Xu Dongsheng, Xu Pengcheng, Wang Xueqing, Chen Ying, Yu Haitao, Zheng Dan, Li Xinxin
School of Chemical and Environmental Engineering , Shanghai Institute of Technology , 100 Haiquan Road , Shanghai 201418 , China.
State Key Lab of Transducer Technology, Shanghai Institute of Microsystem and Information Technology , Chinese Academy of Sciences , 865 Changning Road , Shanghai 200050 , China.
ACS Appl Mater Interfaces. 2020 Feb 19;12(7):8091-8097. doi: 10.1021/acsami.9b17201. Epub 2020 Feb 3.
High-performance HCHO sensors are of great importance in various application fields such as indoor air quality assessments. Herein, bimetallic Ag-Pt nanoparticles are synthesized as high-performance catalysts for ZnO-based gas sensors. Spherical aberration (Cs)-corrected transmission electron microscopy images with atomic resolution clearly indicate that the prepared nanoparticles exhibit a novel Ag@Pt core-shell nanostructure with a pentagram shape. For high-performance HCHO sensor construction, integrated micro-electrodes are first fabricated with the microelectromechanical system (MEMS) technology. Then, the hydrothermal route is used to self-assemble well-aligned ZnO nanowire arrays onto the sensing microregion. After that, the pentagram-shaped Ag@Pt nanoparticles are loaded onto the surface of ZnO nanowires with the inkjet printing technique to form MEMS sensors with Ag@Pt@ZnO as the sensing material. The thoroughly sensing experiments indicate that the Ag@Pt nanoparticles exhibit satisfied catalytic activation to HCHO molecules. The experimental observed detection limit of our sensor to HCHO reaches the parts per billion level. To elucidate the HCHO-sensing mechanism, the online mass spectrum (online MS) is utilized to analyze the components of exhaust gas stream of HCHO flowing through the Ag@Pt@ZnO material. The online MS indicates that with the Ag@Pt catalyst, HCHO molecules are partially oxidized to HCOOH molecules at low temperatures and are completely oxidized to CO molecules at high temperatures.
高性能甲醛传感器在室内空气质量评估等各种应用领域中具有重要意义。在此,合成了双金属Ag-Pt纳米颗粒作为基于ZnO的气体传感器的高性能催化剂。具有原子分辨率的球差(Cs)校正透射电子显微镜图像清楚地表明,制备的纳米颗粒呈现出具有五角星形状的新型Ag@Pt核壳纳米结构。为构建高性能甲醛传感器,首先采用微机电系统(MEMS)技术制造集成微电极。然后,利用水热法将排列良好的ZnO纳米线阵列自组装到传感微区域上。之后,采用喷墨打印技术将五角星形状的Ag@Pt纳米颗粒负载到ZnO纳米线表面,形成以Ag@Pt@ZnO为传感材料的MEMS传感器。全面的传感实验表明,Ag@Pt纳米颗粒对甲醛分子表现出令人满意的催化活化作用。我们的传感器对甲醛的实验观测检测限达到十亿分之一水平。为阐明甲醛传感机制,利用在线质谱(online MS)分析流经Ag@Pt@ZnO材料的甲醛废气流的成分。在线质谱表明,在Ag@Pt催化剂作用下,甲醛分子在低温下部分氧化为甲酸分子,在高温下完全氧化为一氧化碳分子。