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1.
分别以Cu(NO_3)_2·3H_2O和50%Mn(NO_3)_2水溶液为铜源和锰源,K_2CO_3为沉淀剂,采用沉淀法和共沉淀法制备单一Cu、Mn氧化物催化剂和Cu-Mn-O复合氧化物催化剂,用于催化N_2O直接分解反应,并利用N_2物理吸附-脱附、XRD、FT-IR和TPR等进行表征。结果表明,单一Cu和Mn氧化物分别以体相CuO和Mn2O_3物相形式存在,Cu-Mn-O复合氧化物中除形成CuMn_2O_4尖晶石物相外,还有一定量小晶粒CuO,较单一氧化物具有更加优异的还原性能,表现出较高的催化N_2O直接分解活性。在空速10 000 h~(-1)和N_2O体积分数0.1%条件下,Cu-Mn-O复合氧化物催化剂可在440℃催化N_2O完全分解,分别较单一Cu和Mn氧化物催化剂降低了40℃和60℃。  相似文献   

2.
以等体积浸渍法制备γ-Al_2O_3负载的Co、Cu、Ce和Fe氧化物催化剂,利用正交试验设计实验条件,采用XRD、BET和H_2-TPR等对催化剂进行表征,并考察活性组分对催化剂催化分解N_2O活性的影响。结果表明,催化剂具有尖晶石结构,其BET比表面积随着金属氧化物负载量增加而降低。催化剂中铜的氧化物可以降低还原峰温度,进而明显提高催化活性,Co和Fe的加入对活性有一定的提高,Ce对催化活性没有明显影响。  相似文献   

3.
通过水热法制备了具有可见光增产氢高性能的g-C_3N_4/Co_3O_4胶体催化剂,采用XRD、TEM、SEM和EDS等分析样品的组成和形貌结构。催化产氢结果表明,光照条件下g-C_3N_4/Co_3O_4胶体催化剂具有极高的催化产氢活性,TOF值高达58.2 min~(-1),通过拟合温度动力学曲线,得到了催化反应的活化能为15.73 kJ·mol~(-1)。对样品进行UV-vis和PL测试发现,g-C_3N_4/Co_3O_4胶体催化剂具有极高的光能利用率和电子-空穴分离率,并进一步阐述了光能促进催化产氢的作用机理。  相似文献   

4.
通过焙烧猪骨和鸡骨获得羟磷灰石(nHAP)载体,并采用浸渍法制备Co3O4/nHAP催化剂。采用XRD、N2物理吸附-脱附、FT-IR和H2-TPR等对催化剂进行表征,在连续流动微反装置上考察催化剂催化分解N2O的性能。结果表明,相比于鸡骨源Co3O4/nHAP催化剂,以猪骨源HAP为载体的催化剂因其较大的比表面积以及较小的Co3O4粒径尺寸,提供了更多的活性位点。特别是猪骨源Co3O4/nHAP催化剂中适量的K、Na等元素促进了Co^3+到Co^2+的还原,削弱了Co-O键,使催化剂的催化活性显著提高。  相似文献   

5.
N2O是一种重要的温室气体,且对臭氧层有很大的破坏作用,而直接催化分解法是除去N2O最经济有效的方法之一。针对目前报道较多的钴氧化物催化剂活性较差的问题,将包覆型Co3O4核壳材料引入N2O直接催化分解反应,利用核壳结构的限域特性与壳层的多孔孔道使Co3O4分散性增加,粒径减小,金属载体相互作用与接触反应界面增强,从而提高了催化剂在N2O直接催化分解反应中的低温活性。此外,还制备了一系列不同金属含量的Co3O4@SiO2球形核壳催化剂来研究包覆结构对催化剂性能的影响,通过X射线荧光光谱(XRF)、透射电镜(TEM)、X射线衍射(XRD)、N2物理吸附、H2-程序升温还原(H2-TPR)等表征,证实在保证稳定单分散核壳结构的前提下,活性Co3O4位点越多,催化剂反应活性越好。  相似文献   

6.
以MMT为载体,采用原位聚合-配位沉积法制备3种不同Co负载量的Co3O4-MMT催化剂。采用N2物理吸附、XRD和TEM对载体和催化剂进行表征,并在连续流动微反装置上考察其N2O催化分解性能。结果表明,与Co3O4催化剂相比,Co3O4-MMT催化剂的比表面积显著增大,且活性组分Co3O4具有较高的分散状态。Co3O4-MMT催化剂的催化活性随着Co含量的增加先升后降,其中0.015Co-MMT表现出最佳的催化活性,其活性远高于Co3O4催化剂,同时,该催化剂还表现出良好的催化稳定性和较好的杂质气体耐受性。  相似文献   

