Liu Liang, Li Xinxia, Zhou Rui, Fan Yimin
Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, International Innovation Center for Forest Chemicals and Materials, College of Chemical Engineering, Jiangsu Provincial Key Lab of Pulp and Paper Science and Technology, College of Light Industry Science and Engineering, Nanjing Forestry University, Nanjing 210037, China.
Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, International Innovation Center for Forest Chemicals and Materials, College of Chemical Engineering, Jiangsu Provincial Key Lab of Pulp and Paper Science and Technology, College of Light Industry Science and Engineering, Nanjing Forestry University, Nanjing 210037, China.
Carbohydr Polym. 2024 Jan 15;324:121523. doi: 10.1016/j.carbpol.2023.121523. Epub 2023 Oct 23.
In this study, hydrophobic nanochitin aerogels are synthesized via one-pot synthesis strategy and subsequent freeze-drying technique, employing nanochitin, hexanal and formaldehyde as primary components. The tert-butyl alcohol (TBA)/water binary solvents are found efficient for well mixing of hydrophilic nanochitin and hydrophobic hexanal, which is fundamental for fabricating hydrophobic aerogels with water contact angle as high as 105°. Schiff base reaction between amino groups in nanochitin and aldehyde groups in hexanal is believed to be the main reason for the successful hydrophobization of nanochitin aerogels. Additionally, formaldehyde is employed to enhance the mechanical properties of aerogels via ice templated crosslinking technique. Nanochitin aerogels prepared in this work possess surface area as high as 237 m g, which are believed benefiting from the TBA/water binary solvents with lower density, smaller ice crystal and convenience in freeze-drying. The ultralow density, ultrahigh porosity, and hydrophobicity nature also lead to the advanced oil adsorption (as high as 210 g g) of nanochitin aerogels. The simple preparation process, nature sustainability and excellent adsorption performance is believed rendering nanochitin aerogels as a viable alternative for the remediation of oil spills.
在本研究中,以纳米几丁质、己醛和甲醛为主要成分,通过一锅合成策略和随后的冷冻干燥技术合成了疏水性纳米几丁质气凝胶。发现叔丁醇(TBA)/水二元溶剂对于亲水性纳米几丁质和疏水性己醛的良好混合是有效的,这对于制备水接触角高达105°的疏水性气凝胶至关重要。纳米几丁质中的氨基与己醛中的醛基之间的席夫碱反应被认为是纳米几丁质气凝胶成功疏水化的主要原因。此外,甲醛通过冰模板交联技术用于增强气凝胶的机械性能。本工作制备的纳米几丁质气凝胶具有高达237 m²/g的比表面积,这被认为得益于密度较低、冰晶较小且便于冷冻干燥的TBA/水二元溶剂。超低密度、超高孔隙率和疏水性也导致纳米几丁质气凝胶具有先进的吸油性能(高达210 g/g)。简单的制备工艺、天然可持续性和优异的吸附性能使得纳米几丁质气凝胶成为溢油修复的可行替代品。