Li Chenglong, Luo Hongyu, Lin Xinyi, Zhang Shun, Song Jizhou
Department of Engineering Mechanics, Soft Matter Research Center, and Key Laboratory of Soft Machines and Smart Devices of Zhejiang Province, Zhejiang University, Hangzhou 310027, China.
Department of Rehabilitation Medicine, The First Affiliated Hospital, Zhejiang University, Hangzhou 310003, China.
Proc Natl Acad Sci U S A. 2024 Jan 30;121(5):e2318739121. doi: 10.1073/pnas.2318739121. Epub 2024 Jan 24.
Transfer printing that enables heterogeneous integration of materials into spatially organized, functional arrangements is essential for developing unconventional electronic systems. Here, we report a laser-driven noncontact bubble transfer printing via a hydrogel composite stamp, which features a circular reservoir filled with hydrogel inside a stamp body and encapsulated by a laser absorption layer and an adhesion layer. This composite structure of stamp provides a reversible thermal controlled adhesion in a rapid manner through the liquid-gas phase transition of water in the hydrogel. The ultrasoft nature of hydrogel minimizes the influence of preload on the pick-up performance, which offers a strong interfacial adhesion under a small preload for a reliable damage-free pick-up. The strong light-matter interaction at the interface induces a liquid-gas phase transition to form a bulge on the stamp surface, which eliminates the interfacial adhesion for a successful noncontact printing. Demonstrations of noncontact transfer printing of microscale Si platelets onto various challenging nonadhesive surfaces (e.g., glass, key, wrench, steel sphere, dry petal, droplet) in two-dimensional or three-dimensional layouts illustrate the unusual capabilities for deterministic assembly to develop unconventional electronic systems such as flexible inorganic electronics, curved electronics, and micro-LED display.
能够将材料异质集成到空间有序的功能布局中的转移印刷技术,对于开发非常规电子系统至关重要。在此,我们报告了一种通过水凝胶复合印章实现的激光驱动非接触气泡转移印刷技术,该印章主体内部有一个填充水凝胶的圆形储液器,并由激光吸收层和粘附层封装。这种印章的复合结构通过水凝胶中水的液-气相转变,以快速的方式提供可逆的热控粘附力。水凝胶的超软性质使预加载对拾取性能的影响最小化,从而在小预加载下提供强大的界面粘附力,实现可靠的无损伤拾取。界面处强烈的光-物质相互作用诱导液-气相转变,在印章表面形成凸起,从而消除界面粘附力,实现成功的非接触印刷。将微米级硅片以二维或三维布局非接触转移印刷到各种具有挑战性的非粘性表面(如玻璃、钥匙、扳手、钢球、干花瓣、液滴)上的演示,展示了确定性组装以开发非常规电子系统(如柔性无机电子器件、曲面电子器件和微型发光二极管显示器)的非凡能力。