7.
以Co(NO_3)_2·6H_2O和CO(NH_2)_2为原料,十六烷基三甲基溴化铵为活性剂,采用水热-热分解法在不同加热时间(2 h、3 h、4 h、5 h)条件下制备纯相尖晶石结构的Co_3O_4颗粒。利用X射线衍射和电子扫描电镜研究Co_3O_4颗粒的结构和形貌,并以甲基橙为模拟废水,研究加热时间对Co_3O_4颗粒光催化性能的影响。结果表明,加热时间对Co_3O_4颗粒形貌影响很大,并直接影响其光催化性能。加热时间5 h制备的Co_3O_4结构疏松多孔,光催化性能最好,光照20 min,甲基橙降解率达95%。  相似文献   

8.
以Bi(NO3)3·5H2O、Co(CH3COO)2·4H2O为原料,采用化学沉淀-水热法制备了Co3O4-Bi2O2CO3异质结构复合半导体光催化剂,并通过X射线衍射仪(XRD)、扫描电镜(SEM)、X射线光电子能谱(XPS)、紫外可见漫反射光谱(DRS)、荧光光谱(PL)等手段对所合成的复合型催化剂进行了理化性能表征。研究结果表明:引入Co3O4没有改变Bi2O2CO3物相结构,但促进了Bi2O2CO3 对可见光的吸收能力,提高了Bi2O2CO3表面吸附氧物种的数量,抑制了光生载流子复合。复合光催化剂对罗丹明B(RhB)的光催化脱色实验显示引入Co3O4能够明显提高Bi2O2CO3催化剂的光催化脱色能力。尤其是Co3O4引入量为0.6%的Co3O4-Bi2O2CO3样品对罗丹明B染料的光催化脱色率可达到97%(模拟日光照射30min)。本文为复合型光催化剂制备提供了简单易行的技术路线,制备的新型半导体复合光催化剂Co3O4-Bi2O2CO3在环境净化方面表现出了较好的应用前景。  相似文献   

9.
以K_2CO_3为沉淀剂,γ—Al_2O_3为载体,采用共沉淀法制备了负载质量分数为30%和具有Co_3O_4尖晶石结构的Ni_xCo_(1-x)Co_2O_4复合金属氧化物催化剂(x分别为0、0.1、0.2、0.3、0.4、0.5、0.6、0.7、0.8、0.9和1.0),确定了最适宜的x值。考察了焙烧温度对催化剂的影响,对制备的样品进行了XRD、BET、SEM和H_2-TPR等表征,在微反装置上对催化剂进行N_2O催化分解活性评价。结果表明,适宜的x值为0.5,焙烧温度为800℃。N_2O和O_2浓度是影响催化剂的N_2O催化分解转化率的主要因素,低浓度有利于提高N_2O催化分解转化率。掺杂还原性气体(如CO和NO)加速了N_2O催化分解反应,有利于提高催化剂的N_2O催化分解转化率。在模拟工业装置反应尾气[φ(N_2O)=12%、φ(O_2)=16.8%和其他混合气体]条件下,催化剂N_2O完全催化分解温度为612℃,满足实际工业生产装置运行要求(小于750℃)。  相似文献   

10.
通过在Al2O3-ZrO2-C滑板材料中引入Si3N4细粉(≤0.043 mm),研究了Si3N4加入量(质量分数分别为2%、4%、6%、8%)对滑板材料性能的影响,并对比研究了1 300℃6 h氮化烧成和1 450℃6 h埋炭烧成后试样的性能。结果表明:在不同烧成条件下,Si3N4的加入均改善了材料的性能,随着Si3N4加入量的增加,材料的显气孔率逐渐下降,体积密度、常温强度、高温抗折强度逐渐增大;Si3N4的加入,一定程度上改善了材料的抗氧化性;埋炭烧成滑板性能优于氮化烧成滑板,因为埋炭烧成过程中部分Si3N4反应生成了O’-SiAlON相。  相似文献   

11.
Direct decomposition of nitrous oxide (N2O) on K-doped Co3O4 catalysts was examined. The K-doped Co3O4 catalyst showed a high activity even in the presence of water. In the durability test of the K-doped Co3O4 catalyst, the activity was maintained at least for 12 h. It was found that the activity of the K-doped Co3O4 catalyst strongly depended on the amount of K in the catalyst. In order to reveal the role of the K component on the catalytic activity, the catalyst was characterized by XRD, XPS, TPR and TPD. The results suggested that regeneration of the Co2+ species from the Co3+ species formed by oxidation of Co2+ with the oxygen atoms formed by N2O decomposition was promoted by the addition of K to the Co3O4 catalyst.  相似文献   

