Tannin-based non-isocyanate polyurethane wood adhesive rich in complicated cross-linked networks with ultra-strong bonding property and excellent water resistance by introducing poly-urea structure

Developing of bio-based wood adhesives is an inevitable common topic in the development at top speed of wood industry. Herein, a bio-based tannin wood adhesive, named as tannin-based non-isocyanate polyurethane-urea (TNIPU-U), was designed which showing a ultra-strong adhesion and water resistance p...

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Veröffentlicht in:Industrial crops and products 2025-01, Vol.223, p.120177, Article 120177
Hauptverfasser: Wu, Haizhu, Duan, Zhigang, Huang, Heming, Yang, Ruotong, Hong, Mengchang, Du, Guanben, Charrier, Bertrand, Essawy, Hisham, Pizzi, Antonio, Zhou, Xiaojian, Chen, Xinyi
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container_issue
container_start_page 120177
container_title Industrial crops and products
container_volume 223
creator Wu, Haizhu
Duan, Zhigang
Huang, Heming
Yang, Ruotong
Hong, Mengchang
Du, Guanben
Charrier, Bertrand
Essawy, Hisham
Pizzi, Antonio
Zhou, Xiaojian
Chen, Xinyi
description Developing of bio-based wood adhesives is an inevitable common topic in the development at top speed of wood industry. Herein, a bio-based tannin wood adhesive, named as tannin-based non-isocyanate polyurethane-urea (TNIPU-U), was designed which showing a ultra-strong adhesion and water resistance performance by two-step approach. A plausible mechanism was proposed, which implied that urea acted as the crosslinker to connect with derived intermediates containing free amino groups rooted from the reaction of tannin, dimethyl carbonate (DMC), and HMDA, to introduce urea linkages in traditional TNIPU. Furthermore, addition of urea to act as a trapping agent to capture excessive free HMDA in TNIPU adhesive, promoting additional polyurea formation, leading to avoidance of its emission during the hot-pressing process. This will convert the imperfection of TNIPU to a superiority by a eco-friendly strategy. The complicated cross-linked networks will be obtained that are rich in physical entanglement, covalent bonds, and hydrogen bonds. Compared with the TNIPU, the shear strength of TNIPU-U adhesive, after soaked in hot water and boiling water for 3 h, exhibited increase by 17.88 % and 34 %, respectively, indicating the potential for use under harsher conditions. Moreover, the TNIPU-U adhesive exhibits an excellent bonding performance (1.93 MPa) that greatly exceeds the China National Standard (GB/T 9846–2015, ≥ 0.7 MPa) requirement for exterior-grade plywood type I. It is comparable to commercial phenol-formaldehyde resin on the aspect of water tolerance. It can be applied to particleboard preparation and bamboo bonding as well, showing a well-adopted feature. This study provides an efficient, low-cost, and sustainable strategy for high performance bio-based wood adhesives. [Display omitted] •A novel tannin-based non-isocyanate polyurethane urea adhesive has been prepared.•Urea served as a crosslinker to capture free HMDA that averting its volatilization.•The complicated cross-linked network was built that has given an enhanced properties.•TNIPU-U adhesive met the application requirement for exterior-grade plywood type I.•It satisfied the application for particleboard preparation and bamboo bonding.
doi_str_mv 10.1016/j.indcrop.2024.120177
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Herein, a bio-based tannin wood adhesive, named as tannin-based non-isocyanate polyurethane-urea (TNIPU-U), was designed which showing a ultra-strong adhesion and water resistance performance by two-step approach. A plausible mechanism was proposed, which implied that urea acted as the crosslinker to connect with derived intermediates containing free amino groups rooted from the reaction of tannin, dimethyl carbonate (DMC), and HMDA, to introduce urea linkages in traditional TNIPU. Furthermore, addition of urea to act as a trapping agent to capture excessive free HMDA in TNIPU adhesive, promoting additional polyurea formation, leading to avoidance of its emission during the hot-pressing process. This will convert the imperfection of TNIPU to a superiority by a eco-friendly strategy. The complicated cross-linked networks will be obtained that are rich in physical entanglement, covalent bonds, and hydrogen bonds. 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[Display omitted] •A novel tannin-based non-isocyanate polyurethane urea adhesive has been prepared.•Urea served as a crosslinker to capture free HMDA that averting its volatilization.•The complicated cross-linked network was built that has given an enhanced properties.•TNIPU-U adhesive met the application requirement for exterior-grade plywood type I.•It satisfied the application for particleboard preparation and bamboo bonding.