印刷电路板
材料科学
制作
无芯片射频识别
计算机科学
无线
数据记录器
电容电路
纳米技术
共振(粒子物理)
多路复用
工艺工程
锌
复合数
嵌入式系统
电气工程
光电子学
工作(物理)
物联网
无线传感器网络
热的
微加工
LC电路
电子元件
近场通信
陶瓷
工作温度
计算机硬件
材料选择
作者
James Bourely,Nicolas Fumeaux,Xavier Aeby,Jaemin Kim,Gilberto Siqueira,Christian Beyer,David Schmid,Oleksandr Vorobyov,Gustav Nyström,D. Briand
标识
DOI:10.1038/s41467-025-65458-9
摘要
Temperature monitoring within the cold chain, essential for safety of perishable products, typically employs devices such as battery-powered data loggers and radio-frequency identification tags. Such devices include non-eco-friendly components, posing challenges for their safe disposal and recycling. This study demonstrates the fabrication of a fully ecoresorbable, chipless, and wireless temperature-responsive tag, designed to irreversibly track temperature changes through a permanent shift in resonance frequency. The tag is printed on a customized moisture-resistant poly(β-hydroxybutyrate)-cellulose composite substrate. An RLC circuit made of printed zinc metallic traces, encapsulated with beeswax to prevent oxidation, enables seamless wireless operation. The tag utilizes bio-based phase-changing materials such as frozen olive, jojoba, and coconut oils to induce irreversible resonance frequency shifts of more than 30 MHz at respective melting points of 8 °C, 15 °C, and 25 °C. A cellulose capillary element efficiently absorbs the melted oil, enabling reliable operation at inclinations from 0° to 90°. At the end of its service life, the device can undergo disintegration in a compost environment within 9 weeks. This work demonstrates a sustainable chipless technology from material selection and manufacturing processes to end-of-life disposal as an advanced thermal indicator solution for cold chain temperature-excursion detection.
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