化温度范围是通过热重分析和傅里叶变换红外光谱分析来估算的。通过α_s曲线,Dubinin-Radushkevich和Horvath-Kawazoe方法进行的纹理特性分析表明,当活化温度从373 K升高到423 K时,有效表面积和微孔体积显着减少。样品在湿气中冷却在无污染的环境中,这种还原是不可逆的,如单组分CO2平衡吸附试验所证明的。尽管CO2平衡吸附等温线在环境压力范围内表现出线性行为,但活化温度的升高最终会降低结构的孔径,从而导致加载量显着降低。这也通过原位高温X射线衍射得到了证实,该高温X射线衍射用于监测热激活序列期间CPL-2的晶格半定量变化。另外,收集了吸附吸收数据以估计扩散时间常数,并阐明有关在CO2通过CPL-2微孔的运输过程中涉及的动力学的初步信息。通过扫描电子显微镜检查吸附剂颗粒的形态后,可以看出适合于吸收数据的传输现象学模型是板状颗粒。对于在373 K预处理的样品,分析得出的平均扩散时间常数约为ca。在298 K时0.5 s〜(-1)

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