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February 24, 2026ChemCatChem0 citations

Pulse Catalytic Isopropanol Dehydration to Propylene Over Natural Acidic Clays: Comparison With Zeolite and Amorphous Silica‐Alumina

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TNT.T. NguyenMemorial University of NewfoundlandJDJean‐Luc DuboisBecton Dickinson (Netherlands)AAAline AurouxUniversité Claude Bernard Lyon 1

Key Points

  • The research aims to investigate the efficiency of saponite clays in the catalytic dehydration of isopropanol to propylene and compare their performance with other catalysts.
  • Characterization of catalysts using XRD, N2 sorption isotherms, TGA-IR, FTIR, microcalorimetry, and solid-state NMR.
  • Use of a pulse catalytic reactor for performance evaluation.
  • Comparison of catalytic activities across different temperature regimes.
  • Clays demonstrated superior catalytic performance compared to amorphous silica-aluminas below 150°C.
  • Zeolite showed high conversion rates but low selectivity to propylene (10%), making it less suitable for this application.
  • Catalyst performance linked to optimal activation temperatures and maintaining structural stability.

Abstract

ABSTRACT The potential of saponite clays, hydrous magnesium silicates with low content of aluminium, is investigated in the selective isopropanol catalytic dehydration to propylene. Their performances are compared with the activity of montmorillonite clays, low‐alumina zeolite and amorphous silica–aluminas. All solids were characterized by XRD, N 2 sorption isotherms, TGA‐IR, NH 3 adsorption FTIR, NH 3 /SO 2 adsorption microcalorimetry, and solid‐state 1 H and 2 7 Al NMR. The physico‐chemical analyses show that the samples are predominantly mesoporous, except zeolite, with BET surface areas ranging from 130 to 430 m 2 /g. All catalysts display acidic character and are thermally stable below 300°C. Their catalytic performances were evaluated by using a pulse catalytic reactor set inside a calorimeter (DSC‐GC). This technique offers a convenient way to screen industrially relevant temperature regimes that balance activity, selectivity and process economy of different type of solids. Catalytic testing revealed that below 150°C, clays outperformed amorphous silica‐aluminas, whereas the zeolite, although giving high conversion, is not suitable for the application due to a low selectivity to propylene (10%). An optimized activation temperature is the key parameter allowing clays to preserve structural stability, moderate surface area with favorable pore structure and to maintain a suitable number of acid sites.

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Cite This Study

Nguyen et al. (2026) studied this question.

synapsesocial.com/papers/699d3ff8de8e28729cf64e0chttps://doi.org/10.1002/cctc.202600015
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