Wan Jun-Nan, Chen Qing-Yuan, Jiang Jian-Cheng, Guo Wei, Zuo Xiaoqing, Fei Chunlong, Yao Shanshan, Ruan Ju-Qi
School of Physics Science and Technology, Kunming University Kunming 650214 PR China
Faculty of Materials Science and Engineering, Kunming University of Science and Technology Kunming 650093 PR China.
RSC Adv. 2024 Jul 15;14(31):22229-22237. doi: 10.1039/d4ra03687e. eCollection 2024 Jul 12.
Bio-based materials with excellent acoustic absorption properties are in great demand in architecture, interior, and human settlement applications for efficient noise control. In this study, crayfish shells, a form of kitchen waste, are utilized as the primary material to produce ultralight and multifunctional chitin aerogels, which effectively eliminate noise. Different replacement solvents and freezing rates were employed to regulate the porous structures of chitin aerogels, and their resulting acoustic absorption performance was investigated. Results demonstrate that employing deionized water as the replacement solvent and utilizing a common-freeze mode (frozen refrigerator at -26 °C) can produce chitin aerogels with larger porosity (96.26%) and apertures, as well as thicker pore walls. This results in superior broadband acoustic absorption performance (with a maximum absorption coefficient reaching 0.99) and higher Young's modulus (28 kPa). Conversely, chitin aerogels solvent-exchanged with -butyl alcohol or subjected to quick-freeze mode (frozen liquid nitrogen) exhibit smaller porosity (92.32% and 94.84%) and apertures, thereby possessing stronger diffuse reflection of visible light (average reflectance of 94.30% and 88.18%), and enhanced low-frequency (500 to 1600 Hz) acoustic absorption properties. Additionally, the acoustic absorption mechanism of fabricated chitin aerogels was predicted using a simple three-parameter analysis Johnson-Champoux-Allard-Lafarge (JCAL) model. This study presents a novel approach to developing multifunctional biomass materials with excellent acoustic absorption properties, which could have a wide range of potential applications.
具有优异吸声性能的生物基材料在建筑、室内和人类居住应用中对有效噪声控制有巨大需求。在本研究中,小龙虾壳这种厨房废料被用作主要材料来制备超轻且多功能的几丁质气凝胶,其能有效消除噪声。采用不同的置换溶剂和冷冻速率来调控几丁质气凝胶的多孔结构,并研究其吸声性能。结果表明,使用去离子水作为置换溶剂并采用普通冷冻模式(在-26°C的冰箱中冷冻)可制备出具有更大孔隙率(96.26%)和孔径以及更厚孔壁的几丁质气凝胶。这导致了卓越的宽带吸声性能(最大吸收系数达到0.99)和更高的杨氏模量(28 kPa)。相反,用正丁醇进行溶剂置换或采用速冻模式(在液氮中冷冻)的几丁质气凝胶表现出较小的孔隙率(92.32%和94.84%)和孔径,从而具有更强的可见光漫反射(平均反射率分别为94.30%和88.18%)以及增强的低频(500至1600 Hz)吸声性能。此外,使用简单的三参数分析约翰逊 - 尚波 - 阿拉德 - 拉法尔(JCAL)模型预测了所制备几丁质气凝胶的吸声机制。本研究提出了一种开发具有优异吸声性能的多功能生物质材料的新方法,其可能有广泛的潜在应用。