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1.
以十六烷基三甲基溴化胺(CTAB)为模板剂,通过调变CTAB浓度水热合成了氧化钴前驱体,焙烧制得棒状形貌的Co3O4,在其表面浸渍K2CO3溶液制得K改性的Co3O4催化剂,用于N2O分解。用X射线衍射(XRD)、N2物理吸附(BET)、扫描电镜(SEM)、X射线光电子能谱(XPS)、H2程序升温还原(H2-TPR)和O2程序升温脱附(O2-TPD)等技术对催化剂进行了表征,考察了CTAB/钴及尿素/钴物质的量比等制备参数对Co3O4催化分解N2O活性的影响。结果表明,CTAB浓度为0.05 mol/L、CTAB/钴离子物质的量比为1、尿素/钴离子物质的量比为4时,所制备的Co3O4催化剂具有较高的N2O分解活性,而K改性可以进一步提升其催化性能。K改性的Co3O4在有氧有水气氛中400℃下进行N2O分解反应,50 h后N2O转化率仍保持在91%以上。  相似文献   

2.
用水热法和共沉淀法分别制备了Nd-Co3O4催化剂,催化分解N2O。其中,水热法制备的Nd-Co3O4催化活性较高。在不同组成的Nd-Co3O4中,优化出了较高活性的0.01Nd-Co3O4催化剂,在其表面浸渍K2CO3溶液制备K改性催化剂(K/Nd-Co3O4)。用X射线衍射(XRD)、N2物理吸附、扫描电镜(SEM)、X射线光电子谱(XPS)、程序升温还原(H2-TPR)、O2程序升温脱附(O2-TPD)等技术表征催化剂结构。结果表明,Nd-Co3O4和K改性催化剂均为尖晶石结构;K改性弱化了催化剂表面Co-O键,有利于表面氧的脱除,提高了催化剂活性。有氧有水气氛350 ℃连续反应40 h,K/Nd-Co3O4催化剂上的N2O分解率超过90%,稳定性较好。  相似文献   

3.
用自制的碳球为模板剂,尿素为沉淀剂,120℃水热合成尖晶石型Mg-Co复合氧化物(MgCo2O4),在其表面浸渍K2CO3溶液制得K改性催化剂,用于催化分解N2O。用X射线衍射(XRD)、N2物理吸附-脱附、扫描电镜(SEM)、H2程序升温还原(H2-TPR)、O2程序升温脱附(O2-TPD)、X射线光电子能谱(XPS)等技术对催化剂进行结构表征,考察了钴镁离子/碳球的质量比、尿素/钴镁离子的物质的量比等制备参数对催化剂活性的影响。结果表明,钴镁离子/碳球的质量比为0.192、尿素/钴镁离子的物质的量比为2,制得的MgCo2O4催化剂活性较高。K改性MgCo2O4催化剂在400℃有氧无水、有氧有水条件下连续反应50 h,N2O转化率分别保持在91%和62%,稳定性较好。  相似文献   

4.
通过调变HAuCl4溶液的pH值和Au负载量,用沉积-沉淀法制备了一系列Au/Co3O4催化剂,并采用AES、BET、XRD、SEM、XPS和H2-TPR等技术对催化剂的结构和组成进行了表征,考察了制备条件对其在有氧气氛中催化N2O分解反应性能的影响规律,得到了催化剂最佳制备条件:HAuCl4溶液pH值为9,Au负载量为0.29%。催化测试结果表明:虽然ZnCo2O4的催化活性优于Co3O4,但0.31%Au/ZnCo2O4的活性和稳定性低于0.29%Au/Co3O4。500℃、在含氧气氛中连续反应10 h, 两者均可完全分解N2O,但在含氧、含水气氛中0.29%Au/Co3O4和0.31%Au/ZnCo2O4上的N2O转化率分别为92%和63%。究其原因,发现Au/Co3O4中Au和Co组分间存在协同效应,而Au/ZnCo2O4中Au和Co组分间则没有协同效应。  相似文献   

