School of Chemistry and Chemical Engineering, Queen's University Belfast, University Road, Belfast, BT7 1NN, UK.
Key Laboratory for Advanced Materials, Joint International Research Laboratory of Precision Chemistry and Molecular Engineering, Feringa Nobel Prize Scientist Joint Research Center, School of Chemistry and Molecular Engineering, East China University of Science & Technology, Shanghai, 200237, PR China.
Nat Commun. 2023 Mar 13;14(1):1392. doi: 10.1038/s41467-023-37001-1.
Pickering emulsions represent an important class of functional materials with potential applications in sustainability and healthcare. Currently, the synthesis of Pickering emulsions relies heavily on the use of strongly adsorbing molecular modifiers to tune the surface chemistry of the nanoparticle constituents. This approach is inconvenient and potentially a dead-end for many applications since the adsorbed modifiers prevent interactions between the functional nanosurface and its surroundings. Here, we demonstrate a general modifier-free approach to construct Pickering emulsions by using a combination of stabilizer particles, which stabilize the emulsion droplet, and a second population of unmodified functional particles that sit alongside the stabilizers at the interface. Freeing Pickering emulsions from chemical modifiers unlocks their potential across a range of applications including plasmonic sensing and interfacial catalysis that have previously been challenging to achieve. More broadly, this strategy provides an approach to the development of surface-accessible nanomaterials with enhanced and/or additional properties from a wide range of nano-building blocks including organic nanocrystals, carbonaceous materials, metals and oxides.
Pickering 乳液是一类具有重要应用潜力的功能材料,可应用于可持续性和医疗保健领域。目前,Pickering 乳液的合成严重依赖于使用强吸附分子修饰剂来调整纳米颗粒成分的表面化学性质。这种方法既不方便,又可能在许多应用中成为死胡同,因为吸附的修饰剂阻止了功能纳米表面与其周围环境之间的相互作用。在这里,我们通过使用稳定颗粒(稳定乳液液滴)和第二组未修饰的功能颗粒的组合,展示了一种通用的无修饰剂方法来构建 Pickering 乳液,这些功能颗粒位于稳定剂旁边的界面上。使 Pickering 乳液摆脱化学修饰剂的束缚,可以在一系列应用中释放其潜力,包括等离子体传感和界面催化,这些应用以前一直难以实现。更广泛地说,该策略为开发具有增强和/或附加特性的表面可及纳米材料提供了一种方法,这些纳米材料可由包括有机纳米晶体、碳质材料、金属和氧化物在内的各种纳米构建块来制备。