Lee Chanhong, Via Austin C, Heredia Aldo, Adjei Daniel A, Bartlett Michael D
Mechanical Engineering, Soft Materials and Structures Lab, Virginia Tech, Blacksburg, VA, 24061, USA.
Electrical Engineering, Virginia Tech, Blacksburg, VA, 24061, USA.
Adv Sci (Weinh). 2025 Jan;12(1):e2407588. doi: 10.1002/advs.202407588. Epub 2024 Oct 9.
Adhesives that excel in wet or underwater environments are critical for applications ranging from healthcare and underwater robotics to infrastructure repair. However, achieving strong attachment and controlled release on difficult substrates, such as those that are curved, rough, or located in diverse fluid environments, remains a major challenge. Here, an octopus-inspired adhesive with strong attachment and rapid release in challenging underwater environments is presented. Inspired by the octopus's infundibulum structure, a compliant, curved stalk, and an active deformable membrane for multi-surface adhesion are utilized. The stalk's curved shape enhances conformal contact on large-scale curvatures and increases contact stress for adaptability to small-scale roughness. These synergistic mechanisms improve contact across multiple length scales, resulting in switching ratios of over 1000 within ≈30 ms with consistent attachment strength of over 60 kPa on diverse surfaces and conditions. These adhesives are demonstrated through the robust attachment and precise manipulation of rough underwater objects.
在潮湿或水下环境中表现出色的粘合剂对于从医疗保健、水下机器人到基础设施修复等各种应用至关重要。然而,要在诸如弯曲、粗糙或处于不同流体环境的困难基材上实现牢固附着和可控释放,仍然是一项重大挑战。在此,我们展示了一种受章鱼启发的粘合剂,它在具有挑战性的水下环境中具有强大的附着力和快速释放能力。受章鱼漏斗结构的启发,我们采用了一种柔顺的弯曲柄部和一个用于多表面粘附的主动可变形膜。柄部的弯曲形状增强了在大规模曲率上的共形接触,并增加了接触应力,以适应小规模粗糙度。这些协同机制改善了跨多个长度尺度的接触,从而在约30毫秒内实现了超过1000的切换比,在不同表面和条件下具有超过60 kPa的一致附着强度。通过对粗糙水下物体的牢固附着和精确操作,展示了这些粘合剂的性能。