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1.
以FeCrAl合金薄片为基底,Al2O3浆料为过渡胶体,不同摩尔比的Cu、Co为催化活性组分,制备了一系列CuxCo1-x/Al2O3/FeCrAl(x=0-1)新型整体式催化剂.采用X射线粉末衍射(XRD),扫描电子显微镜(SEM),X光电子能谱(XPS)和程序升温还原(TPR)等手段对催化剂的结构进行了表征.在微型固定床反应器上评价了催化剂的催化甲苯燃烧性能.研究结果表明:在所制备的整体式催化剂上,当Cu含量比较低时,形成了Cu-Co-O固溶体;当Cu含量比较高时,可以测得CuO的衍射峰.催化剂表面颗粒大小和形貌与Cu、Co摩尔比密切相关.在催化剂表面,Co以Co2+和Co3+价态存在,而Cu主要以Cu2+价态存在.催化剂中的Cu可以改善Co的氧化还原性,从而有利于催化剂活性的提高.在所制备的催化剂中,Cu0.5Co0.5/Al2O3/FeCrAl催化剂具有最好的活性,甲苯在374oC可以完全催化燃烧消除.  相似文献   

2.
Ce0.67Zr0.33O2对CH4燃烧催化剂Fe2O3/Al2O3的改性作用   总被引:1,自引:0,他引:1  
固定n(Ce)/n(Zr)比为0.67/0.33, 用共沉淀法制得一系列CeO2-ZrO2-Al2O3固溶体. 采用这些固溶体作载体, 以Fe2O3为活性组分, 用浸渍法制备了一系列催化剂. BET结果显示, 将适量Ce0.67Zr0.33O2引入到Al2O3载体中有助于催化剂保持较高的比表面积. TPR结果显示, 载体中引入适量的Ce0.67Zr0.33O2可以改善催化剂的氧化还原性能. XRD结果表明, Fe2O3在CeO2-ZrO2-Al2O3载体上呈现出良好的分散状况, 老化前后催化剂的晶相结构基本无明显变化. 特别是当载体中m(Ce0.67Zr0.33O2)∶m(Al2O3)的值为1∶2时, Fe2O3/CeO2-ZrO2-Al2O3催化剂在甲烷催化燃烧中显示出最佳的催化性能和抗高温老化性能.  相似文献   

3.
固定n(Ce)/n(Zr)比为0.67/0.33,用共沉淀法制得一系列CeO2-ZrO2-Al2O3固溶体.采用这些固溶体作载体,以Fe2O3为活性组分,用浸渍法制备了一系列催化剂.BET结果显示,将适量Ce0.67Zr0.33O2引入到Al2O3载体中有助于催化剂保持较高的比表面积.TPR结果显示,载体中引入适量的Ce0.67Zr0.33O2可以改善催化剂的氧化还原性能.XRD结果表明,Fe2O3在CeO2-ZrO2-Al2O3载体上呈现出良好的分散状况,老化前后催化剂的晶相结构基本无明显变化.特别是当载体中m(Ce0.67Zr0.33O2)∶m(Al2O3)的值为1∶2时,Fe2O3/CeO2-ZrO2-Al2O3催化剂在甲烷催化燃烧中显示出最佳的催化性能和抗高温老化性能.  相似文献   

4.
 采用共沉淀法制备了一系列 CexZr0.9-xLa0.1O1.95-Al2O3 储氧材料 (其中 CexZr0.9-xLa0.1O1.95 与 Al2O3 的质量比为 1; x = 0, 0.3, 0.5, 0.7 和 0.9), 以其为载体, 制备了一系列负载铁基整体式催化剂. 考察了该系列催化剂催化甲烷燃烧反应性能, 并用低温 N2 吸附-脱附、储氧能力测试、X 射线衍射和 H2 程序升温还原等手段对载体和催化剂进行了表征. 活性测试结果表明, 当 x = 0.7 时, 催化剂活性最高, 可在 V(CH4) = 1% 和 50 000 h1 条件下使甲烷 465 oC 起燃, 615 oC 完全转化. CexZr0.9-xLa0.1O1.95-Al2O3 样品同时具有较高的储氧能力、较高的比表面积和抗热老化能力. 当 x = 0.5 和 0.7 时, 催化剂载体以 CeZrLaAlO 固溶体存在, 抗老化能力最好, 且 x = 0.7 时, 催化剂最易被还原.  相似文献   