</description><subject>adhesion</subject><subject>bamboos</subject><subject>Bonding performance</subject><subject>carbonates</subject><subject>China</subject><subject>crosslinking</subject><subject>Deamination reaction</subject><subject>hydrogen</subject><subject>particleboards</subject><subject>plywood</subject><subject>Polyurea</subject><subject>polyurethanes</subject><subject>shear strength</subject><subject>Tannin-based non-isocyanate polyurethane (TNIPU)</subject><subject>urea</subject><subject>Water resistance</subject><subject>wood</subject><subject>wood industry</subject><issn>0926-6690</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2025</creationdate><recordtype>article</recordtype><recordid>eNqFUctu2zAQ1KEFkib5hAI89kKXD1myTkURJE2AAL0kZ2JFrmI6MqmSVFx9YP8r6zj3npYgZmZnZ6rqqxQrKWTzfbfywdkUp5USql5JJWTbfqrORaca3jSdOKu-5LwT9C1Ue179e4QQfOA9ZHQsxMB9jnaBAAXZFMdlTli2EJAdYnQM3Bazf0WWvN0yH5iN-2n0ltCO0dqc-ejDy1EKyyGml8wOvmzZPJYEPJcUwzPrY3Ce5kQ2MZWFQXAM_1ocRwyFHUgssUR7coFgkfULbSKqm-07jVxxsgWM9GZb6HlZfR5gzHj1MS-qp9ubx-s7_vD71_31zwdu5Ua1HGXTta4dpO1Ur1ELoWDTaS3VgI22a6V11ytla9trC81QQz_gIBGGTQu16PVF9e2kS9b_zJiL2ft89E0BxTkbLde1qjshO4KuT9D3VBIOZkp-D2kxUphjVWZnPqoyx6rMqSri_TjxkO549ZhMth4pBucT2mJc9P9ReAN3QKlW</recordid><startdate>202501</startdate><enddate>202501</enddate><creator>Wu, Haizhu</creator><creator>Duan, Zhigang</creator><creator>Huang, Heming</creator><creator>Yang, Ruotong</creator><creator>Hong, Mengchang</creator><creator>Du, Guanben</creator><creator>Charrier, Bertrand</creator><creator>Essawy, Hisham</creator><creator>Pizzi, Antonio</creator><creator>Zhou, Xiaojian</creator><creator>Chen, Xinyi</creator><general>Elsevier B.V</general><scope>6I.</scope><scope>AAFTH</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7S9</scope><scope>L.6</scope></search><sort><creationdate>202501</creationdate><title>Tannin-based non-isocyanate polyurethane wood adhesive rich in complicated cross-linked networks with ultra-strong bonding property and excellent water resistance by introducing poly-urea structure</title><author>Wu, Haizhu ; 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Herein, a bio-based tannin wood adhesive, named as tannin-based non-isocyanate polyurethane-urea (TNIPU-U), was designed which showing a ultra-strong adhesion and water resistance performance by two-step approach. A plausible mechanism was proposed, which implied that urea acted as the crosslinker to connect with derived intermediates containing free amino groups rooted from the reaction of tannin, dimethyl carbonate (DMC), and HMDA, to introduce urea linkages in traditional TNIPU. Furthermore, addition of urea to act as a trapping agent to capture excessive free HMDA in TNIPU adhesive, promoting additional polyurea formation, leading to avoidance of its emission during the hot-pressing process. This will convert the imperfection of TNIPU to a superiority by a eco-friendly strategy. The complicated cross-linked networks will be obtained that are rich in physical entanglement, covalent bonds, and hydrogen bonds. Compared with the TNIPU, the shear strength of TNIPU-U adhesive, after soaked in hot water and boiling water for 3 h, exhibited increase by 17.88 % and 34 %, respectively, indicating the potential for use under harsher conditions. Moreover, the TNIPU-U adhesive exhibits an excellent bonding performance (1.93 MPa) that greatly exceeds the China National Standard (GB/T 9846–2015, ≥ 0.7 MPa) requirement for exterior-grade plywood type I. It is comparable to commercial phenol-formaldehyde resin on the aspect of water tolerance. It can be applied to particleboard preparation and bamboo bonding as well, showing a well-adopted feature. This study provides an efficient, low-cost, and sustainable strategy for high performance bio-based wood adhesives. [Display omitted] •A novel tannin-based non-isocyanate polyurethane urea adhesive has been prepared.•Urea served as a crosslinker to capture free HMDA that averting its volatilization.•The complicated cross-linked network was built that has given an enhanced properties.•TNIPU-U adhesive met the application requirement for exterior-grade plywood type I.•It satisfied the application for particleboard preparation and bamboo bonding.</abstract><pub>Elsevier B.V</pub><doi>10.1016/j.indcrop.2024.120177</doi><oa>free_for_read</oa></addata></record>
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ispartof Industrial crops and products, 2025-01, Vol.223, p.120177, Article 120177
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source Elsevier ScienceDirect Journals
subjects adhesion
bamboos
Bonding performance
carbonates
China
crosslinking
Deamination reaction
hydrogen
particleboards
plywood
Polyurea
polyurethanes
shear strength
Tannin-based non-isocyanate polyurethane (TNIPU)
urea
Water resistance
wood
wood industry
title Tannin-based non-isocyanate polyurethane wood adhesive rich in complicated cross-linked networks with ultra-strong bonding property and excellent water resistance by introducing poly-urea structure
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