Shingange Katekani, Swart Hendrik, Mhlongo Gugu H
DST/CSIR National Centre for Nanostructured Materials, Council for Scientific and Industrial Research, Pretoria 0001, South Africa.
Department of Physics, University of Free State, Bloemfontein 9300, South Africa.
ACS Omega. 2019 Nov 5;4(21):19018-19029. doi: 10.1021/acsomega.9b01989. eCollection 2019 Nov 19.
Herein, we report on one-dimensional porous Au-modified LaFeO nanobelts (NBs) with high surface area, which were synthesized through the electrospinning method. The incorporation and coverage of Au nanoparticles (NPs) on the surface of the LaFeO NBs was achieved by adjusting the HAuCl amount in the precursor solution. Successful incorporation of Au NPs was examined by X-ray diffraction, high-resolution transmission electron microscopy, and X-ray photoelectron spectroscopy. The gas-sensing performance of both the pure and Au/LaFeO NB-based sensors was tested toward 2.5-40 ppm of acetone at working temperatures in the range from room temperature to 180 °C. The gas-sensing findings revealed that Au/LaFeO NB-based sensor with the Au concentration of 0.3 wt % displayed improved response of 125-40 ppm of acetone and rapid response and recovery times of 26 and 20 s, respectively, at an optimal working temperature of 100 °C. Furthermore, all sensors demonstrated an excellent response toward acetone and remarkable selectivity against NO, NH, CH, and CO. Hence, the Au/LaFeO-NB-based sensor is a promising candidate for sensitive, ultrafast, and selective acetone detections at low concentrations. The gas-sensing mechanism of the Au/LaFeO sensors is explained in consideration of the catalytic activity of the Au NPs, which served as direct adsorption sites for oxygen and acetone.
在此,我们报道了通过静电纺丝法合成的具有高表面积的一维多孔金修饰的镧铁氧体纳米带(NBs)。通过调节前驱体溶液中HAuCl的量,实现了金纳米颗粒(NPs)在镧铁氧体NBs表面的掺入和覆盖。通过X射线衍射、高分辨率透射电子显微镜和X射线光电子能谱对金NPs的成功掺入进行了检测。在室温至180°C的工作温度下,测试了纯镧铁氧体NB基传感器和金/镧铁氧体NB基传感器对2.5 - 40 ppm丙酮的气敏性能。气敏测试结果表明,金浓度为0.3 wt%的金/镧铁氧体NB基传感器在100°C的最佳工作温度下,对125 - 40 ppm丙酮的响应得到改善,响应时间和恢复时间分别为26秒和20秒。此外,所有传感器对丙酮均表现出优异的响应,对NO、NH、CH和CO具有显著的选择性。因此,金/镧铁氧体-NB基传感器是一种有前途的用于低浓度丙酮灵敏、超快和选择性检测的候选材料。考虑到金NPs的催化活性,解释了金/镧铁氧体传感器的气敏机制,金NPs作为氧气和丙酮的直接吸附位点。