Reversing Blocking Order of Trithiocarbonate‐Mediated RAFT Polymerizations Using Photocatalysis

J Jared G. Baker (Macromolecules Innovation Institute and Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA) S Stephen J. Koehler (Macromolecules Innovation Institute and Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA) K Katherine J. Wood (Department of Chemistry and Macromolecules Innovation Institute Virginia Tech Blacksburg VA 24061 USA) D Diego Troya (Department of Chemistry) J Joey Gloriod (Macromolecules Innovation Institute and Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA) I Ian C. Anderson (Hawkesbury Institute for the Environment, Western Sydney University) D Darwin C. Gomez (Macromolecules Innovation Institute and Department of Chemistry Virginia Tech Blacksburg Virginia 24061 USA) C C. Adrian Figg (Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States)

Abstract

Abstract Many acrylic–methacrylic block copolymer sequences remain inaccessible due to synthetic limitations. Herein, photoinduced electron/energy transfer (PET) catalysis is leveraged to reverse blocking order limitations in trithiocarbonate (TTC)‐mediated reversible addition–fragmentation chain transfer (RAFT) polymerization. We synthesized poly(methyl acrylate‐ b ‐methyl methacrylate) by PET‐RAFT using fac ‐Ir(ppy) 3 , achieving predictable, linear increases in molecular weight with conversion. Kinetics studies showed that adding a tertiary amine (triethanolamine) introduced a reversible redox reaction to stabilize the TTC radical during chain extensions, leading to more uniform block copolymers ( Р < 1.47) compared to block copolymers synthesized without amine ( Р < 1.56). To highlight the utility of this method, triblock copolymers of poly(methyl acrylate) and poly(methyl methacrylate) blocks were investigated. The order of acrylic and methacrylic blocks impacted the physical properties of compositionally similar polymeric materials. For example, a high molecular weight triblock copolymer (P(MMA‐ b ‐MA‐ b ‐MMA), M n  = 564 kg mol −1 ) thermoplastic elastomer showed exceptional strain (>1600%). Overall, we report (i) a new methodology to unlock synthetic access to acrylic–methacrylic block copolymers using TTCs and photocatalysis, (ii) insight into photocatalyst‐mediated radical polymerization, and (iii) synthesis of new high‐performance materials.

Article Details

Volume / Issue Vol. 64, Issue 34
Published August 18, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

J

Jared G. Baker

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

S

Stephen J. Koehler

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

K

Katherine J. Wood

Department of Chemistry and Macromolecules Innovation Institute Virginia Tech Blacksburg VA 24061 USA

D

Diego Troya

Department of Chemistry

J

Joey Gloriod

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

I

Ian C. Anderson

Hawkesbury Institute for the Environment, Western Sydney University

D

Darwin C. Gomez

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

C

C. Adrian Figg

Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States