Tan Yiling, Du Bingsheng, Liang Chengyao, Guo Xuezheng, Zheng Hao, Liu Peilin, Yang Xi, Li Shichun, Jin Bo, Sun Jie
Institute of Chemical Materials, China Academy of Engineering Physics, Mianyang621900, China.
State Key Laboratory of Environment-friendly Energy Materials, Southwest University of Science and Technology, Mianyang621010, China.
Langmuir. 2022 Nov 15;38(45):13833-13840. doi: 10.1021/acs.langmuir.2c01982. Epub 2022 Nov 2.
Metal-oxide-based chemiresistive hydrogen sensors exhibit high sensitivity, long-term stability, and low cost and have been extensively applied in safety monitoring of H. However, the sensing performances are dramatically affected by the water vapor, resulting in reduced response value and increased response/recovery time. To improve the anti-humidity property of sensors, coating the breathable and hydrophobic membrane on the surface of the sensing film is an effective strategy. In this work, the poly[4,5-difluoro-2,2-bis(trifluoromethyl)-1,3-dioxole--tetrafluoroethylene] (Teflon AF-2400) was dip-coated on the surface of SnO in a commercial hydrogen sensor (TGS2615) as a breathable and hydrophobic membrane. For safety, He instead of H was used to test the gas permeability of membranes. The Teflon membrane shows a high He permeability of up to 40,700 Barrer and an excellent He/HO selectivity of 99. Moreover, Teflon shows high processability to form a defect-free coating on the rough surface of the sensing film and high chemical stability under the operando condition of the sensor. Thus, the Teflon-modified sensor possesses excellent selectivity with a value of 5, and the resistance is stable at 10,554 ± 3% Ω for 20 days in 80% RH. The modified sensor shows an improved anti-humidity property with a 75% response to 200 ppm H at 80% RH and has a low coefficient of variation value of 7.23% that shows advances than other reported sensors modified by coatings. The commercially available Teflon and the simple coating technology make the strategy easily scale up and show promising applications.
基于金属氧化物的化学电阻式氢气传感器具有高灵敏度、长期稳定性和低成本等特点,已广泛应用于氢气安全监测。然而,其传感性能会受到水蒸气的显著影响,导致响应值降低和响应/恢复时间增加。为了提高传感器的抗湿性,在传感膜表面涂覆透气疏水膜是一种有效的策略。在这项工作中,将聚[4,5-二氟-2,2-双(三氟甲基)-1,3-二氧杂环戊烯-四氟乙烯](特氟龙AF-2400)浸涂在商用氢气传感器(TGS2615)中SnO的表面作为透气疏水膜。为了安全起见,使用氦气而非氢气来测试膜的气体渗透性。特氟龙膜显示出高达40700巴耳的高氦气渗透性和99的优异氦气/水蒸气选择性。此外,特氟龙在传感膜粗糙表面上具有高加工性以形成无缺陷涂层,并且在传感器的操作条件下具有高化学稳定性。因此,特氟龙改性的传感器具有5的优异选择性,并且在80%相对湿度下电阻在10554±3%Ω稳定20天。改性传感器在80%相对湿度下对200 ppm氢气的响应提高了75%,具有7.23%的低变异系数值,比其他报道的涂层改性传感器更具优势。市售的特氟龙和简单的涂覆技术使该策略易于扩大规模并显示出有前景的应用。