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1.
用共沉淀法制备了n(Au)/n(ZnO)=1.3/100的催化剂,考察了焙烧温度对Au/ZnO催化剂的化学组成及CO氧化性能的影响,结果表明,焙烧温度对催化剂的化学组成、活性和稳定性均有较大影响,其中240℃7焙烧制得的Au/ZnO催化剂稳定性最好,在25℃和进料中含有水分的条件下,可连续反应600h使CO完全转化,XRD,FTIR,TG-DTA,TEM及UV-Vis结果表明,金粒子高度分散在氧化锌或碳酸锌上,平均直径2-5nm,催化剂的稳定性同锌物种有关,氧化锌较碳酸锌表面出较好的稳定性,且氧化锌粒子越小,比表面积越大,催化剂的稳定性越高。  相似文献   

2.
沉淀剂对AU/ZnO催化剂CO氧化性能及催化剂结构的影响   总被引:4,自引:0,他引:4  
在25 C和进料中含水条件下,考察了由Na2CO3,(NH4)2CO3,NaOH和NH4OH等4种沉淀剂制备的Au/ZnO催化剂上CO氧化活性和稳定性.结果表明,沉淀剂影响Au/ZnO催化剂的前体组成、金粒子和ZnO粒子大小、比表面积及CO氧化性能.由NH4OH制备的Au/ZnO催化剂活性和稳定性较差,CO转化率只有15%;由其它3种沉淀剂制备的Au/ZnO催化剂的CO氧化活性和稳定性明显改善,可至少连续反应1 100 h,且保持CO完全氧化,其中Na2CO3是最佳沉淀剂.在反应过程中反应气氛可引起金粒子的聚集及在催化剂表面生成新的碱式碳酸锌物相.催化剂的稳定性与金粒子长大速度和碳酸根累积量有关.  相似文献   

3.
沉淀剂对Au/ZnO催化剂上CO氧化性能及催化剂结构的影响   总被引:4,自引:0,他引:4  
在25℃和进料中含水条件下,考察了由Na2CO3,(NH4)2CO3,NaOH和NH4OH等4种沉淀剂制备的Au/ZnO催化剂上CO氧化活性和稳定性。结果表明,沉淀剂影响Au/ZnO催化剂的前体组成、金粒子和ZnO粒子大小、比表面积及CO拉化性能。由NH4OH制备的Au/ZnO催化剂活性和稳定性较差,CO转化率只有15%;由其它3沉淀剂制备的Au/ZnO催化剂的CO氧化活性和稳定性明显改善,可至少连续反应1100h,且保持CO完全氧化,其中Na2CO3是最佳沉淀剂。在反应过程中反应气氛可引起金粒子的聚集及在催化剂表面生成新的碱式碳酸锌物相。催化剂的稳定性与金粒子长大速度和碳酸根累积量有关。  相似文献   

4.
利用共沉淀法制备了Au/ZnO催化剂.在室温和进料中含水的条件下考察了残存的氯离子对Au/ZnO催化剂CO氧化性能的影响,发现氯离子可促进金粒子的聚集及表面碱式碳酸锌的生成,因此对CO氧化活性和稳定性都有较强的负作用.  相似文献   

5.
采用溶胶-凝胶法制备了钙钛矿型复合氧化物LaCoO_3, 并用沉积-沉淀法(DP法)制备了Au/LaCoO_3催化剂. 考察了制备条件对催化剂催化氧化CO活性的影响. 结果表明, 制备过程中, 溶液pH、 pH调节顺序及催化剂焙烧温度对催化剂活性均有一定影响. Au/LaCoO_3催化剂的最佳制备条件为: 沉积过程中在HAuCl4溶液中先加入载体后, 再调节溶液pH=8, 得到的催化剂经250 ℃焙烧后可提高催化剂稳定性.  相似文献   

