4.7 Article

Thermoresponsive Poly(N-isopropylacrylamide) Grafted from Cellulose Nanofibers via Silver-Promoted Decarboxylative Radical Polymerization

期刊

BIOMACROMOLECULES
卷 23, 期 4, 页码 1610-1621

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AMER CHEMICAL SOC
DOI: 10.1021/acs.biomac.1c01444

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  1. Australian Research Council-Industry Transformation Research Hub
  2. Processing Advanced Ligno-cellulosics (PALS) [IH170100020]

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A family of thermoresponsive poly(N-isopropyla-crylamide)-grafted cellulose nanofibers was synthesized via a silver-promoted decarboxylative polymerization approach. The method allows for control over functionalization and grafting amount, and the resulting grafted nanofibers exhibit remarkable thermoresponsive properties and can be used as thermosensitive biomaterials. This study validates a novel approach for the synthesis of new thermoresponsive and transparent hydrogels.
A family of thermoresponsive poly(N-isopropyla-crylamide) [PNIPAM]-grafted cellulose nanofibers (CNFs) was synthesized via a novel silver-promoted decarboxylative polymerization approach. This method relies on the oxidative decarboxylation of carboxylic acid groups to initiate free radicals on the surface of CNFs. The polymerization reaction employs relatively mild reaction conditions and can be performed in a one-step, one pot fashion. This rapid reaction forms a C-C bond between CNF and PNIPAM, along with the formation of free polymer in solution. The degree of functionalization (DF) and the amount of PNIPAM grafted can be controlled by the Ag concentration in the reaction. Similar to native bulk PNIPAM, PNIPAM-grafted CNFs (PNIPAM-g-CNFs) show remarkable thermoresponsive properties, albeit exhibiting a slight hysteresis between the heating and cooling stages. Grafting PNIPAM from CNFs changes its cloud point from about 32 to 36 & DEG;C, influenced by the hydrophilic nature of CNFs. Unlike physical blending, covalently tethering PNIPAM transforms the originally inert CNFs into thermosensitive biomaterials. The Ag concentration used does not significantly change the cloud point of PNIPAM-g-CNFs, while the cloud point slightly decreases with fiber concentration. Rheological studies demonstrated the sol-gel transition of PNIPAM-g-CNFs and revealed that the storage modulus (G & PRIME;) above cloud point increases with the amount of PNIPAM grafted. The novel chemistry developed paves the way for the polymerization of any vinyl monomer from the surface of CNFs and carbohydrates. This study validates a novel approach to graft PNIPAM from CNFs for the synthesis of new thermoresponsive and transparent hydrogels for a wide range of applications.

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