5.
以CexZr1-xO2固溶体做载体,制备了系列Pt/γ-Al2O3/CexZr1-xO2催化剂(x=1,0.75,0.5,0.25,0).应用Brunauer-Emmet-Teller(BET)比表面积分析、X射线衍射(XRD)和H2程序升温还原(H2-TPR)等手段对催化剂进行相关表征,并系统研究了催化剂在饮食油烟催化燃烧中的催化活性.BET结果表叫催化剂的比表面积随Ce/Zr摩尔比的减小而减小.XRD结果表明贵金属Pt很好地分散在氧化铝和CexZr1-xO2固溶体上.H2-TPR结果发现催化剂Pt/γ-Al2O3/Ce0.5Zr0.5O2的还原峰面积最大且氧离子的流动性最好.催化活性研究结果表明Pt负载在CexZr1-xO2固溶体上有利于油烟的催化燃烧,降低了反应温度.随着CexZr1-xO2固溶体中Ce/Zr摩尔比的变化,催化剂的活性顺序为Pt/γ-Al2O3/Ce0.5Zr0.5O2>Pt/γ-Al2O3/Ce0.25Zr0.75O2>Pt/γ-Al2O3/Ce0.75Zr0.25O2>Pt/γ-Al2O3/CeO2>Pt/γ-Al2O3/ZrO2.  相似文献   

6.
Fe2O3/YSZ-γ-Al2O3催化剂在甲烷催化燃烧中的催化性能研究   总被引:9,自引:0,他引:9  
以Fe2O3为活性组分,γ-Al2O3,ZrO2-γ—Al2O3及YSZ—γ—Al2O3(YSZ是用Y2O3稳定ZrO2的催化剂载体)为载体,制备了3种甲烷燃烧催化剂.其中以YSZ—γ—Al2O3为载体的催化剂催化性能最好.XPS检测发现.ZrO2和Y2O3的存在可以增加和稳定Fe2O3的表面浓度,同时也可减弱Fe2O3与γ—Al2O3之间的相互作用.Fe2O3质量分数为10%的Fe2O3/YSZ—γ—Al2O3催化剂具有最佳的催化活性.XRD测试结果表明.该催化剂的活性与Fe2O3在载体上的分散状况有关.  相似文献   

7.
采用柠檬酸溶胶鄄凝胶法制备CeO2基固溶体催化剂(Ce0.7Zr0.3O2-δ、Ce0.7Pr0.3O2-δ和Ce0.7Gd0.3O2-δ), 并考察了固溶体和三种常用载体(TiO2、SiO2和Al2O3)及其负载KNO3后的催化碳黑燃烧活性. 结果表明, CeO2基固溶体催化剂具有很高的催化燃烧活性, 其活性接近TiO2、SiO2和Al2O3负载30%KNO3催化剂的活性. 因为纳米CeO2基固溶体的形成, 提高了催化剂的抗烧结能力, 使氧更活泼, 从而提高氧化还原性能, 有利于碳颗粒燃烧. 由于CeO2基固溶体本身的高活性, 因此KNO3的添加不能明显提高CeO2基固溶体催化剂(尤其是Ce0.7Zr0.3O2-δ和Ce0.7Pr0.3O2-δ)的催化燃烧活性, 但KNO3能显著提高TiO2, SiO2和Al2O3的催化燃烧活性.  相似文献   

8.
Ce0.67Zr0.33O2对CH4燃烧催化剂Fe2O3/Al2O3的改性作用   总被引:5,自引:0,他引:5  
固定n(Ce)/n(Zr)比为0.67/0.33,用共沉淀法制得一系列CeO2-ZrO2-Al2O3固溶体,采用这些固溶体作载体,以Fe2O3为活性组分,用浸渍法制备了一系列催化剂,BET结果显示,将适量Ce0.67Zr0.33O2引入到Al2O3载体中有助于催化剂保持较高的比表面积,TPR结果显示,载体中引入适量的Ce0.67Zr0.33O2可以改善催化剂的氧化还原性能,XRD结果表明,Fe2O3在CeO2-ZrO2-Al2O3载体上呈现出良好的分散状况,老化前后催化剂的晶相结构基本无明显变化,特别是当载体中m(Ce0.67Zr0.33O2):m(Al2O3)的值为1:2时,Fe2O3/CeO2-ZrO2-Al2O3催化剂在甲烷催化燃烧中显示出最佳的催化性能和抗高温老化性能。  相似文献   