6.
汤颖  刘晔  路勇  朱萍  何鸣元 《催化学报》2006,27(10):857-862
 以类层柱CuZnAl水滑石为前体,经不同温度焙烧制备了一系列甲醇水蒸气重整制氢催化剂. 在250 ℃、 水/甲醇比1.3和重时空速2.5 h-1下的反应结果表明, 600 ℃焙烧的催化剂具有优异的活性和稳定性,而≤500 ℃和≥700 ℃焙烧后的催化剂活性较差. 热重、 X射线衍射、 傅里叶变换红外光谱和程序升温还原分析结果表明, 600 ℃焙烧时水滑石分解较为完全,析出纳米CuO粒子的同时伴生CuAl2O4尖晶石相,进而在反应过程中对金属Cu纳米粒子和ZnO起到良好的隔离和稳定作用. 焙烧温度≥700 ℃时CuO纳米粒子发生二次团聚,同时CuAl2O4尖晶石相大量生成,造成催化活性位减少,活性较低; 而焙烧温度≤500 ℃时水滑石分解不完全,生成 (Cu,Zn)AlxOy(CO3)z复合物且无尖晶石相伴生,造成反应中金属Cu纳米粒子和ZnO聚集,导致催化剂活性较低.  相似文献   

7.
邵建军  张平  宋巍  黄秀敏  徐奕德  申文杰 《化学学报》2007,65(18):2007-2013
采用沉积沉淀法制备了用于CO氧化的Au/ZnO催化剂, 并用程序升温还原(TPR), X射线衍射(XRD)和透射电镜(TEM)技术对催化剂进行了表征. 结果表明: 采用沉积沉淀法可制备出高度分散的Au/ZnO催化剂; 提高焙烧温度导致金颗粒聚集长大, 样品经533, 673, 773 K焙烧后金物种的颗粒尺寸分别为2.7, 3.5, 3.7 nm. 催化剂的TPR表征结果中发现部分还原态的金物种在室温就可被氧化, 催化剂预先用流动空气处理可提高其氧化还原性, 样品经多次氧化还原循环后, 其氧化循环性能没有明显下降. CO的氧化反应结果表明, 焙烧温度强烈影响催化剂对CO的氧化活性, 533 K焙烧后的催化剂活性最高. 即使在反应气中含水3.1%(体积比)的湿气条件下, 反应300 h后, CO的转化率仍然保持在95%.  相似文献   

8.
采用共沉淀法制备了Cu/Zn物质的量的比为1∶1的Cu/ZnO催化剂, 考察了不同焙烧温度对催化剂的水煤气变换反应活性和开停循环稳定性的影响. 研究发现350 ℃焙烧得到的Cu/ZnO催化剂有最高的反应活性, 在反应温度为200 ℃时, CO转化速率即可达2080 cm3•gcat-1•h-1. 在开停循环性能评价中, Cu/ZnO催化剂表现出了良好的稳定性, 明显优于CeO2负载的贵金属催化剂, 其中焙烧温度为550 ℃的Cu/ZnO催化剂在一次开停循环操作后活性有明显的提高.  相似文献   

9.
Ni/Al2O3催化剂上甲烷三重整制合成气   总被引:3,自引:4,他引:3  
姜洪涛  李会泉  张懿 《分子催化》2007,21(2):122-127
制备了负载于大孔容、高比表面的γ-Al2O3载体上的Ni基催化剂.采用固定床流动反应装置,考察了催化剂焙烧温度、反应条件(反应温度、压力、空速以及反应原料气组成)对甲烷三重整反应(TRM)制合成气的催化性能的影响.结果表明,650℃焙烧的催化剂具有较好的稳定性.在常压、850℃、10080h-1、n(CH4)/n(CO2)/n(H2O)/n(O2)=1/0.48/0.54/0.1的条件下,CH4转化率达到95.4%,CO2转化率达到84.6%,在此条件下连续运行9h未见活性下降.TRM反应适宜于在高温、低压下进行,原料组成的变化不会影响CH4转化率,但会影响CO2转化率和产物合成气的n(H2)/n(CO)比.  相似文献   

