4.8 Article

Hierarchical Interface Engineering for Advanced Nanocellulosic Hybrid Aerogels with High Compressibility and Multifunctionality

期刊

ADVANCED FUNCTIONAL MATERIALS
卷 31, 期 19, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202009349

关键词

compressibility; hybrid aerogels; interface interactions; multifunctionality; super-hydrophobicity

资金

  1. National Natural Science Foundation of China [51973030, 51733002]
  2. Shanghai Rising-Star Program [20QA1400100]
  3. Science and Technology Commission of Shanghai Municipality [20JC1414900]
  4. National Key Research and Development Program of China [2016YFA0201702/2016YFA0201700]
  5. Program for Changjiang Scholars and Innovative Research Team in University [IRT16R13]
  6. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials
  7. International Joint Laboratory for Advanced Fiber and Low-Dimension Materials, Donghua University [18520750400]

向作者/读者索取更多资源

By introducing an interfacial engineering strategy through freeze-drying-induced wetting and mineralization, the hierarchical porous cellulose network was reinforced to form mineral-coated nanocellulose hybrid aerogels. The resulting cellulose-based hybrid aerogels exhibit lightweight, superior mechanical compressibility, super-hydrophobicity, and moisture stability. This scalable and efficient assembly approach with optimized interfacial features enables high-performance cellulose-based aerogels for various applications.
The hierarchical combination of mineral and biopolymer building blocks is advantageous for the notable properties of structural materials. Integrating silane and cellulose nanofibers into high-performance hybrid aerogels is promising yet remains challenging due to the unsatisfied interface connections. Here, an interfacial engineering strategy is introduced via freeze-drying-induced wetting and mineralization to reinforce the hierarchical porous cellulose network, resulting in mineral-coated nanocellulose hybrid aerogels in a simple and consecutive bottom-up assembly process. With optimized multiscale interfacial engineering between the stiff and soft components, the resulting cellulose-based hybrid aerogels are endowed with lightweight (>0.7 mg cm(-3)), superior enhanced mechanical compressibility (>99% strain) within a wide temperature range, as well as super-hydrophobicity (approximate to 168 degrees) and moisture stability under high humidity (95% relative humidity). Benefiting from these superior characters, the multifunctional hybrid aerogels as effective oil/water absorbents with excellent recyclability, thermal insulators in extreme conditions, and sensitive strain sensors are demonstrated. This assembly approach with optimized interfacial features is scalable and efficient, affording high-performance cellulose-based aerogels for various applications.

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