12.
A series of CeO2 promoted cobalt spinel catalysts were prepared by the co-precipitation method and tested for the decomposition of nitrous oxide (N2O). Addition of CeO2 to Co3O4 led to an improvement in the catalytic activity for N2O decomposition. The catalyst was most active when the molar ratio of Ce/Co was around 0.05. Complete N2O conversion could be attained over the CoCe0.05 catalyst below 400 °C even in the presence of O2, H2O or NO. Methods of XRD, FE-SEM, BET, XPS, H2-TPR and O2-TPD were used to characterize these catalysts. The analytical results indicated that the addition of CeO2 could increase the surface area of Co3O4, and then improve the reduction of Co3+ to Co2+ by facilitating the desorption of adsorbed oxygen species, which is the rate-determining step of the N2O decomposition over cobalt spinel catalyst. We conclude that these effects, caused by the addition of CeO2, are responsible for the enhancement of catalytic activity of Co3O4.  相似文献   

13.
N2O decomposition was investigated over a series of K-promoted Co-Al catalysts. The activity tests showed that doping with K greatly enhanced the catalytic activity of the Co-Al catalyst, and the enhancement was critically dependent on the amount of K and the calcination temperature. When the catalyst had a K/Co atomic ratio of 0.04 and was calcined at 700–800 °C, a full N2O conversion could be reached at a reaction temperature of 300 °C. Moreover, even under the simultaneous presence of 4% O2 and 2.6% water vapor, such high-temperature treated K/Co-Al catalyst exhibited high reactivity and stability, with the N2O conversion remaining at a constant value of 92% over 40 h run at 360 °C. In contrast, non-doped Co-Al catalyst showed a severe activity loss under such reaction conditions. A combination of characterization techniques was employed to reveal the promoting role of K and the effect of calcination temperature. The results suggest that doping with K increases the electron density of Co and weakens the Co–O bond, thus promoting the activation of N2O on the Co sites and facilitating the desorption of oxygen from the catalyst surface. High-temperature calcinations made the desorption of O2 proceed more readily.  相似文献   

14.
The total oxidation of C2H2, C3H6, C3H8, n-C4H8, n-C4H10 and i-C4H10 was studied in a monolithic flow reactor under temperature-programmed mode and highly diluted conditions. The non-catalytic combustion of the investigated hydrocarbons leads to a substantial formation of CO and traces of methane at intermediate temperatures. This drawback was suppressed upon the deposition of a thin layer of Co3O4 on the monolith and all investigated hydrocarbons tend to light off at 250–290 °C. The apparent activation energy was found to exhibit a linear correlation with the C–H bond dissociation energy, indicating that the C–H activation is still the rate-limiting step.  相似文献   

15.
Various spinel-type catalysts AB2O4 (where A = Mg, Ca, Mn, Co, Ni, Cu, Cr, Fe, Zn and B = Cr, Fe, Co) were prepared and characterized by XRD, BET, TEM and FESEM-EDS. The performance of these catalysts towards the decomposition of N2O to N2 and O2 was evaluated in a temperature programmed reaction (TPR) apparatus in the absence and the presence of oxygen. Spinel-type oxides containing Co at the B site were found to provide the best activity. The half conversion temperature of nitrous oxide over the MgCo2O4 catalyst was 440 °C and 470 °C in the absence and presence of oxygen, respectively (GHSV = 80,000 h−1).

On the grounds of temperature programmed oxygen desorption (TPD) analyses as well as of reactive runs, the prevalent activity of the MgCo2O4 catalyst could be explained by its higher concentration of suprafacial, weakly chemisorbed oxygen species, whose related vacancies contribute actively to nitrous oxide catalytic decomposition. This indicates the way for the development of new, more active catalysts, possibly capable of delivering at low temperatures amounts of these oxygen species even higher than those characteristic of MgCo2O4.  相似文献   


16.
The decomposition of N2O, and the catalytic reduction by NH3 of N2O and N2O + NO, have been studied on Fe-BEA, -ZSM-5 and -FER catalysts. These catalysts were prepared by classical ion exchange and characterized by TPR after various activation treatments. Fe-FER is the most active material in the catalytic decomposition because “oxo-species” reducible at low temperature, appearing upon interaction of FeII-zeolite with N2O (-oxygen), are formed in largest amounts with this material. The decomposition of N2O is promoted by addition of NH3, and even more with NH3 + NO in the case of Fe-FER and -BEA. It is proposed that the NO-promoted reduction of N2O originated from the fast surface reaction between -oxygen O* and NO* to yield NO2*, which in turn reacts immediately with NH3.  相似文献   

17.
Kinetics of N2O decomposition over catalyst prepared by calcination of Co–Mn hydrotalcite was examined in integral fixed-bed reactor () at various N2O and O2 initial partial pressure at temperature range of 330–450 °C. Kinetic data were evaluated by linear and non-linear regression method, 15 kinetic expressions were tested. Based on the obtained results a redox model of N2O decomposition was proposed. At low pressures of O2, adsorbed oxygen is formed by the N2O decomposition; the N2O chemisorption is considered as the rate-determining step. On the contrary, at high O2 pressure it could be assumed that adsorbed oxygen species appear as a result of O2 adsorption and the Eley–Rideal mechanism is the rate determining. N2O decomposition is well described by the 1st rate law at N2O and O2 concentrations typical for waste gases.  相似文献   

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