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The preparation and construction of biomimetic mineralization compatible interface of wood fiber/foamed magnesium oxychloride lightweight composites.

Authors :
Gu, Huan
Yang, Pengkun
Zhou, Wenguang
Ye, Qianqian
Shen, Zhehong
Zhao, Guomin
Yu, Hongwei
Zhang, Jieyu
Source :
Construction & Building Materials. Nov2024, Vol. 451, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

The purpose of this study is to improve the application performance of foamed magnesium oxychloride cement (FMOC) and solve the problem of poor interfacial compatibility between the organic-inorganic interface of traditional inorganic composite materials. Inspired by the adhesion mechanism of barnacles to inorganic substrates through amyloid nanofibers and phosphoprotein, a simple green method was proposed to improve the strength and water resistance of the system. The FMOC composites (30×30×30 mm) were prepared by adding wood flour (WF) and phytic acid (PA) to the mixture of magnesium oxide and magnesium chloride. The influences of WF and PA on the compressive strength, composition, microstructure, pore structure, water resistance and flame retardant properties of FMOC were investigated. WF was used as a skeleton structure to induce cement particle aggregation, the PA molecule was used as a connecting bridge to activate the fiber skeleton to increase the active sites, and promote crystal nucleation and aggregation through hydrogen and ionic bond interactions to construct the biomimetic mineralized structure. The results show that the introduction of PA improves the compressive strength and water resistance of the FMOC/WF/PA composite system. When the PA addition amount is 0.8 %, the compressive strength of FMOC/WF/PA-0.8 % composites reached 6.64 MPa, which was 3 times compared to the FMOC composites. The softening coefficient and water absorption of the obtained FMOC/WF/PA-0.8 % composites were 0.81 and 13.84 %, respectively, which were superior to FMOC composites and presented better behavior in water resistance. Meanwhile, the modified composites have more stable pore structure and flame retardant properties, thus these green FMOC/WF/PA composites displayed potential application value in building energy conservation, aerospace and other fields. • A magnesium oxychloride cement with dense network structure was designed and developed. • A stable system between WF and FMOC was constructed using PA as a connecting bridge. • The modified FMOC possessed integrated compressive strength and softening coefficient. • Biomimetic mineralization promoted crystal nucleation and polymerization of FMOC. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09500618
Volume :
451
Database :
Academic Search Index
Journal :
Construction & Building Materials
Publication Type :
Academic Journal
Accession number :
180798310
Full Text :
https://doi.org/10.1016/j.conbuildmat.2024.138850