Reversible Surface Engineering of Cellulose Elementary Fibrils: From Ultralong Nanocelluloses to Advanced Cellulosic Materials

Author:

Zhou Meng1,Chen Dongzhi2ORCID,Chen Qianqian1,Chen Pan3,Song Guangjie4,Chang Chunyu1ORCID

Affiliation:

1. College of Chemistry and Molecular Sciences Engineering Research Center of Natural Polymer‐based Medical Materials in Hubei Province, and Laboratory of Biomedical Polymers of Ministry of Education Wuhan University Wuhan Hubei 430072 P. R. China

2. State Key Laboratory of New Textile Materials and Advanced Processing Technology Wuhan Textile University Wuhan 430073 P. R. China

3. School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 P. R. China

4. Beijing National Laboratory for Molecular Sciences CAS Key Laboratory of Engineering Plastics Institute of Chemistry Chinese Academy of Sciences Beijing 100190 P. R. China

Abstract

AbstractCellulose nanofibrils (CNFs) are supramolecular assemblies of cellulose chains that provide outstanding mechanical support and structural functions for cellulosic organisms. However, traditional chemical pretreatments and mechanical defibrillation of natural cellulose produce irreversible surface functionalization and adverse effects of morphology of the CNFs, respectively, which limit the utilization of CNFs in nanoassembly and surface functionalization. Herein, this work presents a facile and energetically efficient surface engineering strategy to completely exfoliate cellulose elementary fibrils from various bioresources, which provides CNFs with ultrahigh aspect ratios (≈1400) and reversible surface. During the mild process of swelling and esterification, the crystallinity and the morphology of the elementary fibrils are retained, resulting in high yields (98%) with low energy consumption (12.4 kJ g−1). In particular, on the CNF surface, the surface hydroxyl groups are restored by removal of the carboxyl moieties via saponification, which offers a significant opportunity for reconstitution of stronger hydrogen bonding interfaces. Therefore, the resultant CNFs can be used as sustainable building blocks for construction of multidimensional advanced cellulosic materials, e.g., 1D filaments, 2D films, and 3D aerogels. The proposed surface engineering strategy provides a new platform for fully utilizing the characteristics of the cellulose elementary fibrils in the development of high‐performance cellulosic materials.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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