Yuze Ye, Shouyi Ni, Zhilong Peng, Zijian Xie, Zhiyuan Zhang, Lin Xie, Jinjun Duan, Shihong Xiong, Siyuan Liu, Qiyun Zhong, Keju Ji, Xinyu Lu, Hu Hou, Bin Yang, Fengjiang Zhan, Jianfeng Zhao, Qingsong He
Reconciling strong adhesion with easy detachment remains a fundamental challenge for interfacial science. Here, we present a switchable bioinspired microstructured dry adhesive utilizing shape memory polymers (SMPs). By exploiting the shape memory effect to dynamically modulate the material modulus and contact area, the adhesive achieves a maximum adhesion strength of 525 kPa, an adhesion-to-preload ratio of 2.6, and a switching ratio of 5.4. We elucidate the underlying buckling instability and shape memory mechanisms, establishing an adhesion model based on a bilinear-cohesive-zone approach. The adhesive demonstrates a 90.3% self-cleaning efficiency, high stability against surface roughness variations, and durability exceeding 400 cycles across a diverse range of substrates. Finally, we demonstrate its practical utility through grasping complex objects and enabling unmanned aerial vehicles (UAVs) to perch and relaunch on various surfaces.