Yang Tao, Deng Weili, Tian Guo, Deng Lin, Zeng Wanghong, Wu You, Wang Shenglong, Zhang Jieling, Lan Boling, Sun Yue, Jin Long, Yang Weiqing
Key Laboratory of Advanced Technologies of Materials (Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, P. R. China.
Research Institute of Frontier Science, Southwest Jiaotong University, Chengdu 610031, P. R. China.
Mater Horiz. 2023 Oct 30;10(11):5045-5052. doi: 10.1039/d3mh00603d.
Advanced flexible electronic devices make urgent demand for wearing comfort and data accuracy. Piezoelectric composites exhibit great potential, but mutually constrained mechanical strength and electrical output limit their further applications. Here, we design a gradient PMN-PT/PVDF nanocomposite a non-equilibrium process integrated with a modified electrospinning and hot-pressing process to modulate the piezoelectric output and mechanical strength. The enhanced piezoelectric output together with the mechanical strength of the gradient structure are verified from both the experimental and simulation results. Ascribed to a unique three-dimensional gradient distribution, the prepared PMN-PT/PVDF nanocomposite exhibits an excellent mechanical strength (830 MPa) and piezoelectric performance (1.08 V), which are substantially higher than those of a randomly dispersed nanocomposite. The enhancement mechanism is revealed in terms of polarization, stress and crystallinity. These results of the gradient structure offer new opportunities to understand the structure-related mechanical and electrical behaviors of a nanocomposite, and support the design of a nanocomposite with overall performance.
先进的柔性电子设备对佩戴舒适性和数据准确性提出了迫切需求。压电复合材料具有巨大潜力,但相互制约的机械强度和电输出限制了它们的进一步应用。在此,我们设计了一种梯度PMN-PT/PVDF纳米复合材料——一种与改进的静电纺丝和热压工艺相结合的非平衡工艺,以调节压电输出和机械强度。实验和模拟结果均验证了梯度结构增强的压电输出以及机械强度。由于独特的三维梯度分布,制备的PMN-PT/PVDF纳米复合材料表现出优异的机械强度(830MPa)和压电性能(1.08V),远高于随机分散的纳米复合材料。从极化、应力和结晶度方面揭示了增强机制。梯度结构的这些结果为理解纳米复合材料与结构相关的机械和电学行为提供了新机会,并支持具有整体性能的纳米复合材料的设计。