R&D Division, Firmenich Inc., Plainsboro, New Jersey 08536, United States.
Chemical & Biomolecular Engineering, Johns Hopkins University, Baltimore, Maryland 21218, United States.
ACS Appl Mater Interfaces. 2022 Sep 14;14(36):41499-41507. doi: 10.1021/acsami.2c08305. Epub 2022 Aug 30.
We report the development of novel mineralized protein microcapsules to address critical challenges in the environmental impact and performance of consumer, pharmaceutical, agrochemical, cosmetic, and paint products. We designed environment-friendly capsules composed of proteins and biominerals as an alternative to solid microplastic particles or core-shell capsules made of nonbiodegradable synthetic polymeric resins. We synthesized mineralized capsule surface morphologies to mimic the features of natural pollens, which dramatically improved the deposition of high value-added fragrance chemicals on target substrates in realistic application conditions. A mechanistic model accurately captures the observed enhanced deposition behavior and shows how surface features generate an adhesive torque that resists shear detachment. Mineralized protein capsule performance is shown to depend both on material selection that determines van der Waals attraction and on capsule-substrate energy landscapes as parameterized by a geometric taxonomy for surface morphologies. These findings have broad implications for engineering multifunctional environmentally friendly delivery systems.
我们报告了新型矿化蛋白微胶囊的开发,以解决消费者、制药、农化、化妆品和涂料产品在环境影响和性能方面的关键挑战。我们设计了环保型胶囊,由蛋白质和生物矿化材料组成,替代固体微塑料颗粒或由不可生物降解的合成聚合物树脂制成的核壳胶囊。我们合成了矿化胶囊表面形态,以模拟天然花粉的特征,这极大地提高了高附加值香料化学品在现实应用条件下目标基底上的沉积。一个机械模型准确地捕捉到了观察到的增强沉积行为,并展示了表面特征如何产生抵抗剪切分离的粘附扭矩。矿化蛋白胶囊的性能取决于材料选择,这决定了范德华吸引力,还取决于胶囊-基底能量景观,这由表面形态的几何分类法参数化。这些发现对工程多功能环保输送系统具有广泛的意义。