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◆ Nature Communications2025-12-02· Wearable computer

Superior lead-free piezoceramics for wearable multimodal ultrasound imaging arrays

Haoyue Xue, Xing Huang, Xin Sun, Kai Wu, Zhi Tan, Hongsong Fan, Jing Sun, Laiming Jiang, Jiagang Wu

原始摘要(英文原文)· Original abstract
Medical ultrasound technology provides zero-radiation, non-invasive, high-penetration and high-resolution evaluation of body organs for diagnosing various diseases. However, challenges remain for emerging ultrasonic bioelectronics in terms of novel material exploration, structural flexibility, wearable integration. Here, we present a 64-channel lead-free ultrasound line imaging array transducer developed from biofriendly potassium sodium niobate-based ceramics, which enables wearable multimodal imaging through the incorporation of multilevel material structure engineering and flexible device design. On the materials engineering aspect, the lead-free ceramics exhibits superior piezoelectricity (d33 ~ 630 pC N−1, k33 ~ 0.66) by restoring long range ferroelectric ordering and suppressing excessive polar nanoregions. In terms of device architecture, the miniaturized array integrates 64 lead-free 1-3 piezo-elements on a flexible printed circuit board and a bioadhesive hydrogel layer for acoustic coupling and robust adhesion to the skin, enabling portable, high-precision operation with a center frequency of 8.36 MHz and a −6 dB bandwidth of over 40%. In wearable applications for the human body, this array demonstrates real-time high-resolution vascular imaging, blood flow dynamics, and elastography of muscle dynamics, advancing the next generation of wearable ultrasound technologies. This study reports a flexible, lead-free ultrasound imaging array that enables real-time, high-resolution, and wearable imaging of human tissues, advancing safer and more portable ultrasound technology.
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