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Construction of Lambda-Cyhalothrin Nano-Delivery System with a High Loading Content and Controlled-Release Property

机译:具有高负载量和可控释放性能的λ-氯氟氰菊酯纳米传递系统的构建

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摘要

Traditional pesticide formulations are limited by large organic solvent consumption, poor dispersibility, and poor foliar adhesion, resulting in low effective pesticides utilization and environmental pollution. To prolong the foliar pesticide retention and release time, a high lambda-cyhalothrin (LC)-loaded nano-delivery system was constructed, using polylactic acid (PLA) as a carrier through a solvent evaporation method. The obtained results showed that the stabilizer concentration, water–oil ratio, and carrier content exert a major influence on the LC loading, particle size, and size distribution. The prepared LC/PLA nanoparticles have a uniform spherical shape with a smooth surface. The size of the nanoparticles was less than 200 nm, and the LC loading capacity reached up to 46.6 wt.%, with a high encapsulation efficiency (exceeding 90%). Adjustment of the shear and ultrasonic time changed the size of the nanoparticles. Significant differences were found in the sustained release properties of LC/PLA nanoparticles with different LC loadings. The foliage adhesion of the LC nano-delivery system far exceeded that of the commercial LC formulation due to a low surface tension and a low contact angle, this foliage adhesion would greatly help to improve pesticide utilization.
机译:传统农药制剂受到有机溶剂消耗量大,分散性差和叶面附着力差的限制,导致农药有效利用率低和环境污染。为了延长叶面农药的保留和释放时间,使用聚乳酸(PLA)作为载体,通过溶剂蒸发法构建了高载氟氯氰菊酯(LC)负载的纳米传递系统。获得的结果表明,稳定剂的浓度,水油比和载体含量对LC的负载量,粒径和粒径分布有重大影响。制备的LC / PLA纳米颗粒具有均匀的球形和光滑的表面。纳米颗粒的尺寸小于200nm,并且LC负载容量达到高达46.6wt。%,具有高的包封效率(超过90%)。剪切和超声时间的调节改变了纳米颗粒的尺寸。发现在具有不同LC负载的LC / PLA纳米颗粒的持续释放特性中存在显着差异。由于低表面张力和低接触角,LC纳米输送系统的叶面附着力远远超过了商业LC配方,其叶面附着力将极大地帮助提高农药利用率。

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