4.6 Article

Mechanical Strong and Recyclable Rubber Nanocomposites with Sustainable Cellulose Nanocrystals and Interfacial Exchangeable Bonds

期刊

ACS SUSTAINABLE CHEMISTRY & ENGINEERING
卷 9, 期 28, 页码 9409-9417

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acssuschemeng.1c02581

关键词

Rubber; Interfacial exchangeable bonds; Tunicate cellulose nanocrystals; Coordination bonds

资金

  1. National Natural Science Foundation of China [21875047]
  2. China Postdoctoral Science Foundation [2019M662907/2020T130203]
  3. Guangdong Basic and Applied Basic Research Foundation [2019A1515110849]
  4. Key Projects of Basic Research and Applied Basic Research in Colleges and Universities in Guangdong Province [2018KZDXM004]
  5. [61409220414/JZX7Y2019026206860]

向作者/读者索取更多资源

A covalently cross-linked yet reprocessable carboxylated styrene butadiene rubber (CSBR) nanocomposite has been developed, reinforced and crosslinked by epoxy-modified tunicate cellulose nanocrystals (TCNCs). The materials form exchangeable ester bonds at the rubber-filler interface, allowing the network topology to be rearranged via transesterification reactions for reprocessing and recycling. Introducing metal coordination bonds creates a dual dynamic network in the system, further improving mechanical properties without compromising recycling and reprocessing performance.
Rubber is a strategically important polymeric material because of its high extensibility and resilience. However, traditional cross-linked rubber is difficult to be reprocessed or recycled due to the permanent covalent cross-linking, which puts a huge burden on the environment. Herein, we report a covalently cross-linked yet reprocessable carboxylated styrene butadiene rubber (CSBR) nanocomposite which is reinforced and crosslinked by epoxy-modified tunicate cellulose nanocrystals (TCNCs). The epoxy modification of TCNCs improves the dispersibility and the interfacial interactions with the matrix, thus improving the mechanical properties of the nanocomposites. In addition, exchangeable ester bonds are formed at the rubber-filler interface, and the network topology can be rearranged via the transesterification reactions. Therefore, the materials can be reprocessed and recycled under the evaluated temperatures. In particular, by introducing metal coordination bonds to construct a dual dynamic network in the system, the mechanical properties of the nanocomposites can be further improved without compromising the recycling and reprocessing performance.

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