4.7 Article

Propylsulfonic Acid-Functionalized Mesostructured Natural Rubber/Silica Nanocomposites as Promising Hydrophobic Solid Catalysts for Alkyl Levulinate Synthesis

Journal

NANOMATERIALS
Volume 12, Issue 4, Pages -

Publisher

MDPI
DOI: 10.3390/nano12040604

Keywords

nanocomposite; mesoporous silica; natural rubber; in situ sol-gel; solid acid catalyst; esterification

Funding

  1. Thailand Science Research and Innovation (TSRI) [CU_FRB640001_01_23_2]
  2. International Research Network: Functional Porous Materials for Catalysis and Adsorption [IRN61W0003]
  3. TSRI-Chulalongkorn University [RSA6280046]
  4. Graduate School, Chulalongkorn University

Ask authors/readers for more resources

This study focused on the synthesis and characterization of propylsulfonic acid-functionalized nanocomposites based on natural rubber and hexagonal mesoporous silica (NRHMS-SO3H) as heterogeneous acid catalysts. The catalytic performance of these nanocomposites was evaluated in the esterification of levulinic acid with alcohols. Compared to traditional hexagonal mesoporous silica, the NRHMS-SO3H nanocomposites exhibited higher catalytic activity due to the synergistic effect between the strongly acidic-functional group and surface hydrophobicity. Tuning the hydrophobicity and acidity on a nanocomposite surface proved to be an effective strategy for energy reduction in catalysis.
Organosulfonic acid-functionalized mesoporous silica is a class of heterogeneous acid catalysts used in esterification processes due to its high surface area, shape-selective properties, and strongly acidic sites. Since water is generated as a by-product of esterification, the surface of mesostructured silica is modified to enhance hydrophobicity and catalytic performance. In this study, a series of propylsulfonic acid-functionalized nanocomposites based on natural rubber and hexagonal mesoporous silica (NRHMS-SO3H) with different acidities were prepared via an in situ solgel process using tetraethyl orthosilicate as the silica source, dodecylamine as the nonionic templating agent, and (3-mercaptopropyl)trimethoxysilane as the acid-functional group precursor. Compared with conventional propylsulfonic acid-functionalized hexagonal mesoporous silica (HMS-SO3H), NRHMS-SO3H provided higher hydrophobicity, while retaining mesoporosity and high surface area. The catalytic activity of synthesized solid acids was then evaluated via batch esterification of levulinic acid (LA) with alcohols (ethanol, n-propanol, and n-butanol) to produce alkyl levulinate esters. NRHMS-SO3H exhibited higher catalytic activity than HMS-SO3H and ultra-stable Y (HUSY) zeolite owing to the synergistic effect between the strongly acidic-functional group and surface hydrophobicity. The activation energy of the reaction over the NRHMS-SO3H surface was lower than that of HUSY and HMS-SO3H, suggesting that tuning the hydrophobicity and acidity on a nanocomposite surface is a compelling strategy for energy reduction to promote catalysis.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.7
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available