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1.
A 0.5 wt% Pd/LaCoO3, prepared by flame-spray pyrolysis (FP), was tested as catalyst for the low-temperature selective reduction of NO by H2 in the presence of excess O2. In particular, the effect of the precalcination and prereduction temperature on catalytic activity was compared with that of a similar Pd/LaCoO3 sample prepared by impregnation with a Pd solution of FP-prepared LaCoO3. The FP-made catalyst allowed full NO conversion at 150 °C, with 78% selectivity to N2, thus outperforming the catalytic behavior of the corresponding sample prepared by impregnation. The higher activity of the FP-made catalyst has been attributed to the formation of segregated Co metal particles, not present in the impregnated sample, formed during the precalcination at 800 °C, followed by reduction at 300 °C. Two reaction mechanisms can be deduced from the temperature-programmed experiments. The first of these, occurring at lower temperatures, indicates cooperation between the Pd and Co metal particles, with formation of active nitrates on cobalt, successively reduced by hydrogen spillover from Pd. The second, occurring at higher temperature, allows 50% conversion of NO, with >90% selectivity to N2, and involves N adatoms formed by dissociative NO adsorption over Pd. Prereduction at 600 °C led to a slight increase in catalytic activity, due to the formation of a PdCo alloy, which is more stable on reoxidization compared with Pd alone. Moreover, the cooperative reaction mechanism seems to be favored by the proximity of Co and Pd in metal particles.  相似文献   

2.
An investigation was conducted of noble metal and metal oxide catalysts deposited on Al2O3. The noble metals Pt, Pd, Rh the metal oxides CuO, SnO2, CoO, Ag2O, In2O3, catalysts were examined. Also investigated were noble metal Pt, Pd, Rh-doped In2O3/Al2O3 catalysts prepared by single sol–gel method. Both were studied for their capability to reduce NO by propene under lean conditions. In order to improve the catalytic activity and the temperature window, the intermediate addition propene between a Pt/Al2O3 oxidation and metal oxide combined catalyst system was also studied. Pt/Al2O3 and In2O3/Al2O3 combined catalyst showed high NO reduction activity in a wider temperature window, and more than 60% NO conversion was observed in the temperature range of 300–550 °C.  相似文献   

3.
MnO x -CeO x /ACFN were prepared by the impregnation method and used as catalyst for selective catalytic reduction of NO with NH3 at 80°C-150°C. The catalyst was characterized by N2-BET, scanning electron microscopy (SEM) and Fourier transform infrared spectroscopy (FT-IR). The fraction of the mesopore and the oxygen functional groups on the surface of activated carbon fiber (ACF) increased after the treatment with nitric acid, which was favorable to improve the catalytic activities of MnO x -CeO x /ACFN. The experimental results show that the conversion of NO is nearly 100% in the range 100°C-150°C under the optimal preparation conditions of MnO x -CeO x /ACFN. In addition, the effects of a series of performance parameters, including initial NH3 concentration, NO concentration and O2 concentration, on the conversion of NO were studied. __________ Translated from Chemical Industry and Engineering Progress, 2007, 27(1): 87–91 [译自: 化工进展]  相似文献   

4.
The selective catalytic reduction (SCR) of NO x over zeolite H-ZSM-5 with ammonia was investigated using in situ FTIR spectroscopy and flow reactor measurements. The adsorption of ammonia and the reaction between NO x , O2 and either pre-adsorbed ammonia or transiently supplied ammonia were investigated for either NO or equimolar amounts of NO and NO2. With transient ammonia supply the total NO reduction increased and the selectivity to N2O formation decreased compared to continuous supply. The FTIR experiments revealed that NO x reacts with ammonia adsorbed on Brønsted acid sites as NH4 + ions. These experiments further indicated that adsorbed -NO2 is formed during the SCR reaction over H-ZSM-5.  相似文献   