9.
制备了Fe, Co, Cu, Cr和Mn金属氧化物催化剂, 所用载体为Al2O3-Ce0.5Zr0.5O2复合氧化物. 利用X射线衍射(XRD), 程序升温还原(TPR), 储氧量测试, BET比表面测试和光电子能谱(XPS)表征了催化剂. 并利用活性测试表征了各种催化剂对乙酸乙酯催化燃烧能力. 各种表征结果证实, 由于催化剂Mn/Al2O3-Ce0.5Zr0.5O2(1:2, 质量比)具有最多的可还原物种, Cu/Al2O3-Ce0.5Zr0.5O2(1:2)具有较多的可还原物种和最强的可还原能力, 使它们对乙酸乙酯催化燃烧表现出了最好的活性. 在催化剂Cu/Al2O3-Ce0.5Zr0.5O2(1:2)和Mn/Al2O3-Ce0.5Zr0.5O2(1:2)上, 乙酸乙酯于245 ℃转化了99%, 表明这两种催化剂具有广泛的应用潜力.  相似文献   

10.
以CexZr1-xO2固溶体做载体,制备了系列Pt/γ-Al2O3/CexZr1-xO2催化剂(x=1,0.75,0.5,0.25,0).应用Brunauer-Emmet-Teller(BET)比表面积分析、X射线衍射(XRD)和H2程序升温还原(H2-TPR)等手段对催化剂进行相关表征,并系统研究了催化剂在饮食油烟催化燃烧中的催化活性.BET结果表明催化剂的比表面积随Ce/Zr摩尔比的减小而减小.XRD结果表明贵金属Pt很好地分散在氧化铝和CexZr1-xO2固溶体上.H2-TPR结果发现催化剂Pt/γ-Al2O3/Ce0.5Zr0.5O2的还原峰面积最大且氧离子的流动性最好.催化活性研究结果表明Pt负载在CexZr1-xO2固溶体上有利于油烟的催化燃烧,降低了反应温度.随着CexZr1-xO2固溶体中Ce/Zr摩尔比的变化,催化剂的活性顺序为Pt/γ-Al2O3/Ce0.5Zr0.5O2〉Pt/γ-Al2O3/Ce0.25Zr0.75O2〉Pt/γ-Al2O3/Ce0.75Zr0.25O2〉Pt/γ-Al2O3/CeO2〉Pt/γ-Al2O3/ZrO2.  相似文献   

11.
The space group symmetry and crystal structure of Tl3SbS3−xSex compounds in the composition range 0 < x < 3 have been determined by a combination of powder X-ray diffraction, electron diffraction, and high-resolution electron microscopy. The incongruently melting compound Tl3SbSe3 has been shown to crystallize in cubic space group P213 with a = 9.435Å in a structure related to that of Langbeinite. The convergent beam electron diffraction pattern of Tl3SbS3 is in accord with the space group R3m determined by X-ray diffraction. The cubic Langbeinite-type structure is found for Tl3SbS3−xSex for 0.5 < x < 3 and for Tl3SbyAs1−ySe3 for 0.077 < y < 1.0. A five-component compound Tl3Sb0.5As0.5Se1.5S1.5 was also found to be cubic.  相似文献   

12.
LiNi1/3Co1/3Mn1/3O2 cathode materials for the application of lithium ion batteries were synthesized by carbonate co-precipitation routine using different ammonium salt as a complexant. The structures and morphologies of the precursor [Ni1/3Co1/3Mn1/3]CO3 and LiNi1/3Co1/3Mn1/3O2 were investigated through X-ray diffraction, scanning electron microscope, and transmission electron microscopy. The electrochemical properties of LiNi1/3Co1/3Mn1/3O2 were examined using charge/discharge cycling and cyclic voltammogram tests. The results revealed that the microscopic structures, particle size distribution, and the morphology properties of the precursor and electrochemical performance of LiNi1/3Co1/3Mn1/3O2 were primarily dependent on the complexant. Among all as-prepared LiNi1/3Co1/3Mn1/3O2 cathode materials, the sample prepared from Na2CO3–NH4HCO3 routine using NH4HCO3 as the complexant showed the smallest irreversible capacity of 19.5 mAh g−1 and highest discharge capacity of 178.4 mAh g−1 at the first cycle as well as stable cycling performance (98.7% of the initial capacity was retained after 50 cycles) at 0.1 C (20 mA g−1) in the voltage range of 2.5–4.4 V vs. Li+/Li. Moreover, it delivered high discharge capacity of over 135 mAh g−1 at 5 C (1,000 mA g−1).  相似文献   

13.
The structure of an Al3+ stabilized phase Li3−3xAlxBO3 (x≈0.18) was determined by means of single crystal X-ray diffraction. This phase crystallizes in space group P6122 or P6522, with lattice constants , and Z=6. The unit cell consists of six layers of BO3 groups with Li+ cations distributing statistically on five crystallographic sites, none of which is fully occupied. The Li sites are close to each other and a three-dimensional network results when Li sites only within 1.65 Å are connected. Significant ionic conductivity was observed for this phase.  相似文献   