10.
CO催化氧化是一个重要的经典反应,与许多应用息息相关,包括痕量CO气体检测、汽车尾气净化和安全防护等,吸引了人们广泛的研究兴趣.负载型Au纳米颗粒在CO氧化等许多反应中有着与众不同的催化活性,具有广泛的应用前景,但依然存在着稳定性差、易团聚失活的问题.人们通过应用多孔载体隔离Au纳米颗粒,在Au纳米颗粒表面覆盖金属氧化物、二氧化硅或碳,以及对Au纳米粒子进行封装等方法解决这些问题.尤其是利用金属氧化物与Au纳米粒子间的强相互作用对其进行覆盖或封装,有效地提高了Au催化材料的稳定性.但以上策略操作流程复杂,不利于应用.本文发展了一种简单有效的方法,通过EDTA的络合作用引入CeO_x对Au纳米粒子进行修饰,得到的CeO_x@Au/SiO_2催化剂活性和耐久性明显提升.采用X射线衍射(XRD)和高分辨透射电子显微镜(HRTEM)证明了CeO_x成功地修饰在Au纳米颗粒上.且通过EDTA引入CeO_x所制备的CeO_x@Au/SiO_2催化剂结构明显不同于直接加入纳米CeO_2所得到的CeO_x-Au/SiO_2的结构.EDTA的络合作用能有效地连结Ce与Au物种,经焙烧消除EDTA后,加强了CeO_x与Au间相互作用,最终在Au纳米粒子表面形成丰富的CeO_x颗粒与原子级厚度的CeO_x层.进一步应用X射线光电子能谱(XPS)和氢气程序升温还原(H_2-TPR)等手段研究了CeO_x修饰对Au纳米粒子的影响.XPS结果表明,CeO_x@Au/SiO_2催化剂带正电的Au~+和Au~(3+)的浓度明显高于一般的Au/SiO_2和直接加入CeO_2制备得到的CeO_x-Au/SiO_2催化剂.H_2-TPR同样表明,CeO_x修饰调变了Au纳米粒子的氧化还原性.这些均对其在CO催化氧化反应中的催化活性具有重要影响将CeO_x@Au/SiO_2催化剂用于CO催化氧化反应中,160℃时,CO转化率达98.8%,至180℃后实现了CO的完全转化.而一般的Au/SiO_2催化剂在160℃时CO转化率仅为4.0%,CO的完全转化则需340℃.直接加入纳米CeO_2所得到的CeO_x-Au/SiO_2催化剂,其催化活性略有提升,CO完全转化所需的温度为300℃.这充分证明了通过CeO_x修饰Au纳米粒子,能有效提升其催化活性.原位漫反射红外光谱(DRIFT)结果表明,CeO_x修饰促进了CO在Au表面的吸附,并能形成[Au(CO)_2]~(δ+)物种;同时还观察到大量的单齿CO_3~(2-)物种信号,反映了CeO_x@Au/SiO_2催化剂表面存在丰富的活性氧物种.通入O_2后,观察到了大量CO_3~(2-)物种信号和气相CO_2,印证了催化剂表面发生的CO催化氧化过程,也表明其具有非常高的催化活性.考察了CeO_x@Au/SiO_2催化剂的耐久性,发现经50hCO氧化反应,催化剂依然能有效保持活性.相比之下,Au/SiO_2催化剂经10 h反应后,开始明显失活.由此可见,CeO_x@Au/SiO_2催化剂具有相当高的耐久性.在600℃将催化剂焙烧3 h,发现Au/SiO_2催化剂中Au纳米粒子存在明显团聚现象,而CeO_x@Au/SiO_2催化剂的Au纳米粒子依然均匀分布在载体表面,且粒径未发生明显变化.  相似文献   

