材料科学
压电
纳米技术
极化
制作
可伸缩电子设备
纳米纤维
柔性电子器件
光电子学
软机器人
极化(电化学)
弹性体
微加工
联轴节(管道)
纳米尺度
控制重构
数码产品
压电系数
聚合物
传感器
纳米光刻
纳米发生器
压电传感器
稳健性(进化)
热塑性聚氨酯
电极
纳米复合材料
含氟聚合物
生物界面
执行机构
作者
Guo Tian,Weili Deng,Li'ang Zhou,Tao Yang,Boling Lan,Shenglong Wang,Yue Sun,Yong Ao,Tianpei Xu,Longchao Huang,Long Jin,Weiqing Yang,Ghim Wei Ho
摘要
ABSTRACT The development of ultrathin, stretchable piezoelectric biointerfaces is fundamentally constrained by the lack of manufacturing strategies capable of simultaneously delivering precise microarchitectural patterning and stable polarization in mechanically compliant formats. Here, we report a one‐step electrohydrodynamic (EHD) direct‐writing strategy with in situ poling, enabling the concurrent fabrication and polarization of free‐standing, ultrathin piezoelectric microarchitectures without post‐processing. By coupling this manufacturing approach with a mechanism‐guided design based on thermoplastic polyurethane (TPU) and piezoelectric P(VDF‐TrFE) through controlled modulation of EHD deposition and polymer crystallization, we manipulate grain size and flatten the polarization barrier by introducing structural heterogeneity to achieve a high and stable piezoelectric coefficient of 34.5 pm V −1 in a highly stretchable architecture. The resulting sub‐20 µm serpentine microarchitectures exhibit excellent mechanical compliance, long‐term piezoelectric stability and deterministic architectural programmability. Integration with a breathable, controlled‐adhesion elastomeric biointerface ensures robust conformal coupling to soft, wet tissue. Ex vivo demonstrations validate reliable detection and classification of gastric mechanical states, highlighting a manufacturing‐enabled platform for organ‐conformal piezoelectric biointerfaces. This work offers a generalizable strategy to overcome long‐standing trade‐offs between piezoelectric performance, stretchability, and ultrathin form factors, paving the way for diverse applications in biointegrated electronics and soft sensing, and healthcare systems.
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