Kim Minsoo, Kim Donghoon, Mirjolet Mathieu, Shepelin Nick A, Lippert Thomas, Choi Hongsoo, Puigmartí-Luis Josep, Nelson Bradley J, Chen Xiang-Zhong, Pané Salvador
Multi-Scale Robotics Lab, Institute of Robotics and Intelligent Systems, ETH Zurich, Tannenstrasse 3, Zurich, 8092, Switzerland.
PSI Center for Neutron and Muon Sciences, Paul Scherrer Institut, Villigen, 5232, Switzerland.
Adv Mater. 2024 Nov;36(47):e2404825. doi: 10.1002/adma.202404825. Epub 2024 Oct 10.
Interfacial strain engineering in ferroic nanomembranes can broaden the scope of ferroic nanomembrane assembly as well as facilitate the engineering of multiferroic-based devices with enhanced functionalities. Geometrical engineering in these material systems enables the realization of 3-D architectures with unconventional physical properties. Here, 3-D multiferroic architectures are introduced by incorporating barium titanate (BaTiO, BTO) and cobalt ferrite (CoFeO, CFO) bilayer nanomembranes. Using photolithography and substrate etching techniques, complex 3-D microarchitectures including helices, arcs, and kirigami-inspired frames are developed. These 3-D architectures exhibit remarkable mechanical deformation capabilities, which can be attributed to the superelastic behavior of the membranes and geometric configurations. It is also demonstrated that dynamic shape reconfiguration of these nanomembrane architectures under electron beam exposure showcases their potential as electrically actuated microgrippers and for other micromechanical applications. This research highlights the versatility and promise of multi-dimensional ferroic nanomembrane architectures in the fields of micro actuation, soft robotics, and adaptive structures, paving the way for incorporating these architectures into stimulus-responsive materials and devices.
铁电纳米膜中的界面应变工程可以拓宽铁电纳米膜组装的范围,并促进具有增强功能的多铁性基器件的工程化。这些材料系统中的几何工程能够实现具有非常规物理性质的三维结构。在此,通过结合钛酸钡(BaTiO,BTO)和钴铁氧体(CoFeO,CFO)双层纳米膜引入三维多铁性结构。利用光刻和衬底蚀刻技术,开发出了包括螺旋、弧形和受kirigami启发的框架在内的复杂三维微结构。这些三维结构展现出显著的机械变形能力,这可归因于膜的超弹性行为和几何构型。研究还表明,这些纳米膜结构在电子束照射下的动态形状重构展示了它们作为电驱动微夹钳及用于其他微机械应用的潜力。这项研究突出了多维铁电纳米膜结构在微驱动、软机器人技术和自适应结构领域的多功能性和前景,为将这些结构纳入刺激响应材料和器件铺平了道路。