11.
常温常湿条件下Au/MeO~x催化剂上CO氧化性能   总被引:12,自引:0,他引:12  
王桂英  张文祥  蒋大振  吴通好 《化学学报》2000,58(12):1557-1562
利用共沉淀法制备了Au/MeO~x催化剂(Me=Al,Co,Cr,Cu,Fe,Mn,Ni,Zn)。在常温常湿条件下,考察了不同氧化物负载的金基催化剂的CO氧化性能。结果表明,氧化物种类对催化剂的活性和稳定性均有较大的影响。Cu,Mn,Cr等氧化物负载的金基催化剂的活性较差,而Zn,Fe,Co,Ni,Al等金属氧化物负载的金基催化剂可将CO完全氧化,又具有一定的稳定性,在相同反应条件下,CO完全转化时的稳定性顺序为Au/ZnO>Au/α-Fe~2O~3>Au/Co~3O~4>Au/γ-Al~2O~3≈Au/NiO。还发现水对Au/MnO~x催化剂的活性和稳定性有负作用,而对180℃焙烧制备的Au/ZnO-180催化剂的活性和稳定性均有明显的湿度增强作用。  相似文献   

12.
Gold catalysts with loadings ranging from 0.5 to 7.0 wt% on a ZnO/Al2O3 support were prepared by the deposition–precipitation method (Au/ZnO/Al2O3) with ammonium bicarbonate as the precipitation agent and were evaluated for performance in CO oxidation. These catalysts were characterized by inductively coupled plasma-atom emission spectrometry, temperature programmed reduction, and scanning transmission electron microscopy. The catalytic activity for CO oxidation was measured using a flow reactor under atmospheric pressure. Catalytic activity was found to be strongly dependent on the reduction property of oxygen adsorbed on the gold surface, which related to gold particle size. Higher catalytic activity was found when the gold particles had an average diameter of 3–5 nm; in this range, gold catalysts were more active than the Pt/ZnO/Al2O3 catalyst in CO oxidation. Au/ZnO/Al2O3 catalyst with small amount of ZnO is more active than Au/Al2O3 catalyst due to higher dispersion of gold particles.  相似文献   

13.
Supported Au catalysts for low-temperature CO oxidation were prepared by solvated metal atom impregnation (SMAI) and conventional impregnation (CI). X-ray photoelectron spectroscopy investigations indicated that gold in all the samples was in the metallic state. TEM and XRD measurements showed that the mean diameter of Au particles prepared by SMAI was smaller than that of those prepared by CI with the same gold content. Catalytic tests showed that SMAI catalysts had higher CO oxidation activity than CI catalysts with the same compositions. Both SMAI and CI Au/TiO2catalysts exhibited high activities in low temperature CO oxidation. Full CO conversion was obtained at 323 K for 3.1 wt.% Au/TiO2 (SMAI) catalyst, which displayed higher activity than the 3.1 wt.% Au/D-72(SMAI) and 3.1 wt.% Au/TiO2(CI). Although the sizes of gold particles prepared by the same method and supported on both TiO2 and resin were comparable, the Au/TiO2 catalysts showed significantly higher activities than the Au/resin catalysts with the same Au contents under the same reaction conditions. These results prove that not only the gold particle size, but also the support plays a key role in CO oxidation. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

14.
甲醇重整在线制氢作为质子交换膜燃料电池的燃料成为当前研究的热点。受重整反应动力学及热力学的限制,使得甲醇重整气(富氢气体)中除含有大量的氢气外还含有少量的CO,CO极易吸附在燃料电池阳极催化剂表面,使电池性能下降,因而必须去除重整气中的CO,选择性氧化脱除富氢气  相似文献   

