Han Kang, Go Dennis, Hoenders Daniel, Kuehne Alexander J C, Walther Andreas
DWI - Leibniz-Institute for Interactive Materials, Forckenbeckstraße 50, 52074 Aachen, Germany.
Institute for Macromolecular Chemistry and Freiburg Materials Research Center, Albert-Ludwigs-University Freiburg, Stefan-Meier-Str. 21 & 31, 79104 Freiburg, Germany.
ACS Macro Lett. 2017 Mar 21;6(3):310-314. doi: 10.1021/acsmacrolett.7b00053. Epub 2017 Mar 9.
Supramolecular engineering of multibody colloidal systems provides flexible ways of manipulating superstructures and material properties. We investigate a coassembling microgel (MG) system, in which host- and guest-modified MG partners coassemble by molecular recognition, and show in detail how electrostatic repulsion needs to be balanced for the supramolecular recognition to take place. We observe a gradual change from repellent MGs to stable clusters and ordered flocculates upon decreasing electrostatic repulsion. The adaptive nature of the multivalent interactions embedded in the soft MG shell leads to kinetically trapped scenarios and fibril formation from spherical building blocks.
多体胶体系统的超分子工程为操纵超结构和材料特性提供了灵活的方法。我们研究了一种共组装微凝胶(MG)系统,其中主体和客体修饰的MG伙伴通过分子识别进行共组装,并详细展示了为实现超分子识别需要如何平衡静电排斥力。我们观察到,随着静电排斥力的降低,MG从排斥状态逐渐转变为稳定的聚集体和有序的絮凝物。嵌入柔软MG壳层中的多价相互作用的适应性导致了动力学捕获情况以及球形构建块形成原纤维。