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1.
采用浸渍法制备了Pt/CeO_2和Pt/Al2O_3催化剂,并通过XRD、BET、ICP-OES、H2-TPR、XPS等手段表征其物理化学性质.结果发现,Pt/CeO_2和Pt/Al2O_3催化剂上Pt负载量约为0.6%,Al2O_3载体上Pt颗粒尺寸更小,Pt/CeO_2的可还原性更强.甲苯催化氧化活性评价结果表明,Pt/CeO_2催化剂表现出更好的催化活性,T50=170℃,T90=190℃.通过UV-Raman、甲苯TPD、GC/MS、In-situ FTIR等手段进一步研究发现,Pt/CeO_2活化甲苯及反应供氧的机制与Pt/Al2O_3存在区别,其活性更好是因为:(1)负载在CeO_2表面存在高电子密度的Pt原子,具有更强的活化甲苯能力,可以直接使苯基和甲基间的C—C链发生断裂;(2)Pt的负载促进了CeO_2氧空位形成,进一步提高了CeO_2的储氧性能,加速氧循环.除了Pt解离气相氧之外,CeO_2还可以提供活性氧物种参与催化氧化甲苯的反应,进一步提高甲苯催化氧化效率.  相似文献   

2.
纳米CeO2催化氧化甲苯的形貌效应研究   总被引:2,自引:1,他引:1  
采用水热法合成CeO2纳米棒、纳米颗粒和纳米立方体,利用XRD、BET-N2、TEM/HRTEM、Raman、O2-TPD和H2-TPR等表征手段进行表征,并利用连续流固定床反应法研究各催化剂对甲苯的催化氧化性能.结果表明,CeO2纳米棒因具有高比表面积和细颗粒尺寸,且表面主要暴露高活性的{100}/{110}晶面,拥有更多的氧空位和高活性氧物种,因此,催化活性最高,CeO2纳米颗粒次之,立方体最低.原位红外甲苯催化氧化机理分析进一步表明,CeO2纳米颗粒和纳米立方体上生成的羧酸盐物质难以进一步深度氧化,而纳米棒能在贫氧和低温条件下诱导甲苯的完全氧化和产物脱附,使甲苯得以快速降解.  相似文献   

3.
使用乙二醇还原法制备了一系列不同尺寸的Pt-x纳米颗粒(x=1.41、1.57、1.79、1.95、2.12、2.32 nm),将其负载于棒状(rod)CeO_2载体上.考察了不同尺寸的Pt颗粒催化剂Pt-x/CeO_2-rod在甲苯催化氧化反应中的催化性能.结果显示,随着Pt颗粒尺寸的增加,催化剂活性先升高后降低.其中,Pt颗粒尺寸为1.79 nm时催化剂催化活性最好,T90=133℃.一般认为,Pt颗粒尺寸增加其分散度减小,导致催化活性降低.然而本实验结果表明,随Pt尺寸增加催化活性先升高后降低,并且基于催化剂表面Pt原子计算的TOFs(turnover frequencies)随Pt尺寸增加逐渐变大.紫外拉曼光谱(UV Raman)、XRD、XPS显示,随着Pt颗粒尺寸增加,催化剂Pt-x/Ce-rod表面氧空位的浓度逐渐增加.氧空位有效提高了催化剂晶格氧的流动,促进了氧气的吸附活化及传递过程.Pt/Ce催化剂催化氧化甲苯反应活性是Pt分散度以及CeO_2表面氧空位浓度双重作用的结果.  相似文献   

4.
在等离子体催化系统中,不同催化剂常表现出显著的性能差异.本文通过表面氧物种表征及臭氧氧化原位反应,探究了α-MnO2与CeO2两种常用催化剂在等离子体催化系统中催化氧化甲醇性能差异的本质原因.等离子体催化氧化甲醇的性能评价结果显示,在相同输入功率下CeO2对甲醇的转化率和CO2选择性均高于α-MnO2.氧气程序升温脱附(O2-TPD)和X射线光电子能谱(XPS)等表征手段及甲醇常温催化、O3分解和O3催化氧化实验结果表明,CeO2α-MnO2拥有更多的表面活性氧,能吸附活化更多的甲醇分子;同时,CeO2能更有效地利用臭氧分解产生的活性氧物种对甲醇进行深度氧化.进一步通过原位DRIFTS实验研究两种催化剂协同臭氧催化氧化甲醇反应中间产物的变化,结果表明,CeO2催化剂氧化甲醇的表面副产物较少,而α-MnO2表面则会累积大量的副产物碳酸盐,从而影响其催化性能.  相似文献   