5.
制备了(Ni+Co)/Al=3、Ni/Co=0.2(原子比)的NiCoAl三元类水滑石样品,焙烧获得NiCoAl复合氧化物,表面浸渍K2CO3溶液制备了K改性催化剂,用于N2O分解反应,考察了K负载量、焙烧温度等制备参数和O2、H2O等反应气氛对催化剂活性的影响。用BET、XRD、H2-TPR、XPS等技术表征了催化剂的组成结构。结果表明,K的表面改性提高了催化剂对N2O分解反应的催化活性,其中,400℃预焙烧NiCoAl类水滑石制得复合氧化物,初湿浸渍K2CO3溶液,K的负载量为K/(Ni+Co)=0.05,400℃ 再焙烧制备的催化剂活性较高,有氧有水条件下500℃ 反应时N2O可完全分解;在NiCoAl复合氧化物表面负载K2CO3组分,降低了催化剂表面Co、Ni元素的电子结合能,弱化了表面Co-O、Ni-O化学键,从而提高了催化剂活性和抗水性能。  相似文献   

6.
采用废弃的鸡蛋壳作载体,沉积沉淀法制备了一系列不同Co3O4含量Co3O4/鸡蛋壳催化剂,并在连续流动微反装置上考察了N2O分解性能。结果表明,当Co3O4质量分数为20%时,催化剂表现出优异的N2O分解性能。在空速10000 h-1和N2O含量0.1%的条件下,400℃可实现N2O完全转化;其比活性约为Co3O4催化剂的4.3倍(反应温度为440℃);同时,该催化剂对原料气中3%O2、3.3%H2O和/或2.0×10-4 NO表现出较强的耐受性和较高的稳定性。分析催化剂的多种表征结果发现,CaCO3作为鸡蛋壳的主要成分,与活性组分Co3O4紧密结合,两者的强相互作用导致20%Co3O4...  相似文献   

7.
本文采用等体积浸渍法将活性组分Co3O4负载到具有大比表面积、独特三维交联介孔道的KIT-6分子筛上,制备一种负载型的Co3O4/KIT-6催化剂,并用于催化分解N2O反应.研究发现,负载Co3O4后的催化剂不仅保持了KIT-6有序的介孔结构,同时增大了催化剂的有效比表面积,提高了活性组分Co3O4的利用率,其催化活性基本与纯Co3O4相持平.通过对不同负载量的Co/KIT-6催化剂的活性测试发现,该催化剂的活性随着Co负载量的增加而提升.通过对30%Co/KIT-6催化剂的稳定性测试及其在杂质气体存在条件下的活性测试,表明30%Co/KIT-6催化剂具有较好的催化稳定性和杂质气体抗性,适用于实际工业生产尾气中的N2O处理.  相似文献   

8.
王建  冯鸣  张海杰  徐秀峰 《燃料化学学报》2014,42(12):1464-1469
用共沉淀法制备了一组Mg-Fe复合氧化物催化剂,用于N2O催化分解,考察了催化剂组成、焙烧温度、负载助剂钾等参数对其催化活性的影响。采用N2物理吸附、X射线衍射、H2-程序升温还原等技术对催化剂进行了结构表征。结果表明,500 ℃焙烧的Mg0.6Fe0.4Fe2O4催化剂对于N2O分解反应有较高活性,而K改性的催化剂活性均有所降低,且K的负载量越高,改性催化剂的活性越低,这是由于负载的K粒子抑制了表面铁物种的还原,降低了催化剂的比表面积。在有氧无水、水氧共存条件下连续反应10 h,Mg0.6Fe0.4Fe2O4的催化活性和稳定性均显著高于FeOx催化剂。  相似文献   

9.
用共沉淀法制备了Zn-Fe尖晶石型复合氧化物催化剂,用于有氧气氛中N2O的分解反应;考察了复合氧化物的组成、焙烧温度及K改性对其催化活性的影响,并用氮气吸附、XRD和H2-TPR等技术对催化剂结构进行了表征。结果表明,Zn-Fe尖晶石型复合氧化物具有良好的催化N2O分解的活性;在优化出的Zn0.8Fe0.2Fe2O4-400催化剂上500℃下连续反应10 h时,有氧无水和有氧有水条件下N2O转化率分别达到63.5%和22.2%。K改性Zn-Fe尖晶石型复合氧化物的催化活性均不及纯Zn-Fe氧化物,这是由于K改性催化剂的比表面积显著降低,而且K粒子迁移至催化剂表面,抑制了FeOx的还原和表面氧物种的脱除。  相似文献   

