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Integrating Halloysite Nanostraws in Porous Catalyst Supports to Enhance Molecular Transport
- Source :
- ACS Applied Nano Materials
- Publication Year :
- 2021
- Publisher :
- American Chemical Society, 2021.
-
Abstract
- In many porous catalyst supports, the accessibility of interior catalytic sites to reactant species could be restricted due to limitations of reactant transport through pores comparable to reactant dimensions. The interplay between reaction and diffusion in porous catalysts is defined through the Thiele modulus and the effectiveness factor, with diffusional restrictions leading to high Thiele moduli, reduced effectivess factors, and a reduction in the observed reaction rate. We demonstrate a method to integrate ceramic nanostraws into the interior of ordered mesoporous silica MCM-41 to mitigate diffusional restrictions. The nanostraws are the natural aluminosilicate tubular clay minerals known as halloysite. Such halloysite nanotubes (HNTs) have a lumen diameter of 15-30 nm, which is significantly larger than the 2-4 nm pores of MCM-41, thus facilitating entry and egress of larger molecules to the interior of the pellet. The method of integrating HNT nanostraws into MCM-41 is through a ship-in-a-bottle approach of synthesizing MCM-41 in the confined volume of an aerosol droplet that contains HNT nanotubes. The concept is applied to a system in which microcrystallites of Ni@ZSM-5 are incorporated into MCM-41. Using the liquid phase reduction of nitrophenol as a model reaction catalyzed by Ni@ZSM-5, we show that the insertion of HNT nanostraws into this composite leads to a 50% increase in the effectiveness factor. The process of integrating nanostraws into MCM-41 through the aerosol-assisted approach is a one-step facile method that complements traditional catalyst preparation techniques. The facile and scalable synthesis technique toward the mitigation of diffusional restrictions has implications to catalysis and separation technologies.
- Subjects :
- Materials science
Diffusion
diffusion
halloysite nanotubes
engineering.material
Mesoporous silica
MCM-41
Halloysite
Thiele modulus
Article
Catalysis
Reaction rate
Chemical engineering
Aluminosilicate
visual_art
mass transfer
visual_art.visual_art_medium
engineering
General Materials Science
reaction kinetics
effectiveness factor
Ceramic
Subjects
Details
- Language :
- English
- ISSN :
- 25740970
- Volume :
- 4
- Issue :
- 8
- Database :
- OpenAIRE
- Journal :
- ACS Applied Nano Materials
- Accession number :
- edsair.doi.dedup.....17bf3031dc1b8386de54ac027237e9ee