Gold-Catalyzed Upcycling of Aromatic Thermoplastics

Abstract Aromatic polymers are foundational to modern technologies; yet, their robust chemical and physical properties make them notoriously difficult to chemically modify, limiting their sustainable utilization and the development of emerging plastics technologies. Here, we introduce a postpolymerization modification strategy based on a gold-catalyzed, regioselective hydroarylation between commercial phenyl-substituted alkynes and the aromatic units of commodity, specialty, and engineering thermoplastics. This direct C–H activation enables the mild, chemoselective installation of 1,2-disubstituted alkenes bearing functionalized phenyl groups into amorphous and syndiotactic polystyrene, polysulfone, polyethylene terephthalate, poly(ether imide), and a semiaromatic polyamide, while preserving the inherent crystallinity and thermophysical properties required for high-performance applications. The exceptional functional group tolerance of gold enables the installation of functionality and reactive handles that are otherwise unattainable, while providing direct control over morphological, thermal, mechanical, and functional properties. This combination of preserved thermomechanical properties and newly introduced reactivity enables a distinct form of upcycling, in which existing polymer streams are transformed into higher-value functionally versatile materials. This platform overcomes long-standing synthetic limitations for aromatic polymer modification and upcycling, opening versatile routes to next-generation high-performance materials from existing polymer streams.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-28
DOI
https://doi.org/10.1021/jacs.6c10628
Primary Topic
Polymer composites and self-healing
Type
article
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article

Gold-Catalyzed Upcycling of Aromatic Thermoplastics

Scott P. O. Danielsen, Jason David Azoulay, Natalie Stingelin, Vipul Singh et al.
Journal of the American Chemical Society
Polymer composites and self-healing
article

Gold-Catalyzed Upcycling of Aromatic Thermoplastics

Scott P. O. Danielsen, Jason David Azoulay, Natalie Stingelin, Vipul Singh, Alexander J. Salmon
article en

Abstract

Abstract Aromatic polymers are foundational to modern technologies; yet, their robust chemical and physical properties make them notoriously difficult to chemically modify, limiting their sustainable utilization and the development of emerging plastics technologies. Here, we introduce a postpolymerization modification strategy based on a gold-catalyzed, regioselective hydroarylation between commercial phenyl-substituted alkynes and the aromatic units of commodity, specialty, and engineering thermoplastics. This direct C–H activation enables the mild, chemoselective installation of 1,2-disubstituted alkenes bearing functionalized phenyl groups into amorphous and syndiotactic polystyrene, polysulfone, polyethylene terephthalate, poly(ether imide), and a semiaromatic polyamide, while preserving the inherent crystallinity and thermophysical properties required for high-performance applications. The exceptional functional group tolerance of gold enables the installation of functionality and reactive handles that are otherwise unattainable, while providing direct control over morphological, thermal, mechanical, and functional properties. This combination of preserved thermomechanical properties and newly introduced reactivity enables a distinct form of upcycling, in which existing polymer streams are transformed into higher-value functionally versatile materials. This platform overcomes long-standing synthetic limitations for aromatic polymer modification and upcycling, opening versatile routes to next-generation high-performance materials from existing polymer streams.

Journal of the American Chemical Society
Georgia Institute of Technology (US)
Industry, innovation and infrastructure
Openalex Percentile: Top 24%
Polymer composites and self-healing
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Gold-Catalyzed Upcycling of Aromatic Thermoplastics — Scott P. O. Danielsen, Jason David Azoulay, et al. · Journal of the American Chemical Society (2026) | TGRS Research Map | TGRS