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Flexible cellulose nanofiber aerogel with enhanced porous structure and its applications in copper(II) removal. | LitMetric

Flexible cellulose nanofiber aerogel with enhanced porous structure and its applications in copper(II) removal.

Int J Biol Macromol

Key Laboratory of Wood Material Science and Application (Beijing Forestry University), Ministry of Education, Beijing 100083, China; Beijing Key Laboratory of Wood Science and Engineering, Beijing Forestry University, Beijing 100083, China. Electronic address:

Published: July 2024

AI Article Synopsis

  • * The incorporation of CNFs significantly improves the aerogel’s wet and thermal stability, while also enhancing its specific surface area and pore structure, leading to greater overall performance.
  • * As a result, the CNF-enhanced aerogel shows impressive increases in its adsorption capacity for copper ions, making it a promising material for applications in environmental remediation and other fields.

Article Abstract

In order to achieve an aerogel with both rigid pore structures and desired flexibility, stiff carboxyl-functionalized cellulose nanofiber (CNFs) were introduced into a flexible polyvinyl alcohol-polyethyleneimine (PVA-PEI) crosslinking network, with 4-formylphenylboronic acid (4FPBA) bridging within the PVA-PEI network to enable dynamic boroxine and imine bond formation. The strong covalent bonds and hydrogen connections between CNF and the crosslinking network enhanced the wet stability of the aerogel while also contributed to its thermal stability. Importantly, the harmonious coordination between the stiff CNF and the flexible polymer chains not only facilitated aerogel flexibility but also enhanced its increased specific surface area by improving pore structure. Moreover, the inclusion of CNF enhanced the adsorption capacity of the aerogel, rendering it effective for removing heavy metal ions. The specific surface area and adsorption capacity for copper ions of the aerogel increased significantly with a 3 wt% addition CNF suspension, reaching 19.74 m g and 60.28 mg g, respectively. These values represent a remarkable increase of 590.21 % and 213.96 %, respectively, compared to the blank aerogel. The CNF-enhanced aerogel in this study, characterized by its well-defined pore structures, and desired flexibility, demonstrates versatile applicability across multiple domains, including environmental protection, thermal insulation, electrode fabrication, and beyond.

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Source
http://dx.doi.org/10.1016/j.ijbiomac.2024.132778DOI Listing

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