纺织学报 ›› 2026, Vol. 47 ›› Issue (06): 35-42.doi: 10.13475/j.fzxb.20250909301

• 纤维材料 • 上一篇    下一篇

纤维素气凝胶的多尺度结构特征及其隔热性能

毕圣洁1,2, 李叶燃1,2(), 郭勇德3, 钱晓明1,2, 王闻宇1,2   

  1. 1 天津工业大学 纺织科学与工程学院天津 300387
    2 先进纺织复合材料教育部重点实验室天津 300387
    3 海南欣龙无纺股份有限公司海南 海口 570125
  • 收稿日期:2025-09-25 修回日期:2026-04-07 出版日期:2026-06-15 发布日期:2026-08-19
  • 通讯作者: 李叶燃(1994—),女,讲师,博士。主要研究方向为纤维功能改性、太阳能海水淡化。E-mail:liyeran@tiangong.edu.cn
  • 作者简介:毕圣洁(1999—),女,硕士生。主要研究方向为细菌纤维素气凝胶应用。
  • 基金资助:
    国家自然科学基金项目(51803108);天津市自然科学基金重点项目(20JCZDJC00350);海南省博士后研究项目(390389)

Multiscale structural characteristics and thermal insulation properties of cellulose aerogels

BI Shengjie1,2, LI Yeran1,2(), GUO Yongde3, QIAN Xiaoming1,2, WANG Wenyu1,2   

  1. 1 School of Textile Science and EngineeringTiangong UniversityTianjin 300387, China
    2 Key Laboratory for Advanced Textile Composite Materials(Ministry of Education)Tianjin 300387, China
    3 Hainan Xinlong Nonwovens Co.Ltd., HaikouHainan 570125, China
  • Received:2025-09-25 Revised:2026-04-07 Published:2026-06-15 Online:2026-08-19

摘要:

为推动天然纳米纤维素材料在隔热应用中的高效利用,提出了一种创新策略,旨在构建具有多尺度结构的细菌纤维素气凝胶。以细菌纤维素(BC)作为三维纳米纤维骨架,通过一步冷冻干燥法,成功构建了结合了微米级骨架和纳米多孔结构的多尺度复合气凝胶体系。系统地探讨了不同BC质量分数对气凝胶材料微观结构、孔隙特性以及热性能的影响。研究结果表明:通过精确控制BC质量分数,可调整气凝胶的微米级骨架,有效地构建气凝胶的多尺度孔隙结构;特别是BC质量分数为0.4%的气凝胶材料,其整体结构连续,孔径分布均匀且孔隙率高,展现出0.021 65 W/(m·K)的低导热系数,在保持低密度的同时,提供了卓越的隔热性能。该气凝胶具有一定的耐水性和柔韧性,可支撑其在高温可穿戴领域的广泛应用。

关键词: 气凝胶, 细菌纤维素, 多尺度结构, 导热系数, 隔热性能, 冷冻干燥法

Abstract:

Objective This study aims to investigate the relationship between multi-scale structure and thermal insulation performance of bacterial cellulose (BC) composite aerogels. By addressing the microstructure control mechanisms during preparation, this work seeks to establish a green and efficient strategy for utilizing natural nanocellulose in high-performance insulation materials.

Method To achieve the efficient application of natural nanocellulose materials in the field of thermal insulation, this paper proposes a novel strategy for constructing multi-scale structured bacterial cellulose nano-aerogels. Using bacterial cellulose as a three-dimensional nanofiber skeleton, a multi-scale aerogel featuring a micrometer-scale framework and a nanoporous structure was fabricated via freeze-drying. The article systematically investigates the effects of different concentrations on the morphology, pore characteristics, and thermal conductivity of the aerogel materials, and comprehensively evaluates their thermal insulation performance.

Results Aerogels are a novel class of materials with unique properties, whose microstructure and macroscopic performance are influenced by multiple factors. This study reveals that precise control of bacterial cellulose concentration enables effective regulation of the micrometer-scale framework, allowing the construction of a multi-scale porous structure. Optimization of this structure is crucial for enhancing aerogel performance. BC-4, for example, exhibited a continuous structure with uniform pore distribution and a porosity as high as 94%. This highly porous structure enabled the aerogel to maintain low density while possessing excellent thermal insulation properties. Additionally, BC-4 demonstrated remarkable thermal stability, with its structure remaining virtually unchanged after heating at 180 ℃ for 360 min. Its thermal conductivity was as low as 0.021 65 W/(m·K), significantly lower than that of many traditional insulation materials, endowing it with substantial application potential in the field of thermal insulation. A JK804 multi-channel temperature tester was employed to evaluate its thermal insulation performance. Under ambient temperatures of 60, 70, 80, 90, and 100 ℃, the temperature differences between the upper and lower surfaces of the BC aerogel reached 20-24℃, 25-32 ℃, 25.7-36.7 ℃, 35.7-46.1 ℃, 40.2-51.4 ℃, respectively. As the lower surface temperature increased, the temperature change on the upper surface gradually decreased, indicating stable insulation efficiency even at elevated temperatures. Compared with down materials, BC aerogels exhibited superior thermal insulation performance, and the good performance was maintained even after wetting treatment. Furthermore, the aerogel demonstrated excellent flexibility, recovering its original shape within five seconds after folding, suggesting broad application prospects in the field of high-temperature wearable materials.

Conclusion This study successfully utilized freeze-drying technology to achieve the one-step preparation of BC nano-aerogel. By precisely adjusting the concentration of BC, a multi-scale composite aerogel system that combines a micrometer-scale framework with a nano-porous structure was established, and the insulating performance of the aerogel under various temperature conditions was also explored to assess its potential and limitations in practical applications. The research demonstrated the potential of BC nano-aerogel as a high-performance insulating material but also provided new perspectives for further optimizing its performance and expanding its application fields. This innovative approach not only offers a new perspective for the green construction and structure-performance optimization of natural nanofiber composite insulating materials but also, due to the aerogel'

Key words: aerogel, bacterial cellulose, multi-scale structure, thermal conductivity, thermal insulation performance, freeze-drying

中图分类号: 

  • TS102.511

图1

多尺度结构示意图和不同放大倍数的SEM照片"

图2

各样品截面结构和孔径"

图3

BC-1~BC-5孔隙直径及孔隙分布与孔隙率"

图4

各样品傅里叶红外光谱图、导热系数以及与其它体系对比"

表1

规格参数表"

名称 导热系数
(W·m-1·k-1
名称 导热系数
(W·m-1·k-1
P-B1[18] 0.021 1 RCAEs[23] 0.036 2
玻璃棉、矿物纤维 0.021 7 CGFs[22] 0.038 6
BFS-1.5[19] 0.023 BC-4 0.022
CA/Ca/BA-3[20] 0.024 BCSM[21] 0.045
聚氨酯 0.032

图5

BC-4热重分析曲线和高温加热前后的SEM照片"

图6

BC-1~BC-5气凝胶的隔热性能"

图7

BC-4气凝胶折叠前后对比图"

图8

隔热应用测试"

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