Fully Degradable Polyphosphoester Cubosomes for Sustainable Agrochemical Delivery

Author:

Azhdari Suna12,Linders Jürgen3,Coban Deniz1,Stank Tim Julian4,Dargel Carina1,Gojzewski Hubert2,Hellweg Thomas4,Gröschel André H.15,Wurm Frederik R.2ORCID

Affiliation:

1. Institute for Physical Chemistry and Center for Soft Nanoscience (SoN) University of Münster Corrensstraße 28–30 48149 Münster Germany

2. Sustainable Polymer Chemistry (SPC) Department of Molecules and Materials MESA+ Institute for Nanotechnology Faculty of Science and Technology University of Twente P.O. Box 217 Enschede 7500 AE Netherlands

3. Physical Chemistry University Duisburg‐Essen Universitätsstr. 2 45141 Essen Germany

4. Physical and Biophysical Chemistry Bielefeld University Universitätsstr. 25 33615 Bielefeld Germany

5. Polymer Materials for Energy Storage (PES) Macromolecular Chemistry and Bavarian Center for Battery Technology University of Bayreuth Weiherstraße 26 95448 Bayreuth Germany

Abstract

AbstractMicroplastic pollution and the urgent need for sustainable agriculture have raised interest in developing degradable carriers for controlled agrochemical release. Porous polymeric particles are particularly promising due to their unique release profiles compared to solid or core‐shell carriers. However, creating degradable, mesoporous (2–50 nm) microparticles is challenging, and their potential for agrochemical delivery is largely unexplored. A straightforward self‐assembly method is demonstrated for fully degradable porous polymer cubosomes (PCs), showcasing their ability to load and release agrochemicals. Using fully degradable block copolymers (BCPs), poly(ethyl ethylene phosphate)‐b‐polylactide (PEEP‐b‐PLA), PCs are synthesized in water with high inner order and open pores averaging 19 ± 3 nm in diameter. During the self‐assembly process in the presence of the hydrophobic fungicide tebuconazole, polymersomes transform into PCs by enriching the hydrophobic polymer domain and altering the BCP packing parameter. After self‐assemby, highly porous and fungicide‐loaded PCs are obtained. Fungicide‐loaded PCs show high antimycotic activity against Botrytis cinerea (grey mold), adhere to Vitis vinifera Riesling leaves even after simulated rain, and release the fungicide continuously over several days with different release‐kinetics compared to solid particles. PCs hydrolyze completely into lactic acid and phosphate derivatives, highlighting their potential as microplastic‐free agrochemical delivery systems for sustainable agriculture.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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