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Published October 4, 2013 | public
Journal Article

Highly Ordered Dielectric Mirrors via the Self-Assembly of Dendronized Block Copolymers

Abstract

Dendronized block copolymers were synthesized by ruthenium-mediated ring-opening methathesis polymerization of exo-norbornene functionalized dendrimer monomers, and their self-assembly to dielectric mirrors was investigated. The rigid-rod main-chain conformation of these polymers drastically lowers the energetic barrier for reorganization, enabling their rapid self-assembly to long-range, highly ordered nanostructures. The high fidelity of these dielectric mirrors is attributed to the uniform polymer architecture achieved from the construction of discrete dendritic repeat units. These materials exhibit lightreflecting properties due to the multilayer architecture, presenting an attractive bottom-up approach to efficient dielectric mirrors with narrow band gaps. The wavelength of reflectance scales linearly with block-copolymer molecular weight, ranging from the ultraviolet, through the visible, to the near-infrared. This allows for the modulation of photonic properties through synthetic control of the polymer molecular weight. This work represents a significant advancement in closing the gap between the precision obtained from top-down and bottom-up approaches.

Additional Information

© 2013 American Chemical Society. Received: August 6, 2013. Published: October 4, 2013. We gratefully acknowledge Ron Synowicki and Nina Hong at J.A. Woollam Co., Inc. for their measurement and fitting of the refractive indices of these polymers. Reflection measurements were collected at the Molecular Materials Research Center of the Beckman Institute of the California Institute of Technology. This work was supported by a Dow-Resnick Bridge Award. This research was conducted with Government support under and awarded by DoD, Air Force Office of Scientific Research, National Defense Science and Engineering Graduate (NDSEG) Fellowship (32 CFR 168a).

Additional details

Created:
August 19, 2023
Modified:
October 25, 2023