Blocky Selective Postpolymerization C–H Functionalization of Polyolefins

E Eliza K. Neidhart (Department of Chemistry The University of North Carolina at Chapel Hill Chapel Hill North Carolina 27599 USA) M Michelle E. Pomatto (Macromolecules Innovation Institute, Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA) C Chris Vasallo (Department of Chemistry The University of North Carolina at Chapel Hill Chapel Hill North Carolina 27599 USA) E Erin R. Crater (Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA) J Jill W. Alty P Polyxeni P. Angelopoulou (Chemical Science Division Oak Ridge National Lab Oak Ridge Tennessee 37830 USA) E Erik J. Alexanian (Department of Chemistry) L Logan T. Kearney (Chemical Science Division) R Robert B. Moore (Macromolecules Innovation Institute, Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA) F Frank A. Leibfarth (Department of Chemistry)

Abstract

Abstract C–H functionalization of commodity polyolefins affords functional materials derived from a high‐volume, low‐cost resource. However, current postpolymerization modification strategies result in randomly distributed functionalization along the length of the polymer backbone, which has a negative impact on the crystallinity of the resultant polymers, and thus the thermomechanical properties. Here, we demonstrate an amidyl radical mediated C–H functionalization of polyolefins to access blocky microstructures, which exhibit a higher crystalline fraction, larger crystallite size, and improved mechanical properties compared to their randomly functionalized analogues. Taking inspiration from the site‐selective C–H functionalization of small molecules, we leverage the steric protection provided by crystallites and target polymer functionalization to amorphous domains in a semicrystalline polyolefin gel. The beneficial outcomes of blocky functionalization are independent of the identity of the pendant functional group that is installed through functionalization. The decoupling of functional group incorporation and crystallinity highlights the promise in accessing nonrandom microstructures through selective functionalization to circumvent traditional tradeoffs in postpolymerization modification, with potential impact in advanced materials and upcycling plastic waste.

Article Details

Volume / Issue Vol. 64, Issue 30
Published July 21, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

E

Eliza K. Neidhart

Department of Chemistry The University of North Carolina at Chapel Hill Chapel Hill North Carolina 27599 USA

M

Michelle E. Pomatto

Macromolecules Innovation Institute, Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA

C

Chris Vasallo

Department of Chemistry The University of North Carolina at Chapel Hill Chapel Hill North Carolina 27599 USA

E

Erin R. Crater

Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA

J

Jill W. Alty

P

Polyxeni P. Angelopoulou

Chemical Science Division Oak Ridge National Lab Oak Ridge Tennessee 37830 USA

E

Erik J. Alexanian

Department of Chemistry

L

Logan T. Kearney

Chemical Science Division

R

Robert B. Moore

Macromolecules Innovation Institute, Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA

F

Frank A. Leibfarth

Department of Chemistry