5.
A systematic study over Pt/Al2O3 powder and monolith catalysts is carried out using temporal analysis of products (TAP) to elucidate the transient kinetics of NO decomposition and NO reduction with H2. NO pulsing and NO–H2 pump-probe experiments demonstrate the effect of catalyst temperature, NO–H2 pulse delay time and H2/NO ratio on N2, N2O and NH3 selectivity. At lower temperature (150 °C) decomposition of NO is negligible in the absence of H2, indicating that N–O bond scission is rate limiting. At higher temperature NO decomposition occurs readily on reduced Pt but the rate is inhibited by surface oxygen as reaction occurs. The reduction of NO by a limiting amount of H2 at lower temperature indicates the reaction of surface NO with H adatoms to form N adatoms, which react with adsorbed NO to form N2O or recombine to form N2. In excess H2, higher temperatures and longer delay times favor the production of N2. The longer delay enables NO decomposition on reduced Pt with the role of H2 being a scavenger of surface oxygen. Lower temperatures and shorter delay times are favorable for ammonia production. The sensitive dependence on delay time indicates that the fate of adsorbed NO depends on the concentration of vacant sites for NO bond scission, necessary for N2 formation, and of surface hydrogen, necessary for hydrogenation to ammonia. A mechanistic-based microkinetic model is proposed that accounts for the experimental observations. The TAP experiments with the monolith catalyst show an improved signal due to the reduction of transport restrictions caused by the powder. The improved signal holds promise for quantitative TAP studies for kinetic parameters estimation and model discrimination.  相似文献   

6.
Acetylene as a reducing agent for the selective catalytic reduction (C2H2-SCR) of NO in the presence of excess oxygen on various Ce-exchanged zeolites was investigated for the first time. Under the conditions of 1600 ppm NO, 800 ppm C2H2, and 9.95 % O2 in He, the Ce-H-ZSM-5 (Si/Al=25) catalyst shows about 83% NO conversion to N2 at the temperatures ranged from 300 to 350 °C. It is followed by the other zeolites in the activity order of Ce-H-Y (Si/Al=2.5), Ce-H-_ (Si/A1=20∼30), and Ce-H-SAPO (Si/Al=34), Ce-H-5A (Si/Al=12). Almost no NO conversion was obtained over Ce-Na-ZSM-5 (Si/Al=25) and Na-ZSM-5 (Si/Al=25) catalyst samples. The Conversion of NO to N2 increased with O2 concentration in the range of 0.1 ∼ 9.95% over the CeH-ZSM-5 (Si/Al=25) catalyst. It is suggested that O2 plays an important role in the C2H2-SCR of NO reaction, by oxidizing NO to NO2 on acid sites in assistant with cerium species of the catalyst. A large amount of CO, which seems to be in proportion with the NO conversion to N2, was produced. Long-term experiments up to 56 h combined with a excursion of the reaction temperature up to 650 °C over the Ce-H-ZSM-5 (Si/A1=25) confirmed the catalyst’s durable performance under the reaction conditions. It is found that the de-NOx activity of Ce-H-ZSM-5 catalyst can be enhanced by the presence of 50 ppm of sulfur dioxide in the dry-feed reaction conditions.  相似文献   

7.
The catalytic reduction of nitrogen monoxide by propene in the presence of excess oxygen over gold based ceria catalyst was studied. Adsorption and temperature programmed desorption of NO/O2 on Au/CeO2 reveal that the catalyst adsorbs and desorbs NO over a large range of temperature. A maximum of 26% conversion of NO x was obtained around 210 °C, with a selectivity of 50% to N2.  相似文献   

