Yan Lei, Liu Zongguang, Wang Junzhuan, Yu Linwei
School of Electronic Science and Engineering/National Laboratory of Solid-State Microstructures, Nanjing University, Nanjing, 210023, People's Republic of China.
College of Physics Science and Technology/Microelectronics Industry Research Institute, Yangzhou University, Yangzhou, 225009, People's Republic of China.
Nanomicro Lett. 2025 Apr 14;17(1):218. doi: 10.1007/s40820-025-01724-1.
Soft electronics, which are designed to function under mechanical deformation (such as bending, stretching, and folding), have become essential in applications like wearable electronics, artificial skin, and brain-machine interfaces. Crystalline silicon is one of the most mature and reliable materials for high-performance electronics; however, its intrinsic brittleness and rigidity pose challenges for integrating it into soft electronics. Recent research has focused on overcoming these limitations by utilizing structural design techniques to impart flexibility and stretchability to Si-based materials, such as transforming them into thin nanomembranes or nanowires. This review summarizes key strategies in geometry engineering for integrating crystalline silicon into soft electronics, from the use of hard silicon islands to creating out-of-plane foldable silicon nanofilms on flexible substrates, and ultimately to shaping silicon nanowires using vapor-liquid-solid or in-plane solid-liquid-solid techniques. We explore the latest developments in Si-based soft electronic devices, with applications in sensors, nanoprobes, robotics, and brain-machine interfaces. Finally, the paper discusses the current challenges in the field and outlines future research directions to enable the widespread adoption of silicon-based flexible electronics.
柔性电子器件旨在在机械变形(如弯曲、拉伸和折叠)下发挥作用,在可穿戴电子设备、人造皮肤和脑机接口等应用中变得至关重要。晶体硅是用于高性能电子器件的最成熟、最可靠的材料之一;然而,其固有的脆性和刚性给将其集成到柔性电子器件中带来了挑战。最近的研究集中在通过利用结构设计技术赋予硅基材料柔韧性和可拉伸性来克服这些限制,比如将它们转变为薄纳米膜或纳米线。这篇综述总结了将晶体硅集成到柔性电子器件中的几何工程关键策略,从使用硬硅岛到在柔性基板上制造面外可折叠硅纳米膜,最终到使用气-液-固或面内固-液-固技术来塑造硅纳米线。我们探索了基于硅的柔性电子器件的最新进展,以及它们在传感器、纳米探针、机器人技术和脑机接口中的应用。最后,本文讨论了该领域当前面临的挑战,并概述了未来的研究方向,以推动基于硅的柔性电子器件的广泛应用。