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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Pore-Size Distribution of Silica Colloidal Crystals from Nitrogen Adsorption Isotherms
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Pore-Size Distribution of Silica Colloidal Crystals from Nitrogen Adsorption Isotherms

机译:氮吸附等温线二氧化硅胶体晶体的孔径分布

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Silica colloidal crystals are face-centered cubic structures comprised of silica spheres with the diameters ranging between tens and hundreds of nanometers. The voids between the spheres form pores, which can be probed by nitrogen adsorption porosimetry. Here, we prepared two mesoporous samples and a macroporous reference sample and then measured nitrogen adsorption and desorption isotherms for further characterization. We proposed a straightforward procedure for calculation of the pore-size distribution of silica colloidal crystals from nitrogen adsorption isotherms. The procedure is based on the adsorption integral equation solution with a kernel of theoretical isotherms, consistent with the procedure used for many other porous materials. The solution is carried out using the non-negative least squares (NNLS) regression with Tikhonov regularization. The kernel of mesoporous isotherms is built on the basis of the macroscopic Derjaguin-Broekhoff-de Boer (DBdB) theory of capillary condensation considering the voids as a network of spheres. Application of our procedure for the analysis of the adsorption branches of experimental isotherms resulted in bimodal distributions, where the modes matched well with the sizes of the voids in the colloidal crystals face centered cubic structure: the main mode corresponds to the octahedral voids and the second mode to the tetrahedral voids. Furthermore, we modified the surface of the samples with organics and repeated the characterization procedure for the modified samples. The resulting pore-size distribution for the samples with the modified surface matched the original one quite closely. It demonstrates the procedure as a simple and efficient technique to estimate the pore-size distribution and justifies the spherical shape approximation for the voids in the silica colloidal crystals.
机译:二氧化硅胶体晶体是由二氧化硅球组成的面为中心的立方结构,其直径在数十和数百纳米之间。形成孔的球体之间的空隙,其可以通过氮吸附孔隙测定法探测。在这里,我们制备了两个介孔样品和大孔参考样品,然后测量氮吸附和解吸等温度以进一步表征。我们提出了一种直接的程序,用于计算来自氮吸附等温线的二氧化硅胶体晶体的孔径分布。该过程基于吸附整体方程溶液,其具有理论等温线的核,与许多其他多孔材料的过程一致。使用与Tikhonov规则化的非负数最小二乘(NNL)回归进行该解决方案。考虑空隙作为球体网络,基于宏观的Derjaguin-Broekhoff-De Boers(DBDB)理论建立了介孔等温线的内核。我们在实验等温线的吸附分支分析的应用中的应用导致双峰分布,其中模式与胶体晶体面对中心的立方结构中的空隙的尺寸良好匹配:主模式对应于八面体空隙和第二个模式到四面体空隙。此外,我们用有机物修饰样品的表面,并重复修饰样品的表征过程。由改性表面的样品的孔径分布非常紧密地匹配原始的表面。它证明了该过程作为一种简单有效的技术来估计孔径分布,并证明了二氧化硅胶体晶体中空隙的球形形状近似。

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