Magnetic Aerogels for Room-Temperature Catalytic Production of Bis(indolyl)methane Derivatives

Author:

Melis Nicola1ORCID,Loche Danilo2,Thakkar Swapneel V.3,Cutrufello Maria Giorgia3ORCID,Sini Maria Franca3,Sedda Gianmarco3,Pilia Luca1ORCID,Frongia Angelo3ORCID,Casula Maria Francesca1

Affiliation:

1. Department of Mechanical, Chemical and Materials Engineering, University of Cagliari, 09123 Cagliari, Italy

2. Nanostructures & Biotech Laboratory, Biological and Environmental Science and Engineering (BESE) Division, King Abdullah University of Science and Technology, Thuwal 23955-6900, Saudi Arabia

3. Department of Chemical and Geological Sciences, University of Cagliari, 09042 Monserrato, Italy

Abstract

The potential of aerogels as catalysts for the synthesis of a relevant class of bis-heterocyclic compounds such as bis(indolyl)methanes was investigated. In particular, the studied catalyst was a nanocomposite aerogel based on nanocrystalline nickel ferrite (NiFe2O4) dispersed on amorphous porous silica aerogel obtained by two-step sol–gel synthesis followed by gel drying under supercritical conditions and calcination treatments. It was found that the NiFe2O4/SiO2 aerogel is an active catalyst for the selected reaction, enabling high conversions at room temperature, and it proved to be active for three repeated runs. The catalytic activity can be ascribed to both the textural and acidic features of the silica matrix and of the nanocrystalline ferrite. In addition, ferrite nanocrystals provide functionality for magnetic recovery of the catalyst from the crude mixture, enabling time-effective separation from the reaction environment. Evidence of the retention of species involved in the reaction into the catalyst is also pointed out, likely due to the porosity of the aerogel together with the affinity of some species towards the silica matrix. Our work contributes to the study of aerogels as catalysts for organic reactions by demonstrating their potential as well as limitations for the room-temperature synthesis of bis(indolyl)methanes.

Funder

The University of Cagliari

Publisher

MDPI AG

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