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Published on: January 20, 2017
Interfacial Engineering of Fatty Alcohol Polyoxyethylene Ether Enables Lesion-Targeted Deposition on
Yinghao Zhi1, Shijie Li1, Yanyang Zhang1
1College of Plant Protection, Shanxi Agricultural University, Taiyuan, Shanxi030031, People's Republic of China.
None:
Pathogen infection creates heterogeneous, rough leaf interfaces that hinder pesticide deposition at disease lesions. Here, we report an interfacial engineering strategy using fatty alcohol polyoxyethylene ether surfactants (AEO-4 to AEO-7) to achieve selective deposition on apple Alternaria blotch lesions. Through interfacial characterization (surface free energy, roughness, contact angle), high-speed droplet impact analysis, and energy dissipation modeling, we systematically evaluated the structure-activity relationship of AEO surfactants. Field validation was conducted under natural disease conditions to assess control efficacy and spray volume reduction. Infection induced a Cassie-Baxter wetting barrier on lesions due to increased roughness (Sq up to 39.3 μm) and chemical heterogeneity. AEO-4 at 0.05 wt% (≥5 × CMC) optimally reduced surface tension to 27.12 mN·m-1, suppressed droplet rebound, and promoted selective retention via surface tension reduction, micellar permeation, and topological locking. The energy dissipation rate on lesions reached 72.4%, yielding 3.2-fold higher deposition than pure water. Field trials demonstrated that 0.05 wt% AEO-4 enabled 35.5% reduction in spray volume and 52.93% reduction in active ingredient while maintaining ∼85% control efficacy equivalent to high-concentration treatments.