10.
用溶胶凝胶法制备了一组NixCo1-xCoAlO4尖晶石型复合氧化物,并采用表面润湿浸渍K2CO3溶液进行了K掺杂改性,用于有氧气氛下的N2O催化分解反应.采用N2物理吸附、X-射线衍射(XRD)、扫描电镜(SEM)、H2-程序升温还原(H2-TPR)等技术对催化剂进行了表征,考察了催化剂组成、母液pH值、K负载量等制备参数对其催化活性的影响.结果表明,母液pH值为3、K/(Ni+Co)物质的量比为0.1的K/Ni0.15Co0.85CoAlO4催化剂具有较高的N2O分解活性,450 ℃ N2O可完全分解.助剂K的加入弱化了催化剂表面金属氧键,提高了催化剂的还原性、催化活性和抗水性.  相似文献   

11.
In this work, various Co3O4-ZSM-5 catalysts were prepared by the microwave hydrothermal method (MH-Co3O4@ZSM-5), dynamic hydrothermal method (DH-Co3O4@ZSM-5), and conventional hydrothermal method (CH-Co3O4/ZSM-5). Their catalytic oxidation of dichloromethane (DCM) was analyzed. Detailed characterizations such as X-ray diffractometer (XRD), scanning microscopy (SEM), X-ray photoelectron spectroscopy (XPS), Brunauer–Emmett–Teller (BET), H2 temperature-programmed reduction (H2-TPR), temperature-programmed desorption of O2 (O2-TPD), temperature-programmed desorption of NH3 (NH3-TPD), diffuse reflectance infrared Fourier-transform spectra with NH3 molecules (NH3-DRIFT), and temperature-programmed surface reaction (TPSR) were performed. Results showed that with the assistance of microwave, MH-Co3O4@ZSM-5 formed a uniform core-shell structure, while the other two samples did not. MH-Co3O4@ZSM-5 possessed rich surface adsorbed oxygen species, higher ratio of Co3+/Co2+, strong acidity, high reducibility, and oxygen mobility among the three Co3O4-ZSM-5 catalysts, which was beneficial for the improvement of DCM oxidation. In the oxidation of dichloromethane, MH-Co3O4@ZSM-5 presented the best activity and mineralization, which was consistent with the characterizations results. Meanwhile, according to the TPSR test, HCl or Cl2 removal from the catalyst surface was also promoted in MH-Co3O4@ZSM-5 by their abundant Brønsted acid sites and the promotion of Deacon reaction by Co3O4 or the synergistic effect of Co3O4 and ZSM-5. According to the results of in situ DRIFT studies, a possible reaction pathway of DCM oxidation was proposed over the MH-Co3O4@ZSM-5 catalysts.  相似文献   

12.
A series of NixCo1-xCo2O4(0 ≤ x ≤ 1) spinel catalysts were prepared by the co-precipitation method and used for direct N2O decomposition. The decomposition pathway of the parent precipitates was characterized by thermal analysis. The catalysts were calcined at 500 °C for 3 h and characterized by powder X-ray diffraction, Fourier transform infrared, and N2 adsorption-desorption. Nickel cobaltite spinel was formed in the solid state reaction between NiO and Co3O4. The N2O decomposition measurement revealed significant increase in the activity of Co3O4 spinel oxide catalyst with the partial replacement of Co2+ by Ni2+. The activity of this series of catalysts was controlled by the degree of Co2+ substitution by Ni2+, spinel crystallite size, catalyst surface area, presence of residual K+, and calcination temperature.  相似文献   

13.
采用共沉淀法制备碱土金属掺杂的钴基尖晶石型复合金属氧化物M_xCo_(3-x)O_4(M=Mg、Ca、Sr、Ba;x=0、0.1、0.3、0.5、0.7、0.9)催化剂,使用XRD、SEM、氮吸附、H_2-TPR、O_2-TPD-M S和XPS等技术对催化剂进行表征,并在固定床微型反应器中评价了M_xCo_(3-x)O_4催化剂催化分解N_2O的活性,研究了碱土金属掺杂对其催化性能的影响。结果表明,碱土金属掺杂后,M_(x )Co_(3-x)O_4催化剂颗粒粒径减小,比表面积增大,表面吸附氧和Co~(2+)数量增加,氧化还原性能增强;在反应气组成为0.68%N_2O,3%O_2,Ar为平衡气的条件下,碱土金属锶掺杂、掺杂量x为0.7时,Sr_(0.7)Co_(2.3)O_4的N_2O分解催化活性最高,N_2O转化率为10%和95%时所需的温度分别为312和451℃。  相似文献   

