Nanotechnology approaches towards biodeterioration-resistant wood: A review

IF 20.2 Q1 MATERIALS SCIENCE, PAPER & WOOD
Ayyoob Arpanaei , Qiliang Fu , Tripti Singh
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Abstract

Wood can be a suitable alternative to energy-intensive materials in various applications. Nevertheless, its susceptibility to weathering and decay has significantly hindered the broad adoption of the most commercially significant wood species. While current solutions do tackle certain challenges, they often come with disadvantages like high costs, environmental risks, and/or inefficiencies. Nanotechnology-based methods can be employed to mitigate these weaknesses and create durable, sustainable wood materials. In this review, we delve into cutting-edge advancements in the development of biodeterioration-resistant wood through innovative nanotechnology approaches. These methods usually involve the application of nanomaterials, either possessing biocidal properties or serving as carriers for biocides. We systematically describe these approaches and compare them to conventional wood modification methods. Additionally, this review provides a brief overview of the prevalent biodeteriorating organisms and their mechanisms of action, which notably impact the development and choice of a suitable strategy for wood modification/treatment. Given the requirements of biodeteriorating organisms for growth and wood degradation, it is expected that the new nanotechnology-based approaches to enhance wood durability may provide innovative broad-spectrum biocidal nanosystems. These systems can simultaneously induce alterations in the physicochemical properties of wood, thereby constraining the availability of the growth requirements. These alterations can efficiently inhibit the biodeterioration process by decreasing water absorption, restricting access to the wood components, and reducing void spaces within the wood structure. Finally, this review highlights the new opportunities, challenges, and perspectives of nanotechnology methods for biodeterioration-resistant wood, through which some techno-economic, environmental and safety aspects associated with these methods are addressed.

抗生物劣化木材的纳米技术方法:综述
在各种应用中,木材可以替代能源密集型材料。然而,木材易风化和腐朽的特性极大地阻碍了最具商业价值的木材品种的广泛应用。虽然目前的解决方案确实能应对某些挑战,但它们往往具有成本高、环境风险大和/或效率低等缺点。可以采用基于纳米技术的方法来减轻这些缺点,并创造出耐用、可持续的木质材料。在本综述中,我们将深入探讨通过创新纳米技术方法开发抗生物劣化木材的前沿进展。这些方法通常涉及纳米材料的应用,它们或具有杀菌特性,或可作为杀菌剂的载体。我们系统地介绍了这些方法,并将它们与传统的木材改性方法进行了比较。此外,本综述还简要介绍了普遍存在的生物劣化有机体及其作用机制,这对开发和选择合适的木材改性/处理策略具有显著影响。鉴于生物劣化生物对生长和木材降解的要求,预计基于纳米技术的提高木材耐久性的新方法可能会提供创新的广谱杀菌纳米系统。这些系统可同时引起木材物理化学特性的改变,从而限制生长需求的可用性。这些改变可以通过降低吸水性、限制木材成分的进入以及减少木材结构中的空隙来有效抑制生物退化过程。最后,本综述强调了纳米技术方法在抗生物劣化木材方面的新机遇、挑战和前景,并探讨了与这些方法相关的一些技术经济、环境和安全方面的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Bioresources and Bioproducts
Journal of Bioresources and Bioproducts Agricultural and Biological Sciences-Forestry
CiteScore
39.30
自引率
0.00%
发文量
38
审稿时长
12 weeks
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