Ga‐Modified MCM‐41 Catalyzed Selective Isomerization of α ‐Pinene Oxide to Campholenic Aldehyde

ABSTRACT The selective isomerization of renewable α ‐pinene oxide (APO) into value‐added chemicals remains challenging due to competing reaction pathways and limited catalytic control. Herein, we report the development of a gallium(III)‐functionalized mesoporous silica catalyst (Ga‐MCM‐41) for the selective transformation of APO into campholenic aldehyde. The catalyst was synthesized via a surfactant‐templated sol–gel approach and comprehensively characterized. HR‐TEM showed the presence of well‐ordered hexagonal mesoporous channels, while XPS confirmed the incorporation of Ga 3+ species into the silica framework. The catalyst exhibited a high surface area of 970 m 2 g −1 and an acidity of 0.7 mmol g −1 . Under optimized reaction conditions, Ga‐MCM‐41 achieved >99% conversion of APO with 81% selectivity toward campholenic aldehyde. In addition, the catalyst demonstrated excellent recyclability over four consecutive cycles, with minimal loss of activity or selectivity.

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Journal
ChemCatChem
Published
2026-09-30
DOI
https://doi.org/10.1002/cctc.71096
Primary Topic
Mesoporous Materials and Catalysis
Type
article
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article

Ga‐Modified MCM‐41 Catalyzed Selective Isomerization of α ‐Pinene Oxide to Campholenic Aldehyde

Hanuman G. Kachgunde, Amit R. Sonkar
ChemCatChem
Mesoporous Materials and Catalysis
article

Ga‐Modified MCM‐41 Catalyzed Selective Isomerization of α ‐Pinene Oxide to Campholenic Aldehyde

Hanuman G. Kachgunde, Amit R. Sonkar
article en

Abstract

ABSTRACT The selective isomerization of renewable α ‐pinene oxide (APO) into value‐added chemicals remains challenging due to competing reaction pathways and limited catalytic control. Herein, we report the development of a gallium(III)‐functionalized mesoporous silica catalyst (Ga‐MCM‐41) for the selective transformation of APO into campholenic aldehyde. The catalyst was synthesized via a surfactant‐templated sol–gel approach and comprehensively characterized. HR‐TEM showed the presence of well‐ordered hexagonal mesoporous channels, while XPS confirmed the incorporation of Ga 3+ species into the silica framework. The catalyst exhibited a high surface area of 970 m 2 g −1 and an acidity of 0.7 mmol g −1 . Under optimized reaction conditions, Ga‐MCM‐41 achieved >99% conversion of APO with 81% selectivity toward campholenic aldehyde. In addition, the catalyst demonstrated excellent recyclability over four consecutive cycles, with minimal loss of activity or selectivity.

ChemCatChemVol. 18(19)
Central Salt and Marine Chemicals Research Institute (IN), Academy of Scientific and Innovative Research (IN)
Clean water and sanitation
Openalex Percentile: Top 26%
Mesoporous Materials and Catalysis
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Ga‐Modified MCM‐41 Catalyzed Selective Isomerization of α ‐Pinene Oxide to Campholenic Aldehyde — Hanuman G. Kachgunde, Amit R. Sonkar · ChemCatChem (2026) | TGRS Research Map | TGRS