Askari-Sedeh Mahdi, Baghani Mostafa
School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran 14399-57131, Iran.
Gels. 2023 Jul 10;9(7):563. doi: 10.3390/gels9070563.
pH-responsive hydrogels are recognized as versatile sensors and actuators due to their unique time-dependent properties. Specifically, pH-sensitive hydrogel-based bilayers exhibit remarkable bending capabilities when exposed to pH-triggered swelling. This study introduces a semi-analytical technique that combines non-linear solid mechanics with ionic species transport to investigate the bending behavior of such bilayers. The technique is validated through numerical simulations, exploring the influence of kinetic and geometric properties on bilayer behavior. The results highlight the significance of the interfacial region, particularly in configurations with lower hydrogel geometric ratios, which are susceptible to rupture. The study also uncovers the benefits of a lower hydrogel layer ratio in improving the swelling rate and final deflection, with a stronger effect observed in the presence of a buffer solution. Additionally, the compressibility of the elastomer contributes to the durability of the final bent shape. These findings enhance our understanding of pH-sensitive hydrogel-based bilayers and offer valuable insights for their design and optimization in diverse applications.
pH响应水凝胶因其独特的时间依赖性特性而被视为多功能传感器和致动器。具体而言,基于pH敏感水凝胶的双层结构在受到pH触发的溶胀时表现出显著的弯曲能力。本研究引入了一种半解析技术,该技术将非线性固体力学与离子物种传输相结合,以研究此类双层结构的弯曲行为。通过数值模拟对该技术进行了验证,探讨了动力学和几何特性对双层行为的影响。结果突出了界面区域的重要性,特别是在水凝胶几何比率较低的结构中,这些结构容易破裂。该研究还揭示了较低的水凝胶层比率在提高溶胀速率和最终挠度方面的益处,在存在缓冲溶液的情况下观察到更强的效果。此外,弹性体的可压缩性有助于最终弯曲形状的耐久性。这些发现加深了我们对基于pH敏感水凝胶的双层结构的理解,并为其在各种应用中的设计和优化提供了有价值的见解。