压电
超声波传感器
材料科学
IMes公司
灵活性(工程)
声学
能量收集
电气工程
纳米技术
功率(物理)
复合材料
工程类
物理
催化作用
统计
化学
量子力学
卡宾
生物化学
数学
作者
Laiming Jiang,Bo Wu,Xiaowei Wei,Xiang Lv,Haoyue Xue,Gengxi Lu,Yushun Zeng,Jie Xing,Wenjuan Wu,Jiagang Wu
出处
期刊:Materials horizons
[Royal Society of Chemistry]
日期:2022-01-01
卷期号:9 (8): 2180-2190
被引量:45
摘要
Implantable medical electronics (IMEs) are now becoming increasingly prevalent for diagnostic and therapeutic purposes. Despite extensive efforts, a primary challenge for IMEs is reliable wireless power and communication to provide well-controlled, therapeutically relevant effects. Ultrasonic energy transfer and communication (UETC) employing traveling ultrasound waves to transmit energy has emerged as a promising wireless strategy for IMEs. Nevertheless, conventional UETC systems are rigid, bulky, and based on toxic lead-based piezoelectric materials, raising efficiency and safety concerns. Here, we present a novel transcutaneous UETC system based on a two-dimensional flexible lead-free piezoelectric array (f-LFPA) that hybridizes high-performance (piezoelectric coefficient d33 ≈ 503 pC N-1) (K,Na)NbO3-based eco-friendly piezo-units with soft structural components. The newly developed lead-free piezo-unit exhibits submicron ferroelectric domains and superior energy harvesting figures of merit (d33g33 ≈ 20 000 × 10-15 m2 N-1), resulting in the prepared f-LFPA demonstrating a high output voltage of 22.4 V, a power density of 0.145 W cm-2, and a signal-to-noise ratio of more than 30 dB within the FDA safety limits, while maintaining the flexibility for wide-angle receiving. Further ex vivo experiment demonstrates the adequate power supply capabilities of the f-LFPA and its possible application in future implantable eco-friendly bioelectronics for diagnostics, therapy, and real-time monitoring.
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