Wang Congcong, Zhang Jingjing, Fu Qian, Niu Chenxi, Xu Yvtao, Chen Youhui, Zhao Zaowen, Lu Lingbin
Special Glass Key Lab of Hainan Province (Hainan University), State Key Laboratory of Marine Resource Utilization in South China Sea, School of Materials Science and Engineering, Hainan University, Haikou 570228, China.
Special Glass Key Lab of Hainan Province (Hainan University), State Key Laboratory of Marine Resource Utilization in South China Sea, School of Materials Science and Engineering, Hainan University, Haikou 570228, China.
Int J Biol Macromol. 2024 Mar;261(Pt 2):129865. doi: 10.1016/j.ijbiomac.2024.129865. Epub 2024 Jan 30.
Due to marvelous sensitivity and flexibility, conductive hydrogels are popularly used as strain sensors in intelligent skin and wearable electronic devices fields. However, hydrogel tends to be destroyed after long-term use or in accident, leading to performance degradation. Herein, we developed an environmental-friendly Ti-containing conductive hydrogel. The hydrogel network was constructed via a simple two-step method with coordination reaction and amidation reaction based on a metal ion precursor from transitional coordination. The synergies of reversible metal coordination bonds and dynamic hydrogen bonds endowed the hydrogel with excellent self-healing properties (3 h, 93.66 %), tensile properties (136.46 kPa), compression properties (1.122 MPa), and anti-fatigue performance. At the same time, the hydrogel showed excellent self-adhesion, even underwater. Due to Ti, electrical conductivity of the hydrogel was visibly enhanced (σ = 25.64 mS·cm), which resulted in fast response (TS [time sensitivity] = 24.78 s) and short recovery time (153 ms). As a flexible strain sensor, the hydrogel with stable conductivity and high sensitivity could precisely detect and distinguish a series of human motions, even different letter pronunciations. These remarkable features make it a promising application in the fields of intelligent skin and wearable electronic devices.
由于具有出色的灵敏度和柔韧性,导电水凝胶在智能皮肤和可穿戴电子设备领域被广泛用作应变传感器。然而,水凝胶在长期使用后或发生意外时容易被破坏,导致性能下降。在此,我们开发了一种环保型含钛导电水凝胶。该水凝胶网络通过一种简单的两步法构建,基于过渡配位的金属离子前体,通过配位反应和酰胺化反应形成。可逆金属配位键和动态氢键的协同作用赋予了水凝胶优异的自愈性能(3小时,93.66%)、拉伸性能(136.46kPa)、压缩性能(1.122MPa)和抗疲劳性能。同时,该水凝胶表现出优异的自粘性,即使在水下也是如此。由于含有钛,水凝胶的电导率显著提高(σ = 25.64 mS·cm),这导致其响应速度快(时间灵敏度TS = 24.78秒)且恢复时间短(153毫秒)。作为一种柔性应变传感器,这种具有稳定电导率和高灵敏度的水凝胶能够精确检测和区分一系列人体运动,甚至不同字母的发音。这些显著特性使其在智能皮肤和可穿戴电子设备领域具有广阔的应用前景。