Direct Observation of Topological Defects in Striped Block Copolymer Discs and Polymersomes

Gröschel TI, Wong CK, Haataja J., Dias M., Gröschel AH

Forschungsartikel (Zeitschrift) | Peer reviewed

Zusammenfassung

Topology and defects are of fundamental importance for ordered structures on all length scales. Despite extensive research on block copolymer self-assembly in solution, knowledge about topological defects and their effect on nanostructure formation has remained limited. Here, we report on the self-assembly of block copolymer discs and polymersomes with a cylinder line pattern on the surface that develops specific combinations of topological defects to satisfy the Euler characteristics for closed spheres as described by Gauss−Bonnet theorem. The dimension of the line pattern allows the direct visualization of defect emergence, evolution, and annihilation. On discs, cylinders either form end-caps that coincide with λ+1/2 disclinations or they bend around τ+1/2 disclinations in 180° turns (hairpin loops). On polymersomes, two λ+1/2 defects connect into three-dimensional (3D) Archimedean spirals, while two τ+1/2 defects form 3D Fermat spirals. Electron tomography reveals two complementary line patterns on the inside and outside of the polymersome membrane, where λ+1/2 and τ+1/2 disclinations always eclipse on opposing sides (“defect communication”). Attractive defects are able to annihilate with each other into +1 disclinations and stabilize anisotropic polymersomes with sharp tips through screening of high-energy curvature. This study fosters our understanding of the behavior of topological defects in self-assembled polymer materials and aids in the design of polymersomes with preprogrammed shapes governed by synthetic block length and topological rules.

Details zur Publikation

FachzeitschriftACS Nano
Jahrgang / Bandnr. / Volume14
Seitenbereich4829-4838
StatusVeröffentlicht
Veröffentlichungsjahr2020 (03.04.2020)
Sprache, in der die Publikation verfasst istEnglisch
Stichwörterblock copolymers; electron tomography; polymersomes; self-assembly; topological defects

Autor*innen der Universität Münster

Gröschel, Andre

Projekte, aus denen die Publikation entstanden ist

Laufzeit: 01.02.2020 - 31.07.2023
Gefördert durch: DFG - Emmy Noether-Programm
Art des Projekts: Gefördertes Einzelprojekt