4.6 Article

Highly tough, degradable, and water-resistant bio-based supramolecular plastics comprised of cellulose and tannic acid

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 11, Issue 13, Pages 7193-7200

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d3ta00351e

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In this study, high-performance degradable plastics with high mechanical strength, satisfactory water resistance, and rapid degradation characteristics were fabricated through the complexation of regenerated cellulose and tannic acid. The resulting plastic, called C-TA, exhibited ultrahigh fracture strength and toughness. Molecular dynamics simulations showed that the introduction of dendritic tannic acid molecules enhanced the toughness of the plastic. The C-TA plastic also displayed excellent water resistance and could be fully degraded in soil within 35 days.
It is challenging to fabricate high-performance degradable plastics that simultaneously possess high mechanical strength, satisfactory water resistance and rapid degradation characteristics in natural environments using biomass resources. In this study, mechanically robust, water-resistant, biocompatible, and degradable plastics are fabricated through the complexation of regenerated cellulose and tannic acid (TA) followed by molding these complexes into desired shapes. The resulting plastic (denoted as C-TA) prepared with 15 wt% TA exhibits an ultrahigh fracture strength of similar to 265 MPa and a toughness of similar to 55.2 MJ m(-3). An all-atom molecular dynamics simulation demonstrates that the introduction of dendritic TA molecules notably enhances the toughness of the C-TA plastic through the formation of TA-centered hydrogen-bond clusters. The C-TA plastic retains a fracture strength of similar to 166 MPa and similar to 98 MPa after being stored in environments with relative humidities of 80% and 100% for 7 days, respectively, indicating its excellent water resistance. The good water resistance and high mechanical strength of the C-TA plastic originate from the hydrophobic aromatic rings of its TA molecules and its TA-centered hydrogen-bond clusters which serve as cross-links and nanofillers to strengthen the plastic. The C-TA plastic can be fully degraded in soil into nontoxic species within 35 days.

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