8.
The catalytic decomposition of N2O over the circulating ashes from coal-fired circulating fluidized bed (CFB) boilers was investigated with a fixed bed reactor. The associated kinetics was mimicked by four surrogate metal oxides of SiO2, Al2O3, CaO and Fe3O4, which were found as the main components of the circulating ashes. The activation energies and collision coefficients for N2O thermal decomposition over the circulating ashes and surrogates were individually measured. Experimental results showed that different metal oxides play different roles in the catalytic decomposition of N2O. Among the components, CaO and Fe3O4 are very active, while Al2O3 and SiO2 contribute much less to N2O destruction. A model based on the specific surface-area-weighted kinetic data of individual surrogates was developed to predict the catalytic decomposition of N2O over circulating ashes. The predictions agreed with the experimental data with a minor discrepancy acceptable in an engineering view. Some discussions on the discrepancy were given. The O2 effect on the N2O decomposition over the circulating ashes was experimentally assessed. It was found that the presence of O2, even with a small amount, would deteriorate the catalytic decomposition of N2O.  相似文献   

9.
Mesoporous and nanosized cobalt aluminate spinel with high specific surface area was prepared using microwave assisted glycothermal method and used as soot combustion catalyst in a NOx + O2 stream. For comparison, zinc aluminate spinel and alumina supported platinum catalysts were prepared and tested. All samples were characterised using XRD, (HR)TEM, N2 adsorption–desorption measurements. The CoAl2O4 spinel was able to oxidise soot as fast as the reference Pt/Al2O3 catalyst. Its catalytic activity can be attributed to a high NOx chemisorption on the surface of this spinel, which leads to the fast oxidation of NO to NO2.  相似文献   

10.
The chemistry between NO x species adsorbed on La2O3 and CH4 was probed by temperature‐programmed reaction (TPR) as well as in situ DRIFTS. During NO reduction by CH4 in the presence of O2, NO 3 - does not appear to activate CH4, thus either an adsorbed O species or an NO 2 - species is more likely to activate CH4. In the absence of O2, a different reaction pathway occurs and NO- or (N2O2)2- species adsorbed on oxygen vacancy sites seem to be active intermediates, and during NO reduction with CH4 unidentate NO 3 - , which desorbs at high temperature, behaves as a spectator species and is not directly involved in the catalytic sequence. Because reaction products such as CO2 or H2O as well as adsorbed oxygen cannot be effectively removed from the surface at lower temperatures, steady‐state catalytic reactions can only be achieved at temperatures above 800 K, even though formation of N2 and N2O from NO was observed at much lower temperature during the TPR experiments. This revised version was published online in July 2006 with corrections to the Cover Date.  相似文献   

11.
Bin Wen 《Fuel》2002,81(14):1841-1846
The NO SCR (selective catalytic reduction) activity with H2 in the presence of excess O2 was investigated over Pd/MFI catalyst prepared by sublimation method. With GHSV=90?000 h−1, a very high steady-state conversion of NO to N2 (70%) is achieved at 100 °C. Significant reorganizations take place inside the catalyst upon its first contact with all reactants and products at the reaction temperature. Pd0, which has a significant role in the NO-H2-O2 reaction, is possibly the active site for NO reduction. The formation of Pd-β hydride deactivates the catalyst for NO reduction. Throughout the entire NO-H2-O2 reaction, no N2O or NO2 is formed; N2 is the only N-containing product. The presence of O2 inhibits the formation of undesirable NH3. The rate of the NO+H2 reaction is fast or comparable to that of the H2+O2 reaction. The oxidation of Pd0 and subsequent agglomeration of PdO are responsible for the decreased NO reduction activity at high temperature.  相似文献   

12.
Simultaneous IR spectroscopic and catalytic measurements have been performed in order to investigate the nature of adsorbed species involved in the formation of N2O on Rh/Al2O3 in the course of the CO + NO reaction. Only nitrosyl species have been isolated that could be involved in the formation of N2 and N2O in accordance with previous kinetic investigations [Granger et al. J. Catal. 175(1998) 194]. Sequential and simultaneous NO and CO exposures lead to the observation of different nitrosyl species that could act as intermediates in the formation of N2 and N2O. Correlations between the appearance/disappearance of Rh(NO) + species and an extra formation of N2O have been established.  相似文献   

