首页|柔韧隔热纤维素基气凝胶制备与性能

柔韧隔热纤维素基气凝胶制备与性能

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纤维素基气凝胶骨架强度差、脆性强,受外力压缩后隔热性能有所下降,不利于实际应用.针对这一问题,通过引入双硅烷偶联剂1,2-二(三甲氧基硅基)乙烷(BTMSE)与纤维素纳米纤维(CNF)形成共价交联网络,借助冷冻干燥技术构筑微米级多孔柔韧的隔热纤维素气凝胶,分析了气凝胶的微观形貌、化学结构,研究了 BTMSE加入量与气凝胶力学性能、导热系数之间的关系,探究了力学性能对隔热效果的影响.结果表明:气凝胶呈现典型的蜂窝状孔洞结构,具有98.15%的高孔隙率;共价交联作用使气凝胶能够承受自身500倍的重量而恢复原状,在应变为50%的情况下循环压缩200次后,应变损失仅为9.7%左右;由于低密度、交联网络和多孔结构的存在,气凝胶导热系数低至31.90 mW/(m·K);在60%压缩应变后导热系数增加量不超过1%.该改性气凝胶有望用于恶劣环境下的隔热保暖.
Preparation and properties of flexible thermal insulating cellulose aerogel
Objective New generation of cellulose aerogel has become a research hotspot in recent years because of its wide source of raw materials,good biocompatibility,low density and low thermal conductivity,and has been widely used in civil,military,aerospace and other fields.However,cellulose-based aerogel has some disadvantages such as poor skeleton strength,brittleness,which seriously limit its development and application in the field of thermal insulation.Therefore,a cellulose-based aerogel with high strength and high compressive resilience was studied by introducing silane coupling agent to covalent crosslinking with cellulose.Method A cellular-network aerogels with cellular-network structure was constructed by freeze-drying by using in situ covalent cross-linking of silane coupling agent 1,2-di(trimethoxysilyl)ethane(BTMSE)and cellulose nanofibers(CNF)to form strong interfacial interaction.By adjusting the content of silane coupling agent,the thermal insulation aerogel with high strength and good compressive resilience was obtained.The relationship between the amount of BTMSE added and the mechanical properties and thermal conductivity of aerogel was studied.The microstructure,chemical structure and thermal insulation properties of aerogel were analyzed.Results Chemical bonding was considered first in studying the forming mechanism of CNF/BTMSE aerogel.Under acidic conditions,BTMSE was hydrolyzed to form reactive silanol,and covalently was polycopated with the hydroxyl group on cellulose to form Si—O—C bond,which acted as the cross-linking point between CNF.Chemical bonding enabled cross-linking and entangling among CNF to form network structure.The second was the investigation of the temperature-induced effect.In the process of low temperature freezing,water continuously formed ice crystals,and layered ice crystals gradually grew and squeezed nanofibers,so that the nanofibers gathered among the ice crystals,and the fibers were tightly stacked and intertwined to form a three-dimensional network structure.Finally,after freeze drying,the ice crystals were directly sublimated to form a honeycomb cell structure.Due to chemical crosslinking with siloxane,the CNF/BTMSE aerogel demonstrated a more regular pore structure.After BTMSE modification,the pore size of cellulose aerogel showed a decreasing trend,proving the formation of crosslinking network.Infrared spectroscopy and XPS spectroscopy confirmed the successful introduction of silane coupling agents in 3# aerogel(the mass ratio of CNF and BTMSE is 2:3)and the covalent force with the hydroxyl group on cellulose.Under 60%compression strain,the strength of CNF aerogel was 13.1 kPa,and the strength of 3# aerogel was 34.8 kPa,and the deformation recovery rate was 97%after the external force was removed,indicating good resilience.In addition to higher compressive stress and resilience,the aerogel modified by silane coupling agent also showed excellent cyclic compressibility resistance.After 200 cycles of cyclic compression,the aerogel still maintained 90.4%of its initial height,and the strain loss was less than 10%.The regular pore structure formed by silane modification and the mesopole formed by crosslinked network make the aerogel demonstrated low thermal conductivity.The thermal conductivity of 3# aerogel was 31.90 mW/(m·K),representing good thermal insulation stability,and the thermal conductivity increase was kept below 1%after 60%compression strain,which is well below the 20%increase in CNF aerogels.The 3# aerogel produced a temperature difference of about 70 ℃ on a 130 ℃ platform,showing good thermal insulation performance.Conclusion High strength and superelastic cellulose based aerogel materials were prepared by in situ covalent crosslinking and freeze-induced assembly.It improves the problems that the structure of pure cellulose aerogel with poor resilience is easy to collapse and the thermal insulation performance is decreased in real environment.It has great application value in flexible thermal insulation field.

silane coupling agentcellulose aerogelthermal conductivitymechanical strengthcompressive resilience

时吉磊、唐春霞、付少海、张丽平

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江苏省纺织品数字喷墨印花工程技术研究中心,江苏无锡 214122

生态纺织教育部重点实验室(江南大学),江苏无锡 214122

硅烷偶联剂 纤维素气凝胶 导热系数 力学强度 压缩回弹性

国家自然科学基金项目

52203117

2024

纺织学报
中国纺织工程学会

纺织学报

CSTPCD北大核心
影响因子:0.699
ISSN:0253-9721
年,卷(期):2024.45(4)
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