5.
基于Zn O纳米棒的自腐蚀机制,分别在活性半焦表面修饰负载了CeO_2纳米管、CeO_2纳米颗粒,并发现活性半焦表面CeO_2纳米管的低温脱硝性能明显优于CeO_2纳米颗粒。通过N2吸附、XRD、XPD、NH3-TPD、H2-TPR等一系列表征发现:与纳米颗粒相比,CeO_2纳米管由于其独特的结构形式,表面暴露较多Ce、O原子,具有较高Ce3+与化学吸附氧Oα比例,拥有更多的酸性位点和较强的酸性,有利于NH3、NO的表面吸附和氧化,从而表现出较好的低温脱硝性能。  相似文献   

6.
纳米金属氧化物的光化学性质使其成为新的催化剂和杀菌剂,而活性氧化物种(Reactive Oxygen Species,ROS)作为其具有催化杀菌性能的主要原因受到广泛关注.本研究通过电子顺磁共振(EPR)自旋捕捉和自旋标记技术,研究了5种纳米金属氧化物(n Al_2O_3、n CuO、n Ti O_2、n Fe_2O_3和n ZnO)在不同光照条件下形成光生电子、羟基自由基(·OH)、超氧阴离子(O_2~-·)和单线态氧(~1O_2)的能力.结果表明,在光照过程中,n Al_2O_3、n CuO、n Ti O_2和n ZnO能够生成·OH和~1O_2,n Fe_2O_3只生成了~1O_2.其中,n Ti O_2生成的光生电子和·OH最多,n CuO仅次于n Ti O_2,n Al_2O_3和n ZnO能够生成·OH,但生成量很少.本实验结果可为预测和评价纳米金属氧化物的光催化性能及环境风险提供一定的理论支持.  相似文献   

7.
研究等离子体对柠檬酸络合法制备的Cu0.05Ce0.95-CA催化剂表面结构和物种的强化效应. TPO、H2-TPR、O2-TPD、XRD、BET和XPS等测试结果表明,催化剂处于等离子放电区时,其氧化碳烟燃烧的活性显著增强.在介质阻挡放电电压为9kV时,起燃温度为243.1℃,比无等离子的情况降低了65.1℃;燃烧峰值温度为302.8℃,降低92.7℃.在等离子体存在下,Cu0.05Ce0.95-CA催化剂有着更大的比表面积和更小的晶粒粒径;等离子体可以提高催化剂表面游离态的CuO的分散度,并使得更多的Cu2+进入CeO2晶格,形成更多的Cuy2+Ce1-y4+O2-y2-□y固熔体,催化剂储氧容量增大,在催化剂表面生成更多的活性氧物种,其流动、迁移和转化促进催化剂产生更多的氧空穴,如此循环,持续促进碳烟催化燃烧.  相似文献   

8.
采用聚合物辅助成型法,以乙二胺四乙酸(EDTA)和聚乙烯亚胺(PEI)为配位体制备了Co_3O_4/CeO_2催化剂,对其进行了氮气吸附、XRD、XPS、SEM、TEM、H2-TPR和CO-TPR等表征,并考察了材料的CO低温催化性能.结果表明,采用聚合物辅助成型法能够合成出具有三维空间网络结构的纳米Co_3O_4/CeO_2催化剂,Ce的加入有利于获得具有更小尺寸的Co_3O_4颗粒,并提高Co3+的相对含量,从而有利于CO低温催化性能的提高;Ce/Co的摩尔比为1时,样品具有最佳的CO催化性能,在催化温度为30℃时,可使初始浓度为100 ppm的CO完全转化;同时,纯氧气加热吹扫有利于催化剂的稳定再生.本研究可为CO低温催化剂的制备提供重要参考.  相似文献   

