Aqueous Self‐Assembly of Cylindrical and Tapered Bottlebrush Block Copolymers
Abstract
Abstract The self‐assembly of amphiphilic bottlebrush block copolymers (BCPs), featuring backbones densely grafted with two types of side chains, is less well understood compared to linear BCPs. In particular, the solution self‐assembly of tapered bottlebrush BCPs—cone‐shaped BCPs with hydrophilic or hydrophobic tips—remains unexplored. This study investigates eight tapered and four cylindrical bottlebrush BCPs with varied ratios of hydrophobic polystyrene (PS) and hydrophilic poly(acrylic acid) (PAA) side chains, synthesized via sequential addition of macromonomers using ring‐opening metathesis polymerization (SAM‐ROMP). Self‐assembled nanostructures formed in water were analyzed using cryogenic transmission electron microscopy, small‐angle neutron scattering, and dynamic light scattering. Most BCPs generated multiple nanostructures with surface protrusions, including spherical micelles, cylindrical micelles, and vesicles, alongside transitional forms like ellipsoids and semi‐vesicles. Coarse‐grained molecular dynamics simulations supported the experimental findings, which revealed two distinct self‐assembly pathways. The first involved micelle fusion, producing elliptical and cylindrical aggregates, sometimes forming Y‐junctions. The second pathway featured micelle maturation into semivesicles, which developed into vesicles or large compound vesicles. This work provides the first experimental evidence of vesicle formation via semivesicles in bottlebrush BCPs and demonstrates the significant influence of cone directionality on self‐assembly behavior in these cone‐shaped polymeric amphiphiles.
Article Details
Authors (9)
Clark Vu
Department of Chemistry and Macromolecules Innovation Institute Virginia Tech Blacksburg Virginia USA
Narjess Abu Amara
Department of Chemical Engineering Ben‐Gurion University of the Negev Beer‐Sheva Israel
Mohammed Alaboalirat
Macromolecules Innovation Institute Virginia Tech Blacksburg VA 24061 USA
Einat Nativ‐Roth
Ilse Katz Institute for Nanoscale Science and Technology Ben‐Gurion University of the Negev Beer‐Sheva Israel
Ran Zalk
Ilse Katz Institute for Nanoscale Science and Technology, Ben-Gurion University of the Negev
Wellington Leite
Jan‐Michael Carrillo
Center for Nanophase Materials Sciences Oak Ridge National Laboratory Oak Ridge TN 37831 USA
Ronit Bitton
Department of Chemical Engineering Ben‐Gurion University of the Negev Beer‐Sheva Israel
John B. Matson
Department of Chemistry and Macromolecules Innovation Institute Virginia Tech Blacksburg Virginia USA