Solvent-free pesticide encapsulation and delivery using water-soluble bioderived polymers

Technology
Conceptual
University

An organic solvent-free encapsulation technology that uses oppositely charged bioderived polymers to coat pesticides via salt-induced phase separation. The approach enables customizable adhesion, controlled release, and tunable degradation, offering an economical and environment-friendly alternative to conventional pesticide delivery.

Overview

This technology offers a sustainable alternative to conventional pesticide encapsulation by eliminating the need for large volumes of organic solvents. It uses oppositely charged, water-soluble polymers that interact electrostatically in water and assemble into polymer-rich phases. When a salt-loaded aqueous solution containing polymers and pesticide cargo is sprayed into salt-free water, the salt screens the electrostatic interactions and triggers precipitation, forming a polymeric shell around the active ingredient. The approach supports both hydrophobic and hydrophilic pesticides and enables tunable adhesion to leaf surfaces, sustained release, and controlled degradation.

Technical specifications

Core mechanism:

  • Salt-inversion phase separation of polyelectrolyte complexes in aqueous media
  • Spray-triggered precipitation of polymer-pesticide mixtures into salt-free water
  • Patented stabilization of polyelectrolyte phases using commercially available polymers

Polymer systems under investigation:

  • Synthetic polyelectrolytes including polyacrylic acid, polyallylamine hydrochloride, and polystyrene sulfonate
  • Bioderived degradable polymers including chitosan, hyaluronic acid, and polylipoic acid
  • Polymer architectures incorporating imine moieties designed to degrade on exposure to CO2 for triggered cargo release

Process advantages:

  • Organic solvent-free manufacturing reduces environmental impact and cost
  • Polymer diversity enables customization for different leaf surfaces, cargo types, and release profiles
  • Variable injection rates and concentrations allow control over shell formation and encapsulation efficiency
Technology readiness level

The underlying principles of polyelectrolyte complexation and salt-triggered phase separation are well established in both theory and experiment, with active research in encapsulation of active cargo. The research group has patented a stabilization mechanism for these aqueous phases using inexpensive, commercially available polyelectrolytes. Future validation will focus on controlling precipitation during spraying, screening polymer candidates for encapsulation efficiency across cargo types, and characterizing CO2-triggered degradation and release behavior. The technology is at an early-to-mid stage of development, moving from laboratory validation toward broader application testing.


About University of California, Los Angeles

The University of California, Los Angeles is a comprehensive public research university anchored in a global city and serving a large, diverse student body. Industry engages through an integrated academic health system that enables clinical research and translation, extensive shared instrumentation and cleanrooms, and co‑located labs that support prototyping. A new research and technology park and proximity to Southern California’s innovation economy provide convenient pathways for collaboration, sponsored projects, and access to talent. Campus research is supported by competitive federal funding from agencies such as NIH, NSF, DOE, and the Department of Defense. A dedicated technology transfer office streamlines IP protection, licensing, industry‑sponsored research, and startup incubation.

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