9.
采用尿素沉淀法制备了一系列Fe_2O_3/SAPO-34催化剂,考察了催化剂焙烧温度(200、300、400、500℃)对低温NH_3选择性催化还原(NH_3-SCR)NO性能的影响,并利用X射线衍射(XRD)、N_2吸附-脱附、原子吸收光谱(AAS)、场发射扫描电镜(FE-SEM)、X射线光电子能谱(XPS)、H_2程序升温还原(H_2-TPR)、NH_3程序升温脱附(NH_3-TPD)等多种手段对催化剂的表面结构和物理化学性质进行表征分析.XRD和FE-SEM分析表明,在较低的焙烧温度(400℃)下,铁物种能够高度均匀地负载在SAPO-34表面上.NH_3-TPD和H_2-TPR分析表明,高分散状态的Fe_2O_3使催化剂暴露出更多的强酸位和活性位,有利于提高催化剂的NH_3吸附和活化能力及氧化还原性能,从而使催化剂呈现出更高的低温SCR活性.BET和XPS分析表明,在较低的焙烧温度下,Fe_2O_3/SAPO-34催化剂具有更大的比表面积和更高的化学吸附氧比例,促进NO氧化为中间产物NO_2,从而加快低温SCR反应的进行.活性测试结果表明,300℃焙烧的Fe_2O_3/SAPO-34催化剂具有最佳的低温活性和较强的抗硫抗水性能,在空速为40000 h~(-1)的条件下,且反应温度为190~240℃时,NO转化率达90%以上且N_2选择性接近100%.  相似文献   

10.
以γ-Al_2O_3为载体,采用超声-等体积浸渍法制备CeO_2掺杂的Cu-Co-O/Al_2O_3催化剂,考察了催化剂对甲苯的催化燃烧性能,通过X线衍射(XRD)、程序升温还原(H_2-TPR)和扫描电子显微镜(SEM)等技术对催化剂进行表征.结果表明:稀土元素的加入不仅有利于活性组分在催化剂表面的分散,而且可以促进Cu-Co-O催化剂的还原温度向着低温方向发生移动.活性评价实验结果显示,进气浓度对催化剂催化活性的影响不大.添加Ce后催化剂对甲苯和二甲苯的催化燃烧反应温度均有不同幅度降低,其中对甲苯的效果更为显著.  相似文献   

11.
CeO2–TiO2composite supports with different Ce/Ti molar ratios were prepared by a homogeneous precipitation method, and V2O5–WO3/CeO2–TiO2catalysts for the selective catalytic reduction(SCR) of NOx with NH3 were prepared by an incipient-wetness impregnation method. These catalysts were characterized by means of BET, XRD, UV–Vis,Raman and XPS techniques. The results showed that the catalytic activity of V2O5–WO3/TiO2 was greatly enhanced by Ce doping(molar ratio of Ce/Ti = 1/10) in the TiO2 support.The catalysts that were predominantly anatase TiO2 showed better catalytic performance than the catalysts that were predominantly fluorite CeO2. The Ce additive could enhance the surface adsorbed oxygen and accelerate the SCR reaction. The effects of O2 concentration, ratio of NH3/NO, space velocity and SO2 on the catalytic activity were also investigated. The presence of oxygen played an important role in NO reduction. The optimal ratio of NH3/NO was 1/1 and the catalyst had good resistance to SO2 poisoning.  相似文献   

12.
The present article studies the effect of CeO2 and Al2O3 on the activity of Pd/Co3O4/cordierite catalyst in conversion of NO, CO, CnHm. The catalysts were characterized by temperature programmed reduction with hydrogen, X-ray diffraction, X-ray photoelectron spectroscopy and transmission electron microscopy. It is shown that the effect of CeO2 on the properties of Pd/Co3O4/cordierite catalyst depends on preparation method. The catalyst obtained by co-deposition of cerium and cobalt oxides has higher activity in CO oxidation (CO + O2 and CO + NO) and total hexane oxidation (C6H14 + O2). Such phenomenon is probably caused by more than stoichiometric amount of formed oxygen vacancies, an increase in both mobility of surface oxygen and dispersity of components in the catalytic composition. It is demonstrated that CeO2 addition promotes the SO2 resistance of Pd/Co3O4/cordierite. The second support decreases the activity of Pd/Co3O4/cordierite catalyst in the reactions of CO and C6H14 with oxygen because of CoAl2O4 formation.  相似文献   

