Organic nanoparticles with tunable size and rigidity by hyperbranching and cross-linking using microemulsion ATRP

Author:

Yin Rongguan1ORCID,Tarnsangpradit Jirameth2,Gul Akhtar3,Jeong Jaepil1,Hu Xiaolei1,Zhao Yuqi2,Wu Hanshu1,Li Qiqi45,Fytas George45ORCID,Karim Alamgir3ORCID,Bockstaller Michael R.2ORCID,Matyjaszewski Krzysztof1ORCID

Affiliation:

1. Department of Chemistry, Carnegie Mellon University, Pittsburgh, PA 15213

2. Department of Materials Science and Engineering, Carnegie Mellon University, Pittsburgh, PA 15213

3. Department of Chemical and Biomolecular Engineering, University of Houston, Houston, TX 77204

4. Max Planck Institute for Polymer Research, Mainz 55128, Germany

5. Institute of Electronic Structure and Laser (IESL), Foundation for Research and Technology-Hellas (FORTH), Heraklion 70013, Greece

Abstract

Unlike inorganic nanoparticles, organic nanoparticles (oNPs) offer the advantage of “interior tailorability,” thereby enabling the controlled variation of physicochemical characteristics and functionalities, for example, by incorporation of diverse functional small molecules. In this study, a unique inimer-based microemulsion approach is presented to realize oNPs with enhanced control of chemical and mechanical properties by deliberate variation of the degree of hyperbranching or cross-linking. The use of anionic cosurfactants led to oNPs with superior uniformity. Benefitting from the high initiator concentration from inimer and preserved chain-end functionality during atom transfer radical polymerization (ATRP), the capability of oNPs as a multifunctional macroinitiator for the subsequent surface-initiated ATRP was demonstrated. This facilitated the synthesis of densely tethered poly(methyl methacrylate) brush oNPs. Detailed analysis revealed that exceptionally high grafting densities (~1 nm −2 ) were attributable to multilayer surface grafting from oNPs due to the hyperbranched macromolecular architecture. The ability to control functional attributes along with elastic properties renders this “bottom-up” synthetic strategy of macroinitiator-type oNPs a unique platform for realizing functional materials with a broad spectrum of applications.

Funder

NSF | MPS | Division of Materials Research

Publisher

Proceedings of the National Academy of Sciences

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