Zhang Jingsen, Di Lanbo, Yu Feng, Duan Dongzhi, Zhang Xiuling
College of Physical Science and Technology, Dalian University, Dalian 116622, China.
School of Chemistry and Chemical Engineering, Shihezi University, Shihezi 832003, China.
Nanomaterials (Basel). 2018 Sep 19;8(9):742. doi: 10.3390/nano8090742.
Commercial TiO₂ (P25) supported gold (Au/P25) attracts increasing attention. In this work, atmospheric-pressure (AP) cold plasma was employed to activate the Au/P25-As catalyst prepared by a modified impregnation method. The influence of cold plasma working gas (oxygen, argon, hydrogen, and air) on the structure and performance of the obtained Au/P25 catalysts was investigated. X-ray diffraction (XRD), UV-Vis diffuse reflectance spectroscopy (DRS), transmission electron microscopy (TEM), and X-ray spectroscopy (XPS) were adopted to characterize the Au/P25 catalysts. CO oxidation was used as model reaction probe to test the Au/P25 catalyst. XRD results reveal that supporting gold and AP cold plasma activation have little effect on the P25 support. CO oxidation activity over the Au/P25 catalysts follows the order: Au/P25-O₂P > Au/P25-As > Au/P25-ArP ≈ Au/P25-H₂P > Au/P25-AirP. Au/P25-AirP presents the poorest CO oxidation catalytic activity among the Au/P25 catalysts, which may be ascribed to the larger size of gold nanoparticles, low concentration of active [O], as well as the poisoning [NO]. The poor catalytic performance of Au/P25-ArP and Au/P25-H₂P is ascribed to the lower concentration of [O] species. 100% CO conversion temperatures for Au/P25-O₂P is 40 °C, which is 30 °C lower than that over the as-prepared Au/P25-As catalyst. The excellent CO oxidation activity over Au/P25-O₂P is mainly attributed to the efficient decomposition of gold precursor species, small size of gold nanoparticles, and the high concentration of [O] species.
商用二氧化钛(P25)负载的金(Au/P25)受到越来越多的关注。在本工作中,采用大气压(AP)冷等离子体对通过改进的浸渍法制备的Au/P25-As催化剂进行活化。研究了冷等离子体工作气体(氧气、氩气、氢气和空气)对所得Au/P25催化剂结构和性能的影响。采用X射线衍射(XRD)、紫外-可见漫反射光谱(DRS)、透射电子显微镜(TEM)和X射线光谱(XPS)对Au/P25催化剂进行表征。以CO氧化作为模型反应探针来测试Au/P25催化剂。XRD结果表明,负载金和AP冷等离子体活化对P25载体影响较小。Au/P25催化剂上的CO氧化活性顺序为:Au/P25-O₂P > Au/P25-As > Au/P25-ArP ≈ Au/P25-H₂P > Au/P25-AirP。Au/P25-AirP在Au/P25催化剂中表现出最差的CO氧化催化活性,这可能归因于金纳米颗粒尺寸较大、活性[O]浓度较低以及[NO]中毒。Au/P25-ArP和Au/P25-H₂P的催化性能较差归因于[O]物种浓度较低。Au/P25-O₂P的100% CO转化温度为40℃,比制备的Au/P25-As催化剂低30℃。Au/P25-O₂P上优异的CO氧化活性主要归因于金前驱体物种的有效分解、金纳米颗粒尺寸较小以及[O]物种浓度较高。