13.
Chlorobenzene removal was investigated in a non-thermal plasma reactor using CeO2/HZSM-5 catalysts. The performance of catalysts was evaluated in terms of removal and energy efficiency. The decomposition products of chlorobenzene were analyzed. The results show that CeO2/HZSM-5 exhibited a good catalytic activity, which resulted in enhancements of chlorobenzene removal, energy efficiency, and the formation of lower amounts of by-products. With regards to CO2 selectivity, the presence of catalysts favors the oxidation of by-products, leading to a higher CO2 selectivity. With respect to ozone, which is considered as an unavoidable by-product in air plasma reactors, a noticeable decrease in its concentration was observed in the presence of catalysts. Furthermore, the stability of the catalyst was investigated by analyzing the evolution of conversion in time. The experiment results indicated that CeO2/HZSM-5 catalysts have excellent stability: chlorobenzene conversion only decreased from 78% to 60% after 75 hr, which means that the CeO2/HZSM-5 suffered a slight deactivation. Some organic compounds and chlorinated intermediates were adsorbed or deposited on the catalysts surface as shown by the results of Fourier Transform Infrared (FT-IR) spectroscopy, scanning electron microscope (SEM) and energy dispersive X-ray spectroscopy (EDS) analyses of the catalyst before and after the reaction, revealing the cause of catalyst deactivation.  相似文献   

14.
FeOx-CeO2 mixed oxides with increasing Fe/(Ce+Fe) atomic ratio (1-20 mol%) were prepared by sol-gel method and characterized by X-ray powder diffraction (XRD), Brunauer-Emmett-Teller (BET) and Hydrogen temperature-programmed reduction (H2-TPR) techniques. The dynamic oxygen storage capacity (DOSC) was investigated by mass spectrometry with CO/O2 transient pulses. The powder XRD data following Rietveld refinement revealed that the solubility limit of iron oxides in the CeO2 was 5 mol% based on Fe/(Ce+Fe). The lattice parameters experienced a decrease followed by an increase due to the influence of the maximum solubility limit of iron oxides in the CeO2. TPR analysis revealed that Fe introduction into ceria strongly modified the textual and structural properties, which influenced the oxygen handling properties. DOSC results revealed that Ce-based materials containing Fe oxides with multiple valences contribute to the majority of DOSC. The kinetic analysis indicated that the calculated apparent kinetic parameters obey the compensation effect. The three-way catalytic performance for Pd-only catalysts based on the Fe doping support exhibited the redundant iron species separated out of the CeO2 and interacted with the ceria and Pd species on the surface, which seriously influenced the catalytic properties, especially after hydrothermal aging treatment.  相似文献   

15.
Pt catalysts with nitrogen-doped graphene oxide (GO) as support and CeO2 as promoter were prepared by impregnation method,and their catalytic oxidation of formaldehyde (HCHO) at room temperature was tested.The Pt-CeO2/N-rGO (reduced GO) with a mass fraction of 0.7% Pt and 0.8%CeO2 exhibited an excellent catalytic performance with the 100% conversion of HCHO at room temperature.Physicochemical characterization demonstrated that nitrogendoping greatly increased the...  相似文献   

16.
We describe here a one-step method for the synthesis of Au/TiO2 nanosphere materials, which were formed by layered deposition of multiple anatase TiO2 nanosheets. The Au nanoparticles were stabilized by structural defects in each TiO2 nanosheet, including crystal steps and edges, thereby fixing the Au–TiO2 perimeter interface. Reactant transfer occurred along the gaps between these TiO2 nanosheet layers and in contact with catalytically active sites at the Au–TiO2 interface. The doped Au induced the formation of oxygen vacancies in the Au–TiO2 interface. Such vacancies are essential for generating active oxygen species (*O) on the TiO2 surface and Ti3 + ions in bulk TiO2. These ions can then form Ti3 +–O–Ti4 + species, which are known to enhance the catalytic activity of formaldehyde (HCHO) oxidation. These studies on structural and oxygen vacancy defects in Au/TiO2 samples provide a theoretical foundation for the catalytic mechanism of HCHO oxidation on oxide-supported Au materials.  相似文献   

