Ultrasound-Generated Cyclodextrin–Amino Acid Inclusion Complex with NH3+-Mediated Chalcone Activation: Metal-Free Catalysis Surpassing Nanoparticles

Abstract

Efficient cycloaddition of chalcones remains challenging due to extensive π-delocalization and steric shielding of the α,β-unsaturated carbonyl unit, which limit classical Lewis-acid activation strategies. Here, we report a metal-free supramolecular organocatalytic platform that enables selective chalcone activation through noncovalent Lewis-acidic interactions. The catalyst comprises NH3+-bearing amino acids embedded within cyclodextrin inclusion complexes, assembled via ultrasound energy. Mechanistically, directional N–H···O hydrogen bonding and localized electrostatic polarization activate the chalcone carbonyl, while cyclodextrin-mediated confinement enforces productive orientation and transition-state stabilization. This compact activation mode overcomes steric constraints imposed by bulky aromatic substituents, delivering cycloaddition reactions with enhanced activity providing the yields up to 97% under mild conditions in ethanol. The system outperforms conventional metal nanoparticle-based catalysts, preserves substrate integrity, and exhibits broad functional-group tolerance. This work establishes a generalizable, sustainable paradigm for chalcone cycloaddition catalysis by synergistically integrating organocatalytic Lewis acidity with supramolecular confinement.

Supplementary files

Article information

Article type
Paper
Submitted
12 Mar 2026
Accepted
22 May 2026
First published
10 Jun 2026

Green Chem., 2026, Accepted Manuscript

Ultrasound-Generated Cyclodextrin–Amino Acid Inclusion Complex with NH3+-Mediated Chalcone Activation: Metal-Free Catalysis Surpassing Nanoparticles

D. Tagra, M. Guleria and J. Agarwal, Green Chem., 2026, Accepted Manuscript , DOI: 10.1039/D6GC01518B

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