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1.
Distribution of metals on Pd-SnO2/D3520 catalysts and state of the catalysts were studied with SEM,XRD.The interaction between metals and support or between Pd and Sn or Pb were studied by IR,XPS.In addition,the relationship of the activity for catalytic hydrogenation of the olefins and outer layer valence electron density of Pd wasdiscussed. The results showed that these catalysts had suitable surface state,the metals were uniformly dispersed on the surface layer of the support.There were not obvious interaction between the metals and the support.There was strong interaction between Pd and Sn (or Pb) in the catalysts.The catalytic activity for hydrogenation was related to outer layer valence electron density of Pd.  相似文献   

2.
Distribution of metals on Pd-SnO2/D3520 catalysts and state of the catalysts wrer studied with SEM,XRD.The interaction between metals and support or between Pd and Sn or Pb were studied by IR,XPS.In addition,the relationship of the activity for catalytic hydrogenation of the olefins and outer layer valence electron density of Pd was discussed.The results showed that these catalysts had suitable surface state,the metals were uniformly dispersed on the surface layer of the support.There were not obvious interaction between the metals and the support.There was strong interaction between Pd and Sn(or Pb) in the catalysts.The catalytic activity for hydrogenation was related to outer layer valence electron density of Pd.  相似文献   

3.
STRUCTURALCHARACTERIZATIONOFPd-SnO_2/D3520 CATALYSTSHuWeibing(HubeiInstituteforNationalities,Enshi,445000)ZhouZhongxin;ZhangM?..  相似文献   

4.
Sereral Pd-SnO2/D3520 and Pd-PbO/D3520 catalysts with Pd/D3520,SnO2/D3520 and PbO/D3520 catalysts as reference were studied by means of IR and XPS.Interaction between Pd and the second metal or between metal and support was observed.Results show that there is a strong interaction between Pd and the second metal,but there is not an obvious interaction between metal and support.The active constituent is Pd.Hydrogenation activity of the catalysts is altered because of the interaction between Pd and the second metal.The activity of the catalysis for hydrogenation has relation to outer layer valence electron density of Pd.  相似文献   

5.
The state of highly dispersed palladium particles supported on filamentous carbon was studied using high-resolution electron microscopy, XPS, and X-ray diffraction analysis. Three types of filamentous carbon were used, in which the basal planes of graphite were arranged along, across, and at an angle to the nanofiber axis. The amount of supported palladium was 0.25–5.8 wt %. The structure of the carbon support was found to affect the properties of the active component. Highly dispersed palladium particles exhibited the strongest interaction with a carbon surface formed by the butt ends of graphite (002) layers. This interaction resulted in electron transfer from the metal to the support and in the stabilization of palladium in the most dispersed state. A change in the properties of palladium particles caused a change in the catalytic properties of Pd/C catalysts in the reaction of selective 1,3-butadiene hydrogenation to butenes. The strong interaction of Pd2+ with the butt ends of graphite resulted in the stabilization of palladium in an ionic state. An increase in the fraction of Pd2+ in the catalysts was responsible for a decrease in both the overall activity and selectivity of Pd/C catalysts in the reaction of 1,3-butadiene hydrogenation to butenes.  相似文献   

6.
Pd/C catalysts were prepared by deposited Pd nanoparticles (NPs) on different carbon supports including activated carbon (AC), graphite oxide (GO), and reduced graphite oxide (rGO) using sol-immobilization method. Through transmission electron microscopy, powder X-ray di raction, and X-ray photoelectron spectroscopy, the role of the carbon supports for the catalytic performances of Pd/C catalysts was examined in selective hydrogenation of acetylene. The results indicate that Pd/AC exhibited higher activity and selectivity than Pd/GO and Pd/rGO in the gas phase selective hydrogenation of acetylene. Thermal and chemical treatment of AC supports also have some effect on the catalytic performance of Pd/AC catalysts. The differences in the activity and selectivity of various Pd/C catalysts were partly attributed to the metal-support interaction.  相似文献   

7.
结晶度对ZGDMP-Pd催化剂加氢活性的影响   总被引:15,自引:0,他引:15  
首次制得不同结晶度的晶态,半晶态和无定形甘氨酸-N-N双亚甲基磷酸锆载体和相庆的钯催化剂ZGDMP-DPd,用IR,XRD,XPS对它们进行了表征。测定了三种催化剂在常压下进行加氢反应的催化活性。  相似文献   