17.
孙正男  杨琦  纪冬丽  郑琳 《环境科学》2015,36(6):2154-2160
以浸渍法制备的新型纳米Fe3O4/Ce O2为催化剂,3,4-二氯三氟甲苯(3,4-DCBTE)为目标污染物,在Fe3O4/Ce O2-H2O2非均相类Fenton体系中对目标污染物的降解进行研究,考察催化剂的催化效果和温度、p H、H2O2投加量等因素对催化剂催化效果的影响.结果表明,以纳米Fe3O4/Ce O2作为催化剂的非均相类Fenton体系对3,4-二氯三氟甲苯的处理效果极佳;随着温度的升高,纳米Fe3O4/Ce O2的催化效果不断提高;在偏酸性环境中,p H越低催化效果越好,p H=2时反应去除效率可达96.67%;随着H2O2投加量的增加,3,4-二氯三氟甲苯的降解效率先提高后降低,投加量为15 mg·L-1时去除效果最好可达99.47%;随着催化剂投加量的增加,同样出现了处理效果先升高后降低的现象,投加量为0.5 g·L-1时催化效果最好可达99.64%.在以纳米Fe3O4/Ce O2为催化剂的非均相类Fenton体系中,3,4-二氯三氟甲苯的降解符合一级反应动力学,反应所需活化能较低只需30.26 k J·mol-1.  相似文献   

18.
采用共沉淀法合成了TiO_2及TiO_2-Fe_2O_3载体,并对硫酸氢铵与上述载体之间的相互作用及硫酸氢铵的具体分解行为进行了研究.结果表明,催化剂载体表面含硫官能团主要以双齿硫酸盐的形式存在,含氮官能团以铵根离子的形式存在.当硫酸氢铵沉积于催化剂载体表面时,由于硫酸根离子具有较强的电负性,Ti原子及Fe原子处于电子缺失状态.对于TiO_2载体,硫酸根离子主要与Ti原子相连;而对于TiO_2-Fe_2O_3载体,Ti原子及Fe原子均为硫酸根离子主要的附着位点.采用热分析方法及原位红外对硫酸氢铵在TiO_2及TiO_2-Fe_2O_3载体表面的分解行为进行了研究,发现铁氧化物的添加显著促进了硫酸氢铵在低温区间内的分解行为;与铵根离子相比,硫酸根离子具有更高的热稳定性.催化剂稳定性测试结果表明,铁氧化物的添加显著提高了低温抗硫抗水性能,为实现低温SCR技术的工业应用提供了理论基础.  相似文献   

19.
The effect of phosphate on adsorption and oxidation of catechol, 1,2-dihydroxybenzene, in a heterogeneous Fenton system was investigated. In situ attenuated total reflectance infrared spectroscopy (ATR-FTIR) was used to monitor the surface speciation at the nano-Fe3O4 catalyst surface. The presence of phosphate decreased the removal rate of catechol and the abatement of dissolved organic compounds, as well as the decomposition of H2O2. This effect of phosphate was mainly due to its strong reaction with surface sites on the iron oxide catalyst. At neutral and acid pH, phosphate could displace the adsorbed catechol from the surface of catalyst and also could compete for surface sites with H2O2. In situ IR spectra indicated the formation of iron phosphate precipitation at the catalyst surface. The iron phosphate surface species may affect the amount of iron atoms taking part in the catalytic decomposition of H2O2 and formation of hydroxyl radicals, and inhibit the catalytic ability of Fe3O4 catalyst. Therefore, phosphate ions worked as stabilizer and inhibitor in a heterogeneous Fenton reaction at the same time, in effect leading to an increase in oxidation efficiency in this study. However, before use of phosphate as pH buffer or H2O2 stabilizer in a heterogeneous Fenton system, the possible inhibitory effect of phosphate on the actual removal of organic pollutants should be fully considered.  相似文献   

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