纳米约束和孔几何对合成介孔硅质材料零电荷点的影响

Q3 Materials Science
Andrew T. Jacobson , Chen Chen , Janet C. Dewey , Grant C. Copeland , Wayne T. Allen , Bryony Richards , John P. Kaszuba , Adri C.T. van Duin , Hyeyoung Cho , Milind Deo , Yuqi She , Thomas P. Martin
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引用次数: 1

摘要

与大孔(直径50纳米)相比,中孔(直径2-50纳米)的流体-岩石相互作用可能有所不同。本研究评估了纳米约束和孔隙几何形状对零电荷点(PZC)以及表面电荷和吸附的影响。测定了一组合成的介孔非晶二氧化硅材料的PZC,并与大孔和非孔非晶二氧化硅的PZC进行了比较。使用ReaxFF进行反应分子动力学模拟,确定了大孔和非孔非晶二氧化硅的表面平衡常数(pK),并澄清了大范围的PZC值。电位滴定法测量了三种介孔无定形二氧化硅材料(SBA-15、SBA-16和MCM-41)的PZC和pK值,这些材料具有不同的孔径范围(~ 4-13 nm)和不同的孔隙几何形状(六边形晶格的圆柱形孔、体心立方晶格的球形孔和六边形晶格排列的六边形孔);流体被二氧化硅预饱和以抑制与孔壁的反应。结果与150多项已发表的实验研究的数据相结合。纳米约束和孔几何形状都不影响介孔非晶硅材料的PZC。这些结果对页岩等介孔硅质自然体系在约束条件下的吸附化学具有指导意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effect of nanoconfinement and pore geometry on point of zero charge in synthesized mesoporous siliceous materials

Effect of nanoconfinement and pore geometry on point of zero charge in synthesized mesoporous siliceous materials

Fluid-rock interactions may differ in mesopores (2–50 ​nm diameter) compared to macropores (>50 ​nm diameter). This study evaluates the influence of nano-confinement and pore geometry on point of zero charge (PZC) and hence surface charge and adsorption. PZC was determined for a suite of synthetic mesoporous amorphous silica materials and compared to the PZC of macroporous and non-porous amorphous silica. Reactive molecular dynamics simulations using ReaxFF determined surface equilibrium constants (pK) and clarified the large range of PZC values reported for macroporous and non-porous amorphous silica. Potentiometric titrations measured PZC and pK values of three mesoporous amorphous silica materials (SBA-15, SBA-16, and MCM-41) possessing a range of pore diameters (∼4–13 ​nm) and distinct pore geometries (cylindrical pores in a hexagonal lattice, spherical pores in a body-centered-cubic lattice, and hexagonal pores arranged in a hexagonal lattice); fluids were pre-saturated with silica to inhibit reaction with pore walls. Results are integrated with data from more than 150 published experimental studies. Neither nano-confinement nor pore geometry affects the PZC of the mesoporous amorphous silica materials. These results have implications for adsorption chemistry under confinement in mesoporous siliceous natural systems such as shales.

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来源期刊
JCIS open
JCIS open Physical and Theoretical Chemistry, Colloid and Surface Chemistry, Surfaces, Coatings and Films
CiteScore
4.10
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36 days
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