14.
《印度化学会志》2021,98(8):100116
Co3O4–SrCO3 catalysts with various Sr/Co ratios were synthesized by the coprecipitation method, and their properties were tuned by adjusting the Sr/Co molar ratio. Furthermore, the catalytic combustion of vinyl chloride (VC) was used to evaluate the catalytic activity of the Co3O4–SrCO3 catalysts. The physicochemical properties of the catalysts were studied by X-ray diffraction (XRD), infrared spectroscopy (IR), N2 sorption, scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS), transmission electron microscopy (TEM), H2 temperature-programmed reduction (H2-TPR) and VC temperature-programmed desorption (VC-TPD). The results showed that the Co3O4–SrCO3 catalysts exhibited composite phases of Co3O4 and SrCO3 and the presence of interactions between them. As a result, the crystallization of the Co3O4 phase for the Co3O4–SrCO3 catalysts was restrained, and the state of Co on the catalyst surface was adjusted. Furthermore, the reducibility and VC adsorption capacity of the Co3O4–SrCO3 catalysts with Sr/Co molar ratios of 0.2 and 0.4 were enhanced compared with those of the Co3O4 catalyst. Otherwise, catalyst SrCo-0.4 exhibited excellent catalytic performance, accompanied by the highest reaction rate and the lowest apparent activation energy. More importantly, the optimized SrCO3–Co3O4 catalyst showed superior catalytic performance compared with other transition metal oxides in previous literature. These results brought a new idea for promoting the activity of transition metal catalysts for the deep oxidation of chlorinated volatile organic compounds (CVOCs) by introducing alkaline-earth metal salts.  相似文献   

15.
Iron and its binary oxides are meticulously exploited for environmental remediations. However, only limited studies have been carried out on the degradation of industrial organics by advanced oxidation process. In this study, iron oxide, cobalt oxide, and iron–cobalt binary oxides were synthesized by a modified hydrothermal method as heterogeneous Fenton-like catalysts for the removal of methylene blue (MB) from wastewaters. The oxide nanostructures were characterized by different analytical techniques. Studying the effects of various parameters such as catalyst dose, MB concentration, and H2O2 concentration, the reaction conditions were optimized to enhance the removal of MB dye. The results revealed that α-Fe2O3–Co3O4 shows much higher activity than both Co3O4 and α-Fe2O3 for the degradation of MB at room temperature and beyond. The binary α-Fe2O3–Co3O4 shows degradation efficiency of 96.4% at 65 °C within 60 min. Furthermore, the binary α-Fe2O3–Co3O4 catalyst retains its activity for up to four successive cycles. A probable mechanism is also proposed, involving the generation of ‧OH radical as well as Fe2+/Fe3+ or Co2+/Co3+ redox couple of the binary α-Fe2O3–Co3O4 catalyst.  相似文献   

16.
This work reports the synthesis of various carbon (Vulcan XC-72 R) supported metal oxide nanostructures, such as Mn2O3, Co3O4 and Mn2O3−Co3O4 as heterogeneous Fenton-like catalysts for the degradation of organic dye pollutants, namely Rhodamine B (RB) and Congo Red (CR) in wastewater. The activity results showed that the bimetallic Mn2O3−Co3O4/C catalyst exhibits much higher activity than the monometallic Mn2O3/C and Co3O4/C catalysts for the degradation of both RB and CR pollutants, due to the synergistic properties induced by the Mn−Co and/or Mn (Co)−support interactions. The degradation efficiency of RB and CR was considerably increased with an increase of reaction temperature from 25 to 45°C. Importantly, the bimetallic Mn2O3−Co3O4/C catalyst could maintain its catalytic activity up to five successive cycles, revealing its catalytic durability for wastewater purification. The structure–activity correlations demonstrated a probable mechanism for the degradation of organic dye pollutants in wastewater, involving •OH radical as well as Mn2+/Mn3+ or Co2+/Co3+ redox couple of the Mn2O3−Co3O4/C catalyst.  相似文献   

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