Liu Xueyu, Song Rongguo, Fu Huaqiang, Zhu Wei, Luo Kaolin, Xiao Yang, Zhang Bohan, Wang Shengxiang, He Daping
School of Science, Wuhan University of Technology, Wuhan 430070, China.
Hubei Engineering Research Center of RF-Microwave Technology and Application, Wuhan University of Technology, Wuhan 430070, China.
Materials (Basel). 2023 Apr 25;16(9):3370. doi: 10.3390/ma16093370.
In this paper, a radio frequency identification (RFID) tag is designed and fabricated based on highly electrical and thermal conductive graphene films. The tag operates in the ultrahigh-frequency (UHF) band, which is suitable for high-power microwave environments of at least 800 W. We designed the protection structure to avoid charge accumulation at the antenna's critical positions. In the initial state, the read range of the anti-high-power microwave graphene film tag (AMGFT) is 10.43 m at 915 MHz. During the microwave heating experiment, the aluminum tag causes a visible electric spark phenomenon, which ablates the aluminum tag and its attachment, resulting in tag failure and serious safety issues. In contrast, the AMGFT is intact, with its entire read range curve growing and returning to its initial position as its temperature steadily decreases back to room temperature. In addition, the proposed dual-frequency tag further confirms the anti-high-power microwave performance of graphene film tags and provides a multi-scenario interactive application.
本文基于高导电性和导热性的石墨烯薄膜设计并制作了一种射频识别(RFID)标签。该标签工作在超高频(UHF)频段,适用于至少800W的高功率微波环境。我们设计了保护结构以避免在天线关键位置积累电荷。初始状态下,抗高功率微波石墨烯薄膜标签(AMGFT)在915MHz时的读取范围为10.43m。在微波加热实验中,铝标签出现明显的电火花现象,这会烧蚀铝标签及其附着物,导致标签失效并引发严重的安全问题。相比之下,AMGFT完好无损,随着温度稳定降至室温,其整个读取范围曲线上升并回到初始位置。此外,所提出的双频标签进一步证实了石墨烯薄膜标签的抗高功率微波性能,并提供了多场景交互应用。