13.
A number of supported metal oxide catalysts were screened for their catalytic performance for the oxidation of carbon black (CB; a model diesel soot) using NO2 as the main oxidant. It was found that contact between the carbon and catalyst was a key factor in determining the rate of oxidation by NO2. Oxides with low melting points, such as Re2O7, MoO3 and V2O5 showed higher activities than did Fe3O4 and Co3O4. The activities of MoO3 and V2O5 on various supporting materials were also examined. MoO3/SiO2 was the most active catalyst among the supported MoO3 examined, whereas, V2O5/MCM-41 showed the highest activity among the supported V2O5. Different performances of the supported MoO3 catalysts were explained by the interaction of MoO3 with the supports: a strong MoO3/support interaction may result in a poor mobility of MoO3 and a poor activity for oxidation of carbon by NO2. The high activity of V2O5/MCM-41 was associated with its catalysis of the oxidation of SO2 by NO2 to form SO3, which substantially promotes oxidation of carbon by NO2. Addition of transition metal oxides or sulfates to supported MoO3 and V2O5 was also investigated. Combining MoO3 or V2O5 with CuO on SiO2, adding VOSO4 to MoO3/SiO2 or MoO3/Al2O3 and adding TiOSO4 or CuSO4 to V2O5/Al2O3 improved the catalytic performance.  相似文献   

14.
A mechanistic scheme of N2O and N2 formation in the selective catalytic reduction of NO with NH3 over a Ag/Al2O3 catalyst in the presence and absence of H2 and O2 was developed by applying a combination of different techniques: transient experiments with isotopic tracers in the temporal analysis of products reactor, HRTEM, in situ UV/vis and in situ FTIR spectroscopy. Based on the results of transient isotopic analysis and in situ IR experiments, it is suggested that N2 and N2O are formed via direct or oxygen-induced decomposition of surface NH2NO species. These intermediates originate from NO and surface NH2 fragments. The latter NH2 species are formed upon stripping of hydrogen from ammonia by adsorbed oxygen species, which are produced over reduced silver species from NO, N2O and O2. The latter is the dominant supplier of active oxygen species. Lattice oxygen in oxidized AgOx particles is less active than adsorbed oxygen species particularly below 623 K. The previously reported significant diminishing of N2O production in the presence of H2 is ascribed to hydrogen-induced generation of metallic silver sites, which are responsible for N2O decomposition.  相似文献   

15.
The interaction of NO and O2 with 5 mol.% of vanadia deposited on Ce0.10Zr0.90O2 and Ce0.69Zr0.31O2 supports by wet impregnation was studied by means of EPR and IR. The supports were structurally characterized by XRD and Raman spectroscopy. Influence of the phase composition of the support on vanadium speciation as well as on surface architecture of the oxovanadium entities was discussed. The NO forms adsorbed on vanadium-containing systems were compared to those observed on bare CeO2-ZrO2 supports. The main products appearing on the catalysts surface during the consecutive reaction with NO and O2 were identified and their thermal evolution was observed. Changes in vanadium speciation accompanying redox processes related to NO and O2 activation were also observed and discussed.  相似文献   

16.
Effect of additives, Ce and Mn, on the catalytic performance of Sn/Al2O3 catalyst prepared by sol–gel method for the selective reduction of NOx with propene under lean conditions was studied. Sn–Ce/Al2O3 catalysts exhibited higher activity than Sn/Al2O3 catalyst and the optimum Ce loading is 0.5–1%. The promoting effect of Ce is to enhance the oxidation of NO to NO2 and facilitate the activation of propene, both of which are important steps for the NOx reduction. The presence of oxygen contributes to the oxidation of NO and shows a promoting effect.  相似文献   

