通过立体光刻技术定制可调传感性能的皱纹

IF 24.5 Q1 CHEMISTRY, PHYSICAL
Ruiyi Jiang, Jie Pu, Yuxuan Wang, Jipeng Chen, Gangwen Fu, Xue Chen, Jiayu Yang, Jianghua Shen, Xing Sun, Jun Ding, Xi Xu
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引用次数: 0

摘要

导电聚合物水凝胶可以解决生物兼容性和耐久性方面的难题。然而,由于材料本身具有粘弹性,传统的导电聚合物水凝胶通常比较脆和脆弱。这种特性可能会由于滞后而导致传感器响应时间延迟。为了克服这些局限性,我们利用数字光处理技术设计了一种皱纹形态的三维(3D)基底,然后通过原位聚合形成互穿聚合物网络水凝胶。这种新颖的设计使皱纹形态导电聚合物水凝胶弹性体具有高精度和几何自由度,因为皱纹的大小可以通过调整处理时间来控制。导电聚合物水凝胶上的褶皱形态有效降低了其粘弹性,使样品具有响应时间快、滞后小、循环性能稳定和电阻变化显著等特点。同时,三维梯度结构提高了传感器在最小应力下的灵敏度,并表现出稳定的传感性能。这些特性显示了导电聚合物水凝胶作为柔性传感器的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Tailored wrinkles for tunable sensing performance by stereolithography

Tailored wrinkles for tunable sensing performance by stereolithography

Conducting polymer hydrogel can address the challenges of stricken biocompatibility and durability. Nevertheless, conventional conducting polymer hydrogels are often brittle and weak due to the intrinsic quality of the material, which exhibits viscoelasticity. This property may cause a delay in sensor response time due to hysteresis. To overcome these limitations, we have designed a wrinkle morphology three-dimensional (3D) substrate using digital light processing technology and then followed by in situ polymerization to form interpenetrating polymer network hydrogels. This novel design results in a wrinkle morphology conducting polymer hydrogel elastomer with high precision and geometric freedom, as the size of the wrinkles can be controlled by adjusting the treating time. The wrinkle morphology on the conducting polymer hydrogel effectively reduces its viscoelasticity, leading to samples with quick response time, low hysteresis, stable cyclic performance, and remarkable resistance change. Simultaneously, the 3D gradient structure augmented the sensor's sensitivity under minimal stress while exhibiting consistent sensing performance. These properties indicate the potential of the conducting polymer hydrogel as a flexible sensor.

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