Aerospace Engineering and Aviation, School of Engineering, RMIT University, Bundoora, VIC, 3083, Australia.
Biotechnology and Food Sciences, School of Science, RMIT University, Bundoora, VIC, 3083, Australia.
Sci Rep. 2022 Sep 6;12(1):15105. doi: 10.1038/s41598-022-19458-0.
Mycelium fungal species exhibit fire retardant characteristics. The influence of the growth media on the fungal growth rates, biochemical composition, and microstructural characteristics and their relationship to thermal properties is poorly understood. In this paper, we demonstrate that molasses can support the growth of non-pathogenic Basidiomycota phylum fungal species producing bio-derived materials with potential fire retardation characteristics. Scanning electron microscopy and Fourier transform infrared (FTIR) spectrometry were used to interrogate the microstructural and biochemical properties of the molasses-grown mycelia species. Thermal decomposition of molasses-fed mycelia was evaluated via thermogravimetric analysis interfaced with FTIR for real-time evolved gas analysis. The morphological and microstructural characteristics of the residual char post-thermal exposure were also evaluated. The material characterization enabled the establishment of a relationship between the microstructural, biochemical properties, and thermal properties of molasses-fed mycelia. This paper presents a comprehensive exploration of the mechanisms governing the thermal degradation of three mycelial species grown in molasses. These research findings advance the knowledge of critical parameters controlling fungal growth rates and yields as well as how the microstructural and biochemical properties influence the thermal response of mycelia.
菌丝真菌物种表现出阻燃特性。生长介质对真菌生长速度、生物化学成分、微观结构特征及其与热性能的关系的影响了解甚少。本文证明了糖蜜可以支持产生具有潜在阻燃特性的生物衍生材料的无毒担子菌门真菌物种的生长。扫描电子显微镜和傅里叶变换红外(FTIR)光谱用于研究糖蜜培养的菌丝体的微观结构和生化特性。通过热重分析与实时演化气体分析联用,评估了糖蜜喂养的菌丝体的热分解。还评估了热暴露后残余炭的形态和微观结构特征。材料特性分析能够建立糖蜜喂养的菌丝体的微观结构、生化特性和热特性之间的关系。本文全面探讨了控制糖蜜中三种菌丝体热降解的机制。这些研究结果提高了控制真菌生长速度和产量的关键参数的认识,以及微观结构和生化特性如何影响菌丝体的热响应。