Wilson-Whitford Samuel R, Gao Jinghui, Gilchrist James F
School of Engineering, The University of Warwick, Coventry CV4 7AL, U.K.
Department of Chemical and Biomolecular Engineering, Lehigh University, Bethlehem, Pennsylvania 18015, United States.
J Phys Chem B. 2024 Jul 4;128(26):6394-6399. doi: 10.1021/acs.jpcb.4c02288. Epub 2024 May 23.
When forming composite microcapsules through the emulsification of a dispersed phase laden with microparticles, one will find that the microparticles become irreversibly embedded in the resulting microcapsule membrane. This phenomenon, known as Pickering stabilization, is detrimental when the end function of the microcapsules relies on the mobility of encapsulated microparticles within the capsule core. In this work, a robust microencapsulation route using density matching of non-Brownian microparticles in a binary solvent is shown to easily and effectively encapsulate particles, with >90% of particles retaining mobility within the microcapsules, without the necessity for prior chemical/physical modifications to the microparticles. This is proposed as a generalized method to be used for all manner of particle chemistries, shapes, and sizes.
当通过对负载有微粒的分散相进行乳化来形成复合微胶囊时,人们会发现微粒不可逆地嵌入到最终形成的微胶囊膜中。这种现象被称为皮克林稳定化,当微胶囊的最终功能依赖于包封在胶囊核心内的微粒的流动性时,这是有害的。在这项工作中,展示了一种稳健的微囊化途径,即在二元溶剂中利用非布朗微粒的密度匹配来轻松有效地包封颗粒,超过90%的颗粒在微胶囊内保持流动性,而无需对微粒进行预先的化学/物理修饰。这被提议作为一种通用方法,可用于各种颗粒化学性质、形状和尺寸。