15.
采用负压沉积沉淀法、等体积浸渍法、负压等体积浸渍法等方法制备了纳米Au/TS-1催化剂,研究了深床焙烧和等离子体焙烧,以及焙烧温度和焙烧气氛对催化剂中纳米金粒子大小和催化性能的影响,并采用ICP、TEM、XRD、UV-vis、XPS对催化剂金粒子进行了物化性能表征,采用甲醇羰基化制乙酸甲酯反应表征催化性能.结果表明,不同制备方法、不同焙烧方法、不同焙烧温度和焙烧气氛对负载型纳米Au/TS-1沸石分子筛催化剂中金粒子的大小、形貌、物化性质和催化性能有明显影响.其中,3种制备方法中,氢气气氛下焙烧均比空气和氮气气氛下焙烧得到的催化剂的金粒子尺寸更小,分散更均匀,约为5~10 nm.与其它方法相比,负压沉积沉淀法可制得分散更均匀的金粒子,Au/TS-1沸石催化剂中的金粒子尺寸更小,平均粒径为1~5 nm.催化性能评价结果显示,3种方法制备出的负载型金催化剂用于催化甲醇羰基化制乙酸甲酯反应体系中,甲醇的转化率分别为85%、75%、60%,乙酸甲酯选择性可高达68%,反应温度200℃为最好.  相似文献   

16.
In this work, we present a detailed study concerning the evaluation of the metal-support interaction in high activity gold catalysts for CO oxidation. Using the colloidal deposition method, model catalysts were prepared, which allow the isolation of the effect of the support on the catalytic activity. Prefabricated gold particles were thus deposited on different support materials. Since the deposition process did not change the particle sizes of the gold particles, only the influence of the support could be studied. TiO2, Al2O3, ZrO2, and ZnO were used as support materials. Catalytic tests and high resolution transmission electron microscopy clearly show that the support contributes to the activity. However, our results are not in line with the distinction between active and passive supports based on the semiconducting properties of the oxidic material. The most active catalysts were obtained with TiO2 and Al2O3, while ZnO and ZrO2 gave substantially less active catalysts. Furthermore, the effect of other important parameters on the catalytic activity (i.e., particles size distribution, calcination temperature, and aging time for a Au/TiO2 catalyst) has also been studied. Using this preparation route, the catalysts show high-temperature stability, size dependent activity, and a very good long-term stability.  相似文献   

17.
Fe-doped TiO2 supported gold nanoparticles as high-performance CO oxidation catalysts were prepared. XRD data revealed that TiO2 support was in an anatase phase. After calcination at 300℃, the sample showed nanotube structure, and the size of gold nanoparticles was 3.1 nm. When calcined at 500℃, most nanotubes broke, and gold nanoparticles grew up to 5.9 nm. XPS spectrum indicated the presence of Fe in the +3 oxidation state. Au/Fe-TiO2(Au:1.44%, Fe:1.35%) calcined at 300℃ possessed the best catalytic activity, and it could completely convert CO at 25℃. The temperature of 100% CO conversion(T100%) of Fe-free catalyst was 40℃. After the catalysts were stored at room temperature for 7 d, T100% of Au/Fe-TiO2 increased from 25℃ to 30℃, while T100% of Fe-free catalyst increased from 40℃ to 80℃. The catalytic activity and storage stability of Au/TiO2 could be improved by Fe-doping. The increase of specific surface area, generation of oxygen vacancies and new adsorption sites, depression of the growth of gold nanoparticles, and strong metal-support interaction were responsible for the promoting effect of iron on the catalytic performance of Au/TiO2 for CO oxidation.  相似文献   

18.
Composite oxide MOx/Al2O3 supported gold catalysts for low-temperature CO oxidation were prepared and investigated. The presence of transition metal oxide was proved to be beneficial to the improvement of catalytic performance of Au/Al2O3 catalysts for low-temperature CO oxidation. Furthermore, the influence of various pretreatment conditions on Au/MOx/Al2O3 catalysts was studied carefully. The image of TEM showed that gold catalyst with small gold particles only in the form of a fine dispersion exhibited highly catalytic activity. The XPS, Fourier transform infrared (FTIR) spectroscopy characterization results of Au/FeOx/Al2O3 catalyst showed that gold catalysts having partially oxidized gold species have the best catalytic performance. One possible pathway for CO oxidation on Au/FeOx/Al2O3 catalyst is that the CO adsorbed on gold particles reacts with adsorbed oxygen, which is possible to occur on oxygen vacancies on the support or at the metal–support interface.  相似文献   

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