Sustainable ultra‐strong thermally conductive wood‐based antibacterial structural materials with anti‐corrosion and ultraviolet shielding
Abstract In light of the uprising global development on sustainability, an innovative and environmental friendly wood‐based material derived from natural pinewood has been developed as a high‐performance alternative to petrochemical‐based materials. The wood‐based functional material, named as BC‐Ca...
Main Authors: | , , , , , , , , , , |
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Format: | Article |
Language: | English |
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Wiley
2023-12-01
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Series: | EcoMat |
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Online Access: | https://doi.org/10.1002/eom2.12420 |
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author | Haoran Ye Yang Shi Ben Bin Xu Zhanhu Guo Wei Fan Zhongfeng Zhang Daniel M. Mulvihill Xuehua Zhang Pengju Shi Ximin He Shengbo Ge |
author_facet | Haoran Ye Yang Shi Ben Bin Xu Zhanhu Guo Wei Fan Zhongfeng Zhang Daniel M. Mulvihill Xuehua Zhang Pengju Shi Ximin He Shengbo Ge |
author_sort | Haoran Ye |
collection | DOAJ |
description | Abstract In light of the uprising global development on sustainability, an innovative and environmental friendly wood‐based material derived from natural pinewood has been developed as a high‐performance alternative to petrochemical‐based materials. The wood‐based functional material, named as BC‐CaCl2, is synthesized through the coordination of carboxyl groups (−COOH) present in pinewood with calcium ions (Ca2+), which facilitates the formation of a high‐density cross‐linking structure through the combined action of intermolecular hydrogen bonds. The as‐prepared BC‐CaCl2 exhibits excellent tensile strength (470.5 MPa) and flexural strength (539.5 MPa), establishing a robust structural basis for the materials. Meanwhile, BC‐CaCl2 shows good water resistance, thermal conductivity, thermal stability, UV resistance, corrosion resistance, and antibacterial properties. BC‐CaCl2 represents a viable alternative to petrochemical‐based materials. Its potential application areas include waterproof enclosure structure of buildings, indoor underfloor heating, outdoor UV resistant protective cover, and anti‐corrosion materials for installation engineering, and so forth. |
first_indexed | 2024-03-09T01:12:10Z |
format | Article |
id | doaj.art-e9c047bad58b494eacf6c9b75e5d07c2 |
institution | Directory Open Access Journal |
issn | 2567-3173 |
language | English |
last_indexed | 2024-03-09T01:12:10Z |
publishDate | 2023-12-01 |
publisher | Wiley |
record_format | Article |
series | EcoMat |
spelling | doaj.art-e9c047bad58b494eacf6c9b75e5d07c22023-12-11T04:43:34ZengWileyEcoMat2567-31732023-12-01512n/an/a10.1002/eom2.12420Sustainable ultra‐strong thermally conductive wood‐based antibacterial structural materials with anti‐corrosion and ultraviolet shieldingHaoran Ye0Yang Shi1Ben Bin Xu2Zhanhu Guo3Wei Fan4Zhongfeng Zhang5Daniel M. Mulvihill6Xuehua Zhang7Pengju Shi8Ximin He9Shengbo Ge10Co‐Innovation Center of Efficient Processing and Utilization of Forest Resources, College of Materials Science and Engineering Nanjing Forestry University Nanjing ChinaCo‐Innovation Center of Efficient Processing and Utilization of Forest Resources, College of Materials Science and Engineering Nanjing Forestry University Nanjing ChinaDepartment of Mechanical and Construction Engineering Northumbria University Newcastle UKDepartment of Mechanical and Construction Engineering Northumbria University Newcastle UKSchool of Textile Science and Engineering & Key Laboratory of Functional Textile Material and Product of Ministry of Education Xi'an Polytechnic University Xi'an ChinaCollege of Furniture and Art Design Central South University of Forestry and Technology Changsha ChinaMaterials and Manufacturing Research Group, James Watt School of Engineering University of Glasgow Glasgow UKDepartment of Chemical and Materials Engineering University of Alberta Edmonton CanadaDepartment of Materials Science and Engineering University of California, Los Angeles (UCLA) Los Angeles California USADepartment of Materials Science and Engineering University of California, Los Angeles (UCLA) Los Angeles California USACo‐Innovation Center of Efficient Processing and Utilization of Forest Resources, College of Materials Science and Engineering Nanjing Forestry University Nanjing ChinaAbstract In light of the uprising global development on sustainability, an innovative and environmental friendly wood‐based material derived from natural pinewood has been developed as a high‐performance alternative to petrochemical‐based materials. The wood‐based functional material, named as BC‐CaCl2, is synthesized through the coordination of carboxyl groups (−COOH) present in pinewood with calcium ions (Ca2+), which facilitates the formation of a high‐density cross‐linking structure through the combined action of intermolecular hydrogen bonds. The as‐prepared BC‐CaCl2 exhibits excellent tensile strength (470.5 MPa) and flexural strength (539.5 MPa), establishing a robust structural basis for the materials. Meanwhile, BC‐CaCl2 shows good water resistance, thermal conductivity, thermal stability, UV resistance, corrosion resistance, and antibacterial properties. BC‐CaCl2 represents a viable alternative to petrochemical‐based materials. Its potential application areas include waterproof enclosure structure of buildings, indoor underfloor heating, outdoor UV resistant protective cover, and anti‐corrosion materials for installation engineering, and so forth.https://doi.org/10.1002/eom2.12420coordination crosslinkexcellent mechanical performanceultra‐strongwood‐based composite |
spellingShingle | Haoran Ye Yang Shi Ben Bin Xu Zhanhu Guo Wei Fan Zhongfeng Zhang Daniel M. Mulvihill Xuehua Zhang Pengju Shi Ximin He Shengbo Ge Sustainable ultra‐strong thermally conductive wood‐based antibacterial structural materials with anti‐corrosion and ultraviolet shielding EcoMat coordination crosslink excellent mechanical performance ultra‐strong wood‐based composite |
title | Sustainable ultra‐strong thermally conductive wood‐based antibacterial structural materials with anti‐corrosion and ultraviolet shielding |
title_full | Sustainable ultra‐strong thermally conductive wood‐based antibacterial structural materials with anti‐corrosion and ultraviolet shielding |
title_fullStr | Sustainable ultra‐strong thermally conductive wood‐based antibacterial structural materials with anti‐corrosion and ultraviolet shielding |
title_full_unstemmed | Sustainable ultra‐strong thermally conductive wood‐based antibacterial structural materials with anti‐corrosion and ultraviolet shielding |
title_short | Sustainable ultra‐strong thermally conductive wood‐based antibacterial structural materials with anti‐corrosion and ultraviolet shielding |
title_sort | sustainable ultra strong thermally conductive wood based antibacterial structural materials with anti corrosion and ultraviolet shielding |
topic | coordination crosslink excellent mechanical performance ultra‐strong wood‐based composite |
url | https://doi.org/10.1002/eom2.12420 |
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