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首页> 外文期刊>Advanced Functional Materials >Achieving the Upper Bound of Piezoelectric Response in Tunable, Wearable 3D Printed Nanocomposites
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Achieving the Upper Bound of Piezoelectric Response in Tunable, Wearable 3D Printed Nanocomposites

机译:在可调,可穿戴的3D打印纳米复合材料中实现压电响应的上限

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The trade-off between processability and functional responses presents significant challenges for incorporating piezoelectric materials as potential 3D printable feedstock. Structural compliance and electromechanical coupling sensitivity have been tightly coupled: high piezoelectric responsiveness comes at the cost of low compliance. Here, the formulation and design strategy are presented for a class of a 3D printable, wearable piezoelectric nanocomposite that approaches the upper bound of piezoelectric charge constants while maintaining high compliance. An effective electromechanical interphase model is introduced to elucidate the effects of interfacial functionalization between the highly concentrated perovskite nanoparticulate inclusions (exceeding 74 wt%) and light-sensitive monomer matrix, shedding light on the significant enhancement of piezoelectric coefficients. It is shown that, through theoretical calculation and experimental validations, maximizing the functionalization level approaches the theoretical upper bound of the piezoelectric constant d(33) at any given loading concentration. Based on these findings, their applicability is demonstrated by designing and 3D printing piezoelectric materials that simultaneously achieve high electromechanical sensitivity and structural functionality, as highly sensitive wearables that detect low pressure air (<50 Pa) coming from different directions, as well as wireless, self-sensing sporting gloves for simultaneous impact absorption and punching force mapping.
机译:在可加工性和功能响应之间的权衡提出了将压电材料作为潜在的3D可打印原料并入的重大挑战。结构柔韧性和机电耦合灵敏度已紧密耦合:高压电响应性是以低柔韧性为代价的。在这里,为一类3D可打印,可穿戴的压电纳米复合材料提出了配方和设计策略,该复合材料在保持高顺应性的同时接近压电电荷常数的上限。引入了有效的机电界面模型,以阐明高浓度钙钛矿纳米微粒夹杂物(超过74 wt%)和光敏单体基质之间的界面功能化作用,从而避免了压电系数的显着提高。结果表明,通过理论计算和实验验证,在任何给定的负载浓度下,最大化官能化水平均接近压电常数d(33)的理论上限。基于这些发现,它们的适用性通过设计和3D打印压电材料来证明,它们同时实现了很高的机电灵敏度和结构功能,以及检测来自不同方向的低压空气(<50 Pa)以及无线的高灵敏度可穿戴设备,自感应运动手套,可同时吸收冲击和冲压力。

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