Zhao Zhihua, Zhang Hepeng, Chen Pu, Jin Guixin, Wu Lan
Henan University of Technology, No. 100 Lianhua Street, Zhengzhou High-Tech Development Zone, Henan, P.R.China (450001), Zhengzhou, 450001, CHINA.
Henan University of Technology, No. 100 Lianhua Street, Zhengzhou High-Tech Development Zone, Henan, P.R.China (450001), Zhengzhou, Henan, 450001, CHINA.
Nanotechnology. 2024 Oct 3. doi: 10.1088/1361-6528/ad82f3.
Two-dimensional material (2D material) MXene has great application potential in gas sensors because of its excellent controllable performance and vast specific surface area. In this study, we used a straightforward in-situ electrostatic self-assembly technique to create Fe(OH)3/Ti3C2Tx nanocomposites, which were then used to fabricate gas sensors for ammonia detection at room temperature (25 ℃). Several characterization methods were performed aimed at determining the surface appearance and construction of the nanocomposites, and the sensing characteristics and mechanism were also systematically examined. The findings demonstrate the effective incorporation of amorphous Fe(OH)3 nanoparticles on the surface of Ti3C2Tx. Additionally the nanocomposites of Fe(OH)3/Ti3C2Tx have considerably higher specific surface area than pure Ti3C2Tx, hence offering more active NH3 adsorption sites. The response of the sensor to 100 ppm NH3 was 48.6% at room temperature, which was 9.3 times more higher than that of pure Ti3C2Tx. The sensors also have the advantages of long-term stability (33 days), low NH3 detection limit (500 ppb), and rapid recovery time (85 s) and response times (78 s). It is anticipated that this work will be helpful for developing the new generation of wearable ammonia sensors at room temperature.
二维材料(2D材料)MXene因其出色的可控性能和巨大的比表面积,在气体传感器领域具有巨大的应用潜力。在本研究中,我们采用了一种简单的原位静电自组装技术来制备Fe(OH)3/Ti3C2Tx纳米复合材料,随后将其用于制造室温(25℃)下检测氨气的气体传感器。我们采用了多种表征方法来确定纳米复合材料的表面形貌和结构,并系统地研究了其传感特性和机理。研究结果表明,非晶态Fe(OH)3纳米颗粒有效地负载于Ti3C2Tx表面。此外,Fe(OH)3/Ti3C2Tx纳米复合材料的比表面积比纯Ti3C2Tx大得多,从而提供了更多的活性NH3吸附位点。该传感器在室温下对100 ppm NH3的响应率为48.6%,比纯Ti3C2Tx高出9.3倍。该传感器还具有长期稳定性(33天)、低NH3检测限(500 ppb)以及快速恢复时间(85 s)和响应时间(78 s)等优点。预计这项工作将有助于开发新一代室温可穿戴氨气传感器。