Duan Yongqing, Ding Yajiang, Xu Zhoulong, Huang YongAn, Yin Zhouping
State Key Laboratory of Digital Manufacturing Equipment and Technology, Huazhong University of Science and Technology, Wuhan 430074, China.
Flexible Electronics Research Center, Huazhong University of Science and Technology, Wuhan 430074, China.
Polymers (Basel). 2017 Sep 8;9(9):434. doi: 10.3390/polym9090434.
Micro/nano serpentine structures have widespread applications in flexible/stretchable electronics; however, challenges still exist for low-cost, high-efficiency and controllable manufacturing. Helix electrohydrodynamic printing (HE-printing) has been proposed here to realize controllable direct-writing of large area, highly aligned serpentine micro/nanofibers by introducing the rope coiling effect into printing process. By manipulating the flying trajectory and solidification degree of the micro/nano jet, the solidified micro/nanofiber flying in a stabilized helical manner and versatile serpentine structures deposited on a moving collector have been achieved. Systematic experiments and theoretical analysis were conducted to study the transformation behavior and the size changing rules for various deposited microstructures, and highly aligned serpentine microfibers were directly written by controlling the applied voltage, nozzle-to-collector distance and collector velocity. Furthermore, a hyper-stretchable piezoelectric device that can detect stretching, bending and pressure has been successfully fabricated using the printed serpentine micro/nanofibers, demonstrating the potential of HE-printing in stretchable electronics manufacturing.
微纳蜿蜒结构在柔性/可拉伸电子器件中有着广泛应用;然而,在低成本、高效率及可控制造方面仍存在挑战。本文提出螺旋电流体动力学打印(HE打印)方法,通过将绳索缠绕效应引入打印过程,实现大面积、高度取向的蜿蜒微纳纤维的可控直写。通过操控微纳射流的飞行轨迹和凝固程度,实现了以稳定螺旋方式飞行的凝固微纳纤维以及沉积在移动收集器上的多种蜿蜒结构。进行了系统实验和理论分析,以研究各种沉积微结构的转变行为和尺寸变化规律,并通过控制施加电压、喷嘴到收集器的距离以及收集器速度,直接写出了高度取向的蜿蜒微纤维。此外,利用打印出的蜿蜒微纳纤维成功制备了一种能够检测拉伸、弯曲和压力的超可拉伸压电器件,证明了HE打印在可拉伸电子制造中的潜力。