14.
王萌  吴锋  苏岳锋  陈实 《物理化学学报》2008,24(7):1175-1179
通过在硝酸钇水溶液浸渍并焙烧的简单工艺, 在LiCo1/3Ni1/3Mn1/3O2材料表面包覆了一层Y2O3. 采用X射线衍射(XRD), 扫描电子显微镜(SEM), 透射电子显微镜(TEM), 循环伏安(CV)和恒流充放电对包覆和未包覆的LiCo1/3Ni1/3Mn1/3O2进行了测试分析. 结果表明, Y2O3包覆并没有改变LiCo1/3Ni1/3Mn1/3O2的晶体结构, 只存在于LiCo1/3Ni1/3Mn1/3O2的表面; 与未包覆的材料相比, Y2O3包覆后的材料在高电位下具有更好的容量保持率和放电容量. CV测试表明, 包覆层的存在有效抑制了材料层状结构的转变及电极与电解液的负反应.  相似文献   

15.
采用改进的固相法一步反应成功制备了掺杂Cr的系列正极材料Li[Mn1/3-x/3Ni1/3-x/3Co1/3-x/3Crx]O2(x=0, 0.015, 0.025, 0.050, 0.100),用XRD, SEM和充放电测试等考察了它们的物理性质和电化学性能.结果表明,所合成的正极材料具有O2层状结构,规则的形貌和均匀的粒径尺寸分布,其嵌锂脱锂均为一步机理.加入适量的Cr可提高该系列正极材料的电化学性能和循环稳定性.x=0.015时的正极材料电化学性能最佳,室温下其首次放电比容量为138.60 mAh·g-1,并且循环性能最好.  相似文献   

16.
A perovskite-type BaCu1/3Nb2/3O3 was prepared by high temperature reaction using BaCO3, CuO and Nb2O5. The X-ray powder diffraction pattern of this compound was indexed with the tetragonal cell with the lattice parameters of a=4.0464(4) and c=4.1807(4) Å (c/a=1.033). This compound had the tetragonal perovskite-type structure in which the B site was occupied statistically by Nb and Cu atoms. From high temperature X-ray powder diffraction patterns this compound had a phase transition from the tetragonal to cubic symmetry in the temperature range of 500-600 °C. The P-E and S-E hysteresis loops occurred at room temperature and the apparent maximum in the temperature dependence of the dielectric constant was observed at 520 °C. The temperature dependence of the inverse of magnetic susceptibility exhibited paramagnetic behavior.  相似文献   

17.
Single crystals of Zr3Al3C5—a carbide previously reported with the formula ZrAlC2−x—were isolated from a sample prepared by reaction of ZrC with an excess of aluminum. The carbides ScAl3C3and UAl3C3were synthesized from the elemental components by arc-melting. The crystal structures of these three compounds were redetermined from four-circle X-ray diffractomter data. In the original structure determination of ZrAlC2−x, the metal positions were found to form close-packed layers in the space groupP63/mmc, while the carbon atoms were assumed to occupy 5/6 of the octahedral voids at random. The present structure determination in the space groupP63/mc(R=0.024 for 519 structure factors and 23 variable parameters) shows that all carbon positions are fully occupied and one has a trigonal bipyramidal aluminum coordination. The structures of ScAl3C3and UAl3C3also have originally been determined in the space groupP63/mmc. The present structure refinements in the space groupP63mc(ScAl3C3:R=0.031 for 282Fvalues and 16 variables; UAl3C3:R=0.029 for 217Fvalues and 16 variables) essentially confirms the structures with the exception of one aluminum site. In all of these structures the metal atoms are arranged in close-packed layers and together with the previously reported structure of U2Al3C4they form a homologous series with the general formulaT1+nAl3C3+n, wheren=0, 1, 2 for ScAl3C3, U2Al3C4, and Zr3Al3C5, respectively. The packing of the metal atoms is represented by the Zhdanov symbols (4)2, (5)2, and (6)2. The arrangement of the aluminum atoms is very similar to that of the binary carbide Al4C3, while the other metal atoms form a cubic stacking sequence, as it is found in the binary carbidesTC with NaCl type structure.  相似文献   

18.
19.
采用热注入的方法合成了CH3NH3Pb Br3纳米片,荧光光谱分析发现稀释一定的倍数会使荧光光谱由451 nm红移到531nm。TEM及XRD分析表明,发光红移是由CH3NH3Pb Br3纳米片聚集自组装导致的颗粒变大引起的。进一步的对比实验表明,油胺在纳米片聚集自组装的过程中起到了至关重要的作用,由此结合XRD和TEM表征,阐述了CH3NH3Pb Br3纳米片聚集自组装的机理。  相似文献   

20.
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