Qu Yuwei, Zhang Jun
School of Physics & Electronic Information, Yantai University Yantai 264005 P.R. China
RSC Adv. 2024 Mar 28;14(15):10358-10369. doi: 10.1039/d4ra00553h. eCollection 2024 Mar 26.
The synergistic effect between bonding dissimilar metals is a very effective way to improve the performance of metal catalysts. In this work, we prepared a series of bimetallic co-doped ZnO hierarchical nanostructures by controlling Mn and Co contents. The gas-sensing properties of the sensors based on the bimetallic co-doped ZnO hierarchical nanostructures were studied systematically through different volatile organic compound (VOC) vapors for the temperature range from 160 to 400 °C. In the testing of normal butanol gas by the bimetallic co-doped ZnO sensor, its performance was tens of times higher than that of pure zinc oxide, and the response values to other VOCs tested were very low, which also indicates that the sensor has good selectivity. The promoted performance is attributed to the increase of adsorbed oxygen content on the surface of the sensor material due to the bimetallic synergistic enhancement effect. XPS spectra of O 1s region of the sensor show that the adsorbed oxygen content is 22.4%, which is higher than that of the pure ZnO (8.5%). The synergistic effect between bimetallic Mn and Co leads to electron enrichment on the surface of ZnO. Electron enrichment can not only promote the activation of ZnO, but also can help to improve the gas-sensing performance.
结合不同金属之间的协同效应是提高金属催化剂性能的一种非常有效的方法。在这项工作中,我们通过控制锰和钴的含量制备了一系列双金属共掺杂的ZnO分级纳米结构。基于双金属共掺杂ZnO分级纳米结构的传感器的气敏特性,在160至400°C的温度范围内,通过不同的挥发性有机化合物(VOC)蒸汽进行了系统研究。在双金属共掺杂ZnO传感器对正丁醇气体的测试中,其性能比纯氧化锌高出数十倍,并且对测试的其他VOC的响应值非常低,这也表明该传感器具有良好的选择性。性能的提升归因于双金属协同增强效应导致传感器材料表面吸附氧含量的增加。传感器O 1s区域的XPS光谱表明,吸附氧含量为22.4%,高于纯ZnO(8.5%)。双金属锰和钴之间的协同效应导致ZnO表面电子富集。电子富集不仅可以促进ZnO的活化,还有助于提高气敏性能。