17.
Reactivity of surface isocyanate (NCO(a)) species with NO, O2 and NO+O2 in selective reduction of NOχ over Ag/Al2O3 and Al2O3 catalysts was studied by a pulse reaction technique and an in situ diffuse reflectance infrared Fourier transform (DRIFT) spectroscopy. The NCO(a) species on Ag/Al2O3 reacted with O2 or NO+O2 mixture gas to produce N2 effectively above 200°C, while the reaction of NCO(a) with NO hardly produced N2 even at 350°C. In the case of Al2O3 alone, less N2 was detected in the reaction of NCO(a) with NO+O2, indicating that silver plays an important role in the N2 formation from NCO(a). These behaviors of the reactivity of NCO(a) species with reactant gases were in good agreement with the changes in NCO(a) bands shown by in situ DRIFT measurements. Based on these findings, the role of NCO(a) species in the selective reduction of NOχ on Ag/Al2O3 and Al2O3 catalysts is discussed. This revised version was published online in July 2006 with corrections to the Cover Date.  相似文献   

18.
UV/H2O2氧化联合CaO吸收脱除NO的传质-反应动力学   总被引:3,自引:0,他引:3  
刘杨先  潘剑锋  刘勇 《化工学报》2013,64(3):1062-1068
在实验室规模的光化学反应器中,基于实验研究﹑动力学理论以及双膜理论,研究了UV/H2O2氧化联合CaO吸收(UV/H2O2-CaO工艺)脱除燃煤烟气中NO的传质-反应动力学。分析了NO吸收的传质-反应过程,明确了NO吸收过程的主要控制步骤和强化措施,测定了关键的动力学参数,推导了NO吸收过程的理论模型。结果表明:在实验范围内,NO吸收速率随着NO浓度的增加几乎呈线性增加。随着H2O2浓度和CaO浓度的增加,NO的吸收速率均呈现先增加后变缓的趋势。UV/H2O2-CaO工艺脱除NO是一个拟一级快速反应过程,强化气相主体扰动﹑增加气液接触面积和提高NO分压可有效提高NO的吸收速率。NO吸收速率方程的计算值和实验值具有较好的一致性。  相似文献   

19.
Effect of metal oxide additives on the catalytic performance of Ga2O3–Al2O3 prepared by the sol–gel method for the selective reduction of NO with propene in the presence of oxygen was studied. Of several metal oxide additives, the addition of In2O3 enhanced drastically the activity of Ga2O3–Al2O3 for NO reduction by propene in the presence of H2O. In addition, the activity of In2O3‐doped Ga2O3–Al2O3 catalyst was extremely intensified by the presence of H2O below 350°C. The promotional effect of H2O was interpreted by the suppression of undesirable propene oxidation and the removal of carbonaceous materials deposited on the catalyst surface. We also found that close interaction of In2O3 and Ga2O3 is necessary for the enhancement of activity by H2O. A lot of hydrocarbons except methane and oxygenated compounds served as good reducing agents, among which propene and 2‐propanol were the most efficient ones. In2O3‐doped Ga2O3–Al2O3 catalyst was capable of reducing NO into N2 quite efficiently in the presence of H2O at a very high space velocity. This revised version was published online in July 2006 with corrections to the Cover Date.  相似文献   

20.
The behavior of 1 wt% Pd-TWCs (three-way catalysts), containing up to 33 wt% Ce0.5Zr0.5O2 is followed under reducing (CO) and oxidizing (NO) cycling conditions. The dynamic behavior of these systems is analyzed using a synchronous, time-resolved energy dispersive X-ray absorption spectroscopy (XAS), diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS) and mass spectrometry (MS) set-up with subsecond time resolution. Two main physico-chemical phenomena corresponding to noble metal morphological (size/shape) changes and the redox behavior of the noble metal–promoter interface are shown to control the TWC response to NO/CO cycling conditions. Metal-only aspects strongly influence N–O dissociation and N–N coupling steps while the metal–promoter interface has a global influence on both N2 and CO2 formation via oxygen handling (storage/release) properties. The relative importance of these two phenomena is studied as a function of the Ce0.5Zr0.5O2 promoter content of the catalysts.  相似文献   

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