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March 14, 2026Langmuir1 citations

Bioadhesive and pH-Responsive ZnO@Polydopamine Core–Shell Nanocarriers for Intelligent Pesticide Delivery and Synergistic Antifungal Action

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CZChao ZhangYLYunyou LvMGMeiqi Guan

Key Points

  • This research focuses on developing intelligent nanocarriers that improve pesticide delivery and effectiveness.
  • Constructed core-shell nanocarriers with prochloraz-loaded ZnO nanoparticles and polydopamine shell.
  • Evaluated adhesion properties and pesticide release behavior under varying pH levels.
  • Assessed photostability and photothermal conversion effects in the nanocarriers.
  • Achieved 76% targeted release of prochloraz at pH 5.4.
  • Demonstrated a 23.3-fold increase in photostability due to the ZnO core.
  • Maintained antifungal inhibition rates exceeding 60% after 7 days of light exposure.

Abstract

The development of intelligent nanocarriers capable of overcoming the intrinsic limitations of conventional pesticides, including poor foliar adhesion, photodegradation, and nonspecific release, remains a major challenge in agrochemical science. Herein, we report a multifunctional core-shell nanocarrier (Pro@ZnO@PDA, denoted as PZP NPs) constructed via interfacial engineering, in which prochloraz-loaded ZnO nanoparticles (ZnO NPs) are encapsulated within a polydopamine (PDA) shell. The rough surface of the ZnO core enables a high pesticide loading capacity of 12%, while the PDA shell markedly enhances leaf adhesion, reducing the contact angle on plant leaves by 25.4%, thereby improving foliar retention. Benefiting from acid-sensitive interfacial dissociation between the PDA shell and ZnO core, the nanocarrier exhibits pH-responsive release behavior, achieving a targeted prochloraz release of 76% under acidic conditions (pH 5.4). In addition, the ZnO core effectively shields the active ingredient from ultraviolet irradiation, resulting in a 23.3-fold enhancement in photostability, whereas the PDA shell provides efficient photothermal conversion, inducing an elevation of temperature up to 38.8 °C under light exposure. The integration of controlled chemical release and photothermal effects gives rise to a synergistic antifungal mechanism, maintaining an inhibition rate exceeding 60% after 7 days of irradiation. Notably, PZP NPs exhibit bidirectional translocation within plants, addressing the limited systemic transport of conventional fungicides. This work demonstrates an interfacial-engineered, stimulus-responsive nanoplatform that offers a promising strategy for intelligent and efficient pesticide delivery.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69b4ad7918185d8a39800d70https://doi.org/10.1021/acs.langmuir.6c00283
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

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