Bioinspired Living Coating System for Regenerative and Circular Architecture

Q2 Engineering
Anna Sandak, Karen Butina Ogorelec, Ana Gubenšek, Faksawat Poohphajai
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引用次数: 0

Abstract

Surfaces of exposed materials are affected by biotic and abiotic degradation processes. They often are protected by architectural coatings that not only provide a decorative layer but also enhance integrity of the material structure. Common surface treatments often include mineral oil binders and other ingredients that are known to have a negative impact on the environment. To address these issues, an alternative bioinspired concept for materials protection based on engineered fungal biofilm is under development. This paper presents the first results related to the bioreceptivity of building materials and the initial steps of natural biofilm formation. This research concluded that fungal colonisation and the variability of microorganisms is influenced by the type of material and climate condition at the exposure site. Fungal infestation was lower on protected materials (e.g., with commercial coatings). Samples from the eastern and western exposure exhibited the highest fungal colonisation, whereas samples from the northern and southern exposure exhibited the least growth. Furthermore, the samples in close spatial proximity were colonized by different fungal microbiota. It was determined that Aureobasidium sp. is the dominant species in the early phase of colonisation. In the following steps, a bioactive protective coating system that works in synergy with nature will be developed. Based on the initial results Aureobasidium appears to be a viable candidate as an active, living component of a new nature-inspired coating system. The novel protection concept is based on three interrelated components – bioinspiration as a driving force for materials design, bio-based ingredients, and living fungal cells that will provide self-healing and bioremediation capacity. The living coating will be designed to protect various architectonic materials, including porous materials such as biomaterials, concrete, stone, and non-porous, as well as plastics, and metals. The ultimate goal is to advance the development of engineered living materials that interact, adapt, and respond to environmental changes.
用于再生和循环建筑的生物启发活涂层系统
暴露在外的材料表面会受到生物和非生物降解过程的影响。它们通常受到建筑涂料的保护,建筑涂料不仅提供装饰层,还能增强材料结构的完整性。常见的表面处理通常包括矿物油粘合剂和其他已知会对环境产生负面影响的成分。为了解决这些问题,一种基于工程真菌生物膜的替代性材料保护生物启发概念正在开发中。本文介绍了与建筑材料的生物可感性和自然生物膜形成的初始步骤有关的首批成果。这项研究得出结论,真菌的定殖和微生物的变异受材料类型和暴露地点气候条件的影响。受保护的材料(例如,有商业涂层的材料)的真菌侵染率较低。来自东部和西部曝晒区的样品真菌定植率最高,而来自北部和南部曝晒区的样品真菌生长率最低。此外,空间距离较近的样本也有不同的真菌微生物群落。在接下来的步骤中,将开发一种与自然协同作用的生物活性保护涂层系统。根据初步研究结果,Aureobasidium 似乎是一种可行的候选生物,可作为一种新的自然启发涂层系统的活性生物成分。这种新型保护概念基于三个相互关联的组成部分:作为材料设计驱动力的生物启发、生物基成分以及具有自我修复和生物修复能力的活真菌细胞。活体涂层将用于保护各种建筑材料,包括多孔材料,如生物材料、混凝土、石材和无孔材料,以及塑料和金属。最终目标是推动能够与环境变化相互作用、适应和响应的工程活体材料的发展。
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
CiteScore
1.20
自引率
0.00%
发文量
21
审稿时长
12 weeks
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