Chitosan-EDTA-Cellulose network as a green, recyclable and multifunctional biopolymeric organocatalyst for the one-pot synthesis of 2-amino-4H-pyran derivatives

Сеть хитозан–ЭДТА–целлюлоза как экологичный, регенерируемый и многофункциональный биополимерный органокатализатор для однореакторного синтеза производных 2-амино-4H-пирана
Mohammad G. Dekamin, Ehsan Valiey, Negin Rostami, Hamidreza Fanimoghadam
2022-05-23

2-amino-4H-pyran synthesisChitosan-EDTA-cellulose networkHeterogeneous organocatalystRecyclable nanocatalystThree-component synthesis
In this research, cellulose grafted to chitosan by EDTA (Cs-EDTA-Cell) bio-based material is reported and characterized by a series of various methods and techniques such as FTIR, DRS-UV-Vis, TGA, FESEM, XRD and EDX analysis. In fact, the Cs-EDTA-Cell network is more thermally stable than pristine cellulose or chitosan. There is a plenty of both acidic and basic sites on the surface of this bio-based and biodegradable network, as a multifunctional organocatalyst, to proceed three-component synthesis of 2-amino-4H-pyran derivatives at room temperature in EtOH. The Cs-EDTA-Cell nanocatalyst can be easily recovered from the reaction mixture by using filtration and reused for at least five times without significant decrease in its catalytic activity. In general, the Cs-EDTA-Cell network, as a heterogeneous catalyst, demonstrated excellent catalytic activity in an environmentally-benign solvent to afford desired products in short reaction times and required simple experimental and work-up procedure compared to many protocols using similar catalytic systems.
1
A cellulose-grafted chitosan network linked by EDTA was developed as a bio-based, biodegradable heterogeneous organocatalyst.
2
Cs-EDTA-Cell is readily recovered by filtration and reused for at least five cycles without significant loss of catalytic activity.
3
Its surface contains abundant acidic and basic sites, enabling multifunctional catalysis of three-component 2-amino-4H-pyran synthesis at room temperature in ethanol.
4
The Cs-EDTA-Cell network exhibits greater thermal stability than pristine cellulose and chitosan.
5
The catalyst provides short reaction times with simple experimental and work-up procedures under environmentally benign conditions.

Cs-EDTA-Cell (chitosan–EDTA–cellulose) biopolymeric network used as a heterogeneous organocatalyst

The network’s multifunctional catalytic performance, thermal stability, recyclability, and efficiency in the one-pot three-component synthesis of 2-amino-4H-pyran derivatives

Publication Details
Publication Date
2022-05-23
Journal
Publisher
ISSN
Cited by
63
Access Type
Author Information
Authors
Mohammad G. Dekamin
Ehsan Valiey
Negin Rostami
Hamidreza Fanimoghadam
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%