4.7 Article

One-pot construction of epoxy resin nanocarrier delivering abamectin and its efficacy on plant root-knot nematodes

Journal

PEST MANAGEMENT SCIENCE
Volume 79, Issue 9, Pages 3103-3113

Publisher

JOHN WILEY & SONS LTD
DOI: 10.1002/ps.7486

Keywords

nanocapsule; nanosuspension system; epoxy resin; diamine curing agent; dynamic stability

Ask authors/readers for more resources

Nanocapsules loaded with abamectin were prepared by interfacial polymerization using epoxy resin (ER) and diamine as monomers. The influence of primary amine and tertiary amine on the shell strength and dynamic stability of the nanocapsules was systematically studied. The nanocapsules formed by crosslinked epoxy resin had stable structure and strong shell strength, exhibiting excellent storage stability and biological activity.
BACKGROUNDThe complex preparation process and storage instability of nanoformulations hinders their development and commercialization. In this study, nanocapsules loaded with abamectin were prepared by interfacial polymerization at room temperature and ordinary pressure using the monomers of epoxy resin (ER) and diamine. The potential mechanisms of primary amine and tertiary amine in influencing the shell strength of the nanocapsules and the dynamic stability of abamectin nanocapsules (Aba@ER) in the suspension system were systematically researched. RESULTSThe tertiary amine catalyzed the self-polymerization of epoxy resin into linear macromolecules with unstable structures. The structural stability of the diamine curing agent with a primary amine group played a key role in enhancing the structural stability of the polymers. The intramolecular structure of the nanocapsule shell formed by isophorondiamine (IPDA) crosslinked epoxy resin has multiple spatial conformations and a rigid saturated six-membered ring. Its structure was stable, and the shell strength was strong. The formulation had stable dynamic changes during storage and maintained excellent biological activity. Compared with emulsifiable concentrate (EC), Aba@ER/IPDA had superior biological activity, and the field efficacy on tomato root-knot nematode was enhanced by approximately 31.28% at 150 days after transplanting. CONCLUSIONAba@ER/IPDA, which has excellent storage stability and simple preparation technology, can provide a nanoplatform with industrial prospects for efficient pesticide delivery. (c) 2023 Society of Chemical Industry.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.7
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available