8.
石油脑裂解制备的烯烃流中通常含有 ~1% 二烯烃或者炔烃,其含量必须降低到10 ppm以下以避免其对下游聚合催化剂的毒化作用.对这些副产物选择性加氢生成单烯烃是降低其含量最有前景的方法.Pd基催化剂具有高的加氢活性和选择性,是目前最为常用的加氢催化剂,但是它也存在高转化率下选择性较低和容易因积碳而失活的问题.合成Pd基双金属催化剂和对Pd催化剂进行氧化物包裹是目前最为常用的方法,但是这两种方法往往在提高选择性的同时,降低了Pd催化剂的加氢活性.本文利用原子层沉积(ALD)FeOx修饰Pd/Al2O3催化剂,在提高Pd催化剂选择性的同时,1,3-丁二烯选择性加氢活性也得到提高.表征结果发现,该样品中Pd负载量为1%,Fe负载量则随着原子层沉积FeOx周期增加而逐渐增加;催化剂中Pd颗粒大小约为7 nm,其表面并未观察到FeOx覆盖层;Pd,Fe元素分布表明FeOx在Pd颗粒表面生长.CO红外漫反射光谱也发现,随着ALD FeOx周期的增加,CO在Pd颗粒表面的吸附特征峰强度逐渐降低,表明FeOx逐渐覆盖Pd颗粒表面;与此同时,随着FeOx包裹周期的增加,CO吸附在Pd(111)面的特征吸收峰相对于其吸附在边角位的特征峰,降低得更为明显.这表明FeOx优先覆盖Pd(111)面,而选择性地将Pd低配位点暴露,与ALD Al2O3包裹Pd颗粒的结果恰恰相反.X射线光电子能谱分析表明,在所有催化剂中Fe均以+3价形式存在;同时,因为Pd-FeOx间存在强相互作用,所以随着FeOx包裹周期的增加,金属态Pd逐渐向高结合能方向移动,使表面Pd处于缺电子状态.随后,我们对不同FeOx周期包裹Pd催化剂进行了1,3-丁二烯加氢活性测试.在25 oC时Pd/Al2O3催化1,3-丁二烯转化率为6.7%;随着温度升高,转化率逐渐上升,至43 oC时达100%.相反,在26 oC时,30Fe/Pd/Al2O3对1,3-丁二烯的转化率为45%,远高于Pd/Al2O3催化剂;这可能是因为缺电子的Pd或Pd-FeOx界面存在所致.Pd/Al2O3催化剂在较低的转化率(<75%)下,1-丁烯、反式-2-丁烯和顺式-2-丁烯选择性分别为74%,20%和6%;随着转化率的增加(75%~90%),1-丁烯选择性急剧下降,丁烷选择性快速上升,反/顺-2-丁烯选择性也略有增加,表明此时次级反应1-丁烯加氢占主导,同时伴随着1-丁烯异构化反应;当转化率继续增加(>90%),1-丁烯,反/顺-2-丁烯加氢生成丁烷为主要反应,此时丁烷选择性急剧上升,至转化率为99%时,丁烯选择性仅为52%.而当Pd催化剂表面存在FeOx时,丁烯选择性随着FeOx周期增加而逐渐增加,尤其是在较高转化率下(>75%);对于30Fe/Pd/Al2O3催化剂,转化率为99%时,丁烯选择性高达95%.这主要是因为在高转化率下,FeOx将Pd颗粒表面分割成较小的Pd团簇,降低了Pd颗粒表面吸附氢气浓度,抑制了丁烯加氢反应,而次级反应1-丁烯异构化占主导,使得丁烯选择性不变.  相似文献   

