温度介导相位分离使强而可逆的机械和粘合水凝成为可能
Lei Zhang1, Siheng Wang1, Zhuomin Wang1
1Institute of Chemical Industry of Forestry Products, Key Laboratory of Biomass Energy and Material, Jiangsu Provinc, Key Laboratory of Chemical Engineering of Forest Products, National Forestry and Grassland Administration, National Engineering Research Center of Low-Carbon Processing and Utilization of Forest Biomass, and Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, Chinese Academy of Forestry, Nanjing 210042, People's Republic of China.
研究人员使用纤维素纳米纤维和温度介导相分离策略开发了一种新型水凝. 这创造了强,可逆和粘合性水凝,具有可调节的特性,适用于皮肤应用.
科学领域:
- 材料科学 材料科学 材料科学
- 聚合物化学 聚合物化学
- 生物材料工程 生物材料工程
背景情况:
- 开发具有强大的机械和粘合性质的水凝,用于工程和电子是具有挑战性的.
- 现有的方法通常需要复杂的预处理,并产生有限的皮肤适用性水凝.
- 热敏共聚合水凝看起来有希望,但由于脆性和粘合力较弱而受到影响.
研究的目的:
- 使用纤维素纳米纤维制造具有强大,可逆的机械和粘合性质的水凝.
- 为了解决当前水凝制备方法的局限性,并提高皮肤的适用性.
- 开发一个简单和高效的战略,以实现按需的水凝性能.
主要方法:
- 使用温度介导的相隔分离策略.
- 集成的纤维素纳米纤维与常见的共聚合物.
- 杆温度驱动的键的形成和解离,以控制相位分离.
主要成果:
- 在水凝中获得强而可逆的机械和粘合性能.
- 在皮肤上表现出显著的粘合性 (96.0%) 和机械性 (85.7%).
- 该战略通过温度变化实现了动态的,按需的物业控制.
结论:
- 开发的水凝为强大的附着性和可调节的机械性能提供了有前途的解决方案.
- 温度介导相位分离策略为凝制造提供了一种简单有效的方法.
- 这种方法对先进材料具有广泛的影响,特别是在皮肤接触应用和智能电子产品中.
更多相关视频
11:38Combining Microfluidics and Microrheology to Determine Rheological Properties of Soft Matter during Repeated Phase Transitions
Published on: April 19, 2018
09:09Synthesis of PolyN-isopropylacrylamide Janus Microhydrogels for Anisotropic Thermo-responsiveness and Organophilic/Hydrophilic Loading Capability
Published on: February 27, 2016
相关概念视频
Phase Transitions: Melting and Freezing
Heating and Cooling Curves
For instance, the addition of heat raises the temperature of a solid; the amount of heat absorbed depends on the heat capacity of the solid (q = mcsolidΔT). According to thermochemistry, the relation between the amount of heat absorbed or released by a substance, q, and its...
States of Water
Water freezes when the intermolecular forces are greater than the kinetic energy. Unlike most other substances, water is less dense in its solid state than in its liquid state. This is because each water molecule can form...
Phase Diagram
