School of Materials Science and Engineering, Xi'an Polytechnic University, Xi'an 710048, P. R. China.
School of Materials Science and Chemical Engineering, Xi'an Technological University, Xi'an 710021, P. R. China.
ACS Appl Mater Interfaces. 2022 May 11;14(18):21253-21262. doi: 10.1021/acsami.2c03731. Epub 2022 Apr 29.
Flexible and wearable pressure sensors have gained great popularity in consumer electronics due to their potential applications in human healthcare, E-skin, and artificial intelligence interactions. MXene is regarded as one of the most ideal candidate sensing materials due to its high electrical conductivity and controllable interlayer space. However, the easy-to-oxidize characteristic of MXene materials greatly restricts the sensitivity and reliability of sensor devices, especially in wet climates. Herein, a highly sensitive and waterproof flexible pressure sensor using a free-standing hydrophobic bacterial cellulose/TiCT MXene (HBT) hybrid film as a sensing layer is fabricated by facile and effective nanocellulose intercalation and fluorine modification strategies. The obtained pressure sensor delivers high sensitivity (65.5 kPa), fast response (50 ms), wide linear sensing range (0.002-30 kPa) with a low detection limit of 0.57 Pa, and excellent repeatability over 50,000 cycles. Meanwhile, owing to the highly hydrophobic surface of the HTB film, the outstanding sensing features could be well retained, although immersed in water several times. Benefiting from the excellent sensing properties and water resistance, the HBT sensor serves as a wearable force sensor to monitor the full-range human physiological motions regardless of whether the conditions are normal or wet. This work provides a new pathway to design the MXene pressure sensor with high reliability and demonstrates the promising usage of HBT sensors in portable biomedical electronics.
柔性可穿戴压力传感器由于在人体医疗保健、电子皮肤和人工智能交互等方面的潜在应用而在消费电子产品中受到极大关注。MXene 因其高导电性和可控制的层间间距而被认为是最理想的候选传感材料之一。然而,MXene 材料易于氧化的特性极大地限制了传感器设备的灵敏度和可靠性,尤其是在潮湿的气候条件下。在此,通过简便有效的纳米纤维素插层和氟改性策略,制备了一种以独立式疏水性细菌纤维素/TiCT MXene(HBT)杂化薄膜为传感层的高灵敏度、防水性柔性压力传感器。所获得的压力传感器具有高灵敏度(65.5 kPa)、快速响应(50 ms)、宽线性传感范围(0.002-30 kPa),检测限低至 0.57 Pa,在 50000 次循环中具有优异的可重复性。同时,由于 HTB 薄膜具有高疏水性表面,即使多次浸入水中,出色的传感特性也能很好地保留。得益于优异的传感性能和耐水性,HBT 传感器可用作可穿戴力传感器,可监测全范围的人体生理运动,无论条件是正常还是潮湿。这项工作为设计具有高可靠性的 MXene 压力传感器提供了一条新途径,并展示了 HBT 传感器在便携式生物医学电子领域的应用前景。