气凝胶
芳纶
材料科学
凯夫拉
纳米纤维
保温
化学工程
复合材料
极限抗拉强度
微观结构
热导率
纳米技术
熔点
各向异性
蜂巢
纳米尺度
溶解
蜂窝结构
热的
聚合物
电导率
接触角
模数
热稳定性
共聚物
聚酰胺
分子动力学
层状结构
静电纺丝
制作
模板
冰点
作者
Chao Qiang,Minming Zou,Wenxing Luo,Jue Wang,Guangyu Zhu,Yifan Huang,Sifan Tan,Jinghui Fan,Bing Fu,Peng Luo,Yan Ma,Wenjing Chen,Xiongxin Jiang,Qinglin Li,Xiaowu Hu
出处
期刊:Langmuir
[American Chemical Society]
日期:2025-09-26
卷期号:41 (39): 26903-26914
被引量:1
标识
DOI:10.1021/acs.langmuir.5c03624
摘要
The manipulation of aramid nanofibers (ANFs) into macroscopic monolithic aerogels with ordered microstructures is critical for enabling their extensive and large-scale practical implementations. This study introduces a top-down strategy utilizing ice templates to prepare aramid aerogel monomers. The process involves dissolving Kevlar fibers in dimethyl sulfoxide (DMSO) under alkaline conditions to produce aramid nanofibers (ANF). Subsequently, the self-assembly of ANF was effectively tailored by using ice templating (referred to as O-ANF) and the nondirectional freezing technique (designated as D-ANF), respectively. The O-ANF aerogel exhibits a distinctive long-range ordered sheet structure with a honeycomb surface pattern, attributed to the low melting point of DMSO (18.4 °C). Axial thermal conductivity of the O-ANF aerogel was 93.5% better compared to the D-ANF aerogel, while its tensile strength in this direction was approximately 5.2 times greater. Molecular dynamics (MD) simulations were utilized to elucidate the mechanisms underlying the enhanced mechanical and thermal properties. Moreover, the O-ANF demonstrated superhydrophilicity, whereas the D-ANF exhibited a contact angle of 67.52°. As an organic aerogel, ANF possesses typical characteristics of low density and high porosity. Additionally, ANF exhibits superior insulation performance from -196 to 200 °C and flame retardancy. Given its exceptional properties and straightforward preparation method, ANF aerogels hold significant potential for applications in aerospace and fire protection.
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