9.
乙烯是合成聚乙烯的原料,其主要来源是石油裂解气,其中少量的乙炔杂质会严重毒化生产聚乙烯的催化剂,因此需要将其去除.对于乙炔选择加氢反应,传统工业上使用的是Pd基催化剂,尽管其乙炔转化率很高,但对乙烯的选择性很低.我们前期的研究发现,IB族金属(Au,Ag和Cu)与Pd形成的合金单原子催化剂可以有效地提高乙烯的选择性.作为与Pd同组的非贵金属,Ni催化剂在多种催化加氢反应中显示出优异活性,而在乙炔选择加氢反应中,Ni是否能够替代贵金属Pd尚无定论.本文系统地研究了IB金属对Ni/SiO2催化剂乙炔选择性加氢性能的影响.与Pd/SiO2催化剂不同,单金属Ni/SiO2催化剂在低温下不具有活性.将IB金属添加到Ni/SiO2催化剂中,可以显著提高其催化活性以及对乙烯的选择性.其中,AuNix/SiO2和CuNix/SiO2催化剂的催化活性随还原温度升高而提高,而AgNix/SiO2催化剂对预处理温度不敏感.通过调变IB/Ni原子比和还原温度优化了催化剂的催化性能,发现优化后的三种催化剂(CuNi0.125/SiO2、AgNi0.5/SiO2和AuNi0.5/SiO2)的活性和选择性随反应温度升高表现出相似的变化趋势.催化稳定性考察结果显示,CuNi0.125/SiO2催化剂表现出最高选择性和稳定性;尽管AuNi0.5/SiO2的初始活性最高,但是稳定性最低.采用XRD、TPR和微量吸附量热等表征手段对不同IB金属对Ni基催化剂性质的影响进行了系统考察.以Cu-Nix/SiO2催化剂为例,H2-TPR测试结果表明,Cu-Ni双金属纳米颗粒的形成使得还原温度低于相应的单金属催化剂,表明铜和镍之间存在明显的相互作用.此外,通过TPR获得的CuNix/SiO2催化剂上的氢气消耗量与理论耗氢量相吻合,表明在还原处理的过程中双金属催化剂中的CuO和NiO可以被完全还原.乙炔的微量吸附量热结果表明,在CuNi0.125/SiO2,AgNi0.5/SiO2,AuNi0.5/SiO2和Ni0.5/SiO2催化剂上的初始吸附热分别为187,196,304和103 kJ/mol,即它们的初始乙炔吸附强度顺序为AuNi0.5/SiO2>AgNi0.5/SiO2>CuNi0.125/SiO2>Ni0.5/SiO2.该结果与三者的初始催化活性顺序一致,表明IB金属的加入可以增强乙炔在催化剂表面的吸附,从而提高催化活性.  相似文献   

10.
杨斌  徐筠 《分子催化》1996,10(5):339-344
制备了聚N-乙烯基-2-吡咯烷酮PVP负载钯催化剂Pd/PVP及各种双金属催化剂(1-m)Pd-mM/PVP,并用于硝基芳烃的加氢还原中,其中Pd/PVP中加入H2PtCl6的效果最佳,碱的用量、溶剂和Pd、Pt的比例都对催化剂的活性有明显的影响,双金属催化剂0.80Pd-0.20Pt/PVP在温和条件下能高活性,高选择性地催化硝基芳烃还原,得到相应的芳胺。  相似文献   

11.
钯系双金属催化剂的制备及其表面性质   总被引:2,自引:0,他引:2  
研究了浸渍液的浓度和酸度,浸渍时间,竞争吸附剂对金属离子在Al_2O_3上分布的影响。制得了Pd呈不同分布的Pd-Al_2O_3催化剂,和金属呈不同分布的Pd-Pt-Al_2O_3,Pd-Co-Al_2O_3,Pd-Ni-Al_2O_3双金属催化剂。用光学照相和EDX表征了催化剂上金属的分布。用TEM法测定Pd-Al_2O_3催化剂金属粒度的结果表明,Pd在Al_2O_3上分布的形式不同,其粒度也不同,其粒度次序为:蛋黄型>蛋白型>蛋壳型>均匀型。而该催化剂的苯加氢活性次序为:蛋白型>蛋黄型>蛋壳型>均匀型。双金属催化剂的苯加氢活性也与金属分布有关。  相似文献   

12.
利用ALD制备了TiO2限域的Pd催化剂, 研究了限域空间内Pd纳米颗粒与TiO2的界面作用对1,4-丁炔二醇(BYD)加氢性能的影响. 相比于管外负载型催化剂, 限域催化剂在催化1,4-丁炔二醇选择性加氢反应中体现出非常高的催化活性和1,4-丁烯二醇的选择性. HR-TEM、 EDX-Mapping、 XRD、 XPS和H2-TPR表征说明, 限域体系中Pd-TiO2的界面相互作用强于传统TiO2表面负载型Pd催化剂, 这种强界面作用不仅能够提高BYD的加氢活性, 也可抑制半加氢产物1,4-丁烯二醇的异构化和深度加氢, 提高1,4-丁烯二醇的选择性, 而且限域结构也可阻止管内壁Pd纳米颗粒的脱落, 提高催化剂的稳定性.  相似文献   

