Wu Huansheng, Wang Cong, Liu Linpeng, Duan Ji'an
State Key Laboratory of Precision Manufacturing for Extreme Service Performance, College of Mechanical and Electrical Engineering, Central South University, Changsha 410083, China.
Sensors (Basel). 2025 Jul 26;25(15):4643. doi: 10.3390/s25154643.
In this study, a facile and mask-free femtosecond laser direct writing (FLDW) approach is proposed to fabricate porous graphene (FLIG) patterns directly on polyimide (PI) substrates. By systematically adjusting the laser scanning spacing (10-25 μm), denser and more continuous microstructures are obtained, resulting in significantly enhanced thermal sensitivity. The optimized sensor demonstrated a temperature coefficient of 0.698% °C within the range of 40-120 °C, with response and recovery times of 10.3 s and 20.9 s, respectively. Furthermore, it exhibits remarkable signal stability across multiple thermal cycles, a testament to its reliability in extreme conditions. Moreover, the sensor was successfully integrated into a 3D-printed robotic platform, achieving both contact and non-contact temperature detection. These results underscore the sensor's practical adaptability for real-time thermal sensing. This work presents a viable and scalable methodology for fabricating high-performance FLIG-based flexible temperature sensors, with extensive application prospects in wearable electronics, electronic skin, and intelligent human-machine interfaces.
在本研究中,提出了一种简便且无需掩膜的飞秒激光直写(FLDW)方法,以直接在聚酰亚胺(PI)衬底上制备多孔石墨烯(FLIG)图案。通过系统地调整激光扫描间距(10 - 25μm),可获得更致密、更连续的微观结构,从而显著提高热灵敏度。优化后的传感器在40 - 120°C范围内的温度系数为0.698% °C,响应时间和恢复时间分别为10.3 s和20.9 s。此外,它在多个热循环中表现出显著的信号稳定性,证明了其在极端条件下的可靠性。此外,该传感器成功集成到3D打印机器人平台中,实现了接触式和非接触式温度检测。这些结果突出了该传感器在实时热传感方面的实际适用性。这项工作提出了一种可行且可扩展的方法来制造基于FLIG的高性能柔性温度传感器,在可穿戴电子设备、电子皮肤和智能人机界面等方面具有广泛的应用前景。