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凝聚增强喷雾农药在疏水/超疏水背面叶片表面的沉积。

Coacervate-Enhanced Deposition of Sprayed Pesticide on Hydrophobic/Superhydrophobic Abaxial Leaf Surfaces.

机构信息

CAS Key Laboratory of Colloid Interface and Chemical Thermodynamics, CAS Research/Education Center for Excellence in Molecular Sciences, Beijing National Laboratory for Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, P. R. China.

University of Chinese Academy of Sciences, Beijing, 100190, P. R. China.

出版信息

Adv Sci (Weinh). 2023 Jun;10(18):e2300270. doi: 10.1002/advs.202300270. Epub 2023 Apr 20.

Abstract

Deposition of high-speed droplets on inverted surfaces is important to many fundamental scientific principles and technological applications. For example, in pesticide spraying to target pests and diseases emerging on abaxial side of leaves, the downward rebound and gravity of the droplets make the deposition exceedingly difficult on hydrophobic/superhydrophobic leaf underside, causing serious pesticide waste and environmental pollution. Here, a series of bile salt/cationic surfactant coacervates are developed to attain efficient deposition on the inverted surfaces of diverse hydrophobic/superhydrophobic characteristics. The coacervates have abundant nanoscale hydrophilic/hydrophobic domains and intrinsic network-like microstructures, which endow them with efficient encapsulation of various solutes and strong adhesion to surface micro/nanostructures. Thus, the coacervates with low viscosity achieve high-efficient deposition on superhydrophobic abaxial-side of tomato leaves and inverted artificial surfaces with a water contact angle from 170° to 124°, much better than that of commercial agricultural adjuvants. Intriguingly, the compactness of network-like structures dominantly controls adhesion force and deposition efficiency, and the most crowded one leads to the most efficient deposition. The tunable coacervates can help comprehensively understand the complex dynamic deposition, and provide innovative carriers for depositing sprayed pesticides on abaxial and adaxial sides of leaves, thereby potentially reducing pesticide use and promoting sustainable agriculture.

摘要

高速液滴在倒置表面上的沉积对于许多基础科学原理和技术应用都很重要。例如,在农药喷洒以靶向叶片背面出现的病虫害时,液滴的向下反弹和重力使得在疏水/超疏水叶片下表面上的沉积变得非常困难,导致严重的农药浪费和环境污染。在这里,开发了一系列胆汁盐/阳离子表面活性剂共凝聚物,以实现在各种具有不同疏水/超疏水特性的倒置表面上的高效沉积。共凝聚物具有丰富的纳米级亲水/疏水区域和内在的网络状微观结构,这使它们能够有效地包封各种溶质,并与表面微/纳米结构具有强烈的粘附性。因此,具有低粘度的共凝聚物可以在疏水性超疏水番茄叶片的背面和水接触角从 170°到 124°的倒置人工表面上实现高效沉积,这比商业农业助剂要好得多。有趣的是,网络状结构的紧密程度主要控制着粘附力和沉积效率,而最密集的结构则导致了最高效的沉积。可调谐的共凝聚物可以帮助全面理解复杂的动态沉积,并为在叶片的背面和正面沉积喷洒的农药提供创新载体,从而有可能减少农药的使用并促进可持续农业。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5316/10288258/8c03bca2a523/ADVS-10-2300270-g001.jpg

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