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表面菌丝体界面在木材胶合中的功能。

Functionality of Surface Mycelium Interfaces in Wood Bonding.

机构信息

Laboratory of Renewable Nanomaterials, School of Forest Resources, University of Maine, Nutting Hall, Orono, Maine 04469-5755, United States.

Advanced Structures and Composites Center, University of Maine, 35 Flagstaff Road, Orono, Maine 04469-5755, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Dec 23;12(51):57431-57440. doi: 10.1021/acsami.0c18165. Epub 2020 Dec 11.

Abstract

Filamentous fungi have been considered as candidates to replace petroleum-based adhesives and plastics in novel composite material production, particularly those containing lignocellulosic materials. However, the nature of the role of surface mycelium in the adhesion between lignocellulosic composite components is not well-known. The current study investigated the functionality of surface mycelium for wood bonding by incubating on yellow birch veneers and compared the lap-shear strengths after hot-pressing to evaluate if the presence of surface mycelium can improve the interface between two wood layers and consequently improve bonding. We found that the lap-shear strength of the samples was enhanced by the increase of surface mycelium coverage up to 8 days of incubation (up to 1.74 MPa) without a significant wood weight loss. We provide evidence that the bottom surface of the mycelium layer is more hydrophilic, contains more small-scale filamentous structure and contains more functional groups, resulting in better bonding with wood than the top surface. These observations confirm and highlight the functionality of the surface mycelium layer for wood bonding and provide useful information for future developments in fully biobased composites manufacturing.

摘要

丝状真菌已被认为是替代石油基胶粘剂和塑料用于新型复合材料生产的候选物,特别是那些含有木质纤维素材料的复合材料。然而,表面菌丝体在木质纤维素复合材料成分之间的粘附中的作用性质尚不清楚。本研究通过在黄桦单板上培养丝状真菌来研究表面菌丝体在木材粘结方面的功能,并比较热压后的搭接剪切强度,以评估表面菌丝体的存在是否可以改善两层木材之间的界面,从而提高粘结性。我们发现,随着培养时间的延长(最长 8 天),表面菌丝体覆盖率的增加会提高样品的搭接剪切强度(最高可达 1.74 MPa),而木材失重率没有显著增加。我们提供的证据表明,菌丝体层的底面更亲水,含有更多小规模的丝状结构,并且含有更多的功能基团,与木材的粘结性比顶面更好。这些观察结果证实并强调了表面菌丝体层在木材粘结方面的功能,并为未来全生物基复合材料制造的发展提供了有用的信息。

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