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Journal of the American Chemical Society· 2026Q1

Nonalternating Chain Walking Polymerization Enables In-Chain Ketone Polyolefin Elastomers

Zhi-Hao Zhang, Ji-Ning Zhang, Shi-Yu Chen, Xiao‐Bing Lu et al.

Short summary

A novel nickel catalyst platform enables the synthesis of high-molecular-weight (up to 476 kg mol–1) branched polyethylene with in-chain ketone functionalities, offering improved degradability and compatibility with polar materials.

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Key points

  • Developed an α-imino-ketone nickel catalyst platform to enable nonalternating carbonylative chain walking polymerization.
  • Synthesized high-molecular-weight (up to 476 kg mol–1) branched polyethylene with in-chain ketone functionalities.
  • In-chain ketones improve degradability and compatibility with polar materials compared to traditional polyolefins.
  • Keto-modified polyolefin elastomers are promising for polar-filler-reinforced composites.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Millions of tons of polymer waste are generated annually from branched polyethylene-based single-use packaging and agricultural films, constituting a pressing global environmental concern. Nonalternating carbonylative chain walking polymerization offers a promising strategy, whereas fundamentally constrained by the intrinsic kinetic incompatibility between nonalternating insertion and chain walking tendency. Here, we employ an α-imino-ketone nickel platform featuring both electronic asymmetry and axial shielding to circumvent this kinetic challenge, enabling the synthesis of high-molecular-weight (up to 476 kg mol–1), branched polyethylene plastics and elastomers featuring well-defined in-chain ketone functionalities. Nonalternating carbonyl insertion into the branched polyethylene backbone preserves its bulk material properties, while imparting desirable degradability and improving compatibility with polar materials. Notably, the polarity and sufficient branching density render keto-modified polyolefin elastomers as a promising candidate in polar-filler-reinforced polyolefin composites. This work presents a versatile catalyst platform for the synthesis of sustainable polyolefins with tunable properties and degradability.

The authors' abstract, as published at the source. Journal of the American Chemical Society, 2026 · DOI ↗

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Field: Organic Chemistry

Organic ChemistryChemistry