13.
The sequential deposition process of Pd and Sn on Au microcrystals, previously electrodeposited onto vitreous carbon (VC) was investigated in sulphuric acid solution by cyclic voltammetry and Auger electron spectroscopy (AES). Scanning electron microscopy was used to characterize Au deposits. The results reveal that the deposition of Pd and Sn is selective on the Au microcrystals, uniformly distributed on the VC surface, due to the strong interaction energy between the three metals. From the cyclic voltammetric and AES measurements in the VC/Au/Pd/Sn system, the existence of a Sn core–shell structure with Pd can be inferred. Similar voltammetric results were obtained for the VC/Au/Sn/Pd system, where in this case, the Pd adsorbed layer screened the Sn deposits on the VC/Au interface. However, the AES spectrum shows that Sn is still present on the surface, indicating that probably, the Sn deposits have diffused to the surface, or they are not completely covered by Pd. The VC/Au/Pd/Sn modified substrate appears as an interesting electrocatalyst material for the reduction of nitrate ions. Copyright © 2013 John Wiley & Sons, Ltd.  相似文献   

14.
The Pt-Sn-B/carbon nanotubes (CNTs) catalyst was prepared by impregnation-chemical reduction method. Its catalytic performance was evaluated by liquid-phase hydrogenation of chloronitrobenzene (CNB). The results showed that the catalyst had higher catalytic performance than common hydrogenation catalysts. The conversion of CNB could reach 99.9%, and the dechlorination of chloroaniline (CAN) was less than 1.9% when catalyzed by Pt-Sn-B/CNTs and more than 8.0% when catalyzed by common hydrogenation catalysts. X-ray diffraction and selected area electron diffraction analysis showed that Pt-Sn-B/CNTs had an amorphous alloy structure that can improve catalytic performance. Transmission electron micrograph image showed that the catalyst particles were highly distributed on the surface of CNTs. The hydrodechlorination of CNB was mainly affected by the unique structure of CNTs and the nature of the amorphous metals on the surface of CNTs. The relationship between the interaction of CNTs and amorphous metals and the catalytic performance of the catalyst is also discussed. Translated from the Chinese Journal of Catalysis, 2005, 26(3) (in Chinese)  相似文献   

15.
Bimetallic Pd–Ru/C catalyst was shown to be much more active in the aqueous-phase hydrogenation of furfural (473 K, 8 MPa) in comparison with both Pd/C and Ru/C catalysts. The enhanced hydrogenation activity manifested itself as an increased yield of cyclopentanol (77%) at a complete conversion of furfural. The observed synergistic effect between palladium and ruthenium in the tested reaction can be related to changes in the electronic state and particle size of supported metals upon interaction with each other and the Pd–Ru alloy formation.  相似文献   

16.
聚合物固载Co-Pd 催化剂的结构与活性   总被引:3,自引:0,他引:3  
采用溶剂化金属原子浸渍(SMAI)法制备了几种不同金属含量的Co Pd催化剂,用X射线衍射、X射线光电子能谱和磁测定对催化剂进行表征,并与普通浸渍法(CI)制得的相同金属含量的催化剂进行比较.结果表明SMAI法制备的催化剂金属粒度小于CI法制备的催化剂,且前者零价金属含量高于后者.SMAI法制备的催化剂Co在表面上富集,而CI法制备的催化剂Co在表面和体相的金属含量基本相同.在二丙酮醇加氢及电催化反应中, SMAI法催化剂比相同组成的CI法催化剂具有更高的催化活性.  相似文献   

17.
李想  孟明  刘咏  罗金勇 《催化学报》2007,28(9):835-840
采用尿素水解法或吸附沉淀法制备了金属氧化物载体,并用浸渍法负载0.5%Pd制得了Pd/Sn0.4Zr0.6O2,Pd/ZrO2,Pd/SnO2,Pd/SnO2-Al2O3和Pd/Al2O3催化剂.采用原位漫反射红外光谱、拉曼光谱、X射线光电子能谱和程序升温还原等方法对催化剂结构进行了表征,探讨了不同载体对表面PdOx物种化学吸附性质和氧化还原性能的影响,并与样品的丙烷氧化活性相关联.漫反射红外光谱表明,在Pd/SnO2-Al2O3中,Sn对Al2O3表面的Pd原子簇起到稀释作用,促进了Pd的分散,使得其CO线式吸附强度明显高于Pd/Al2O3,但Pd过高的分散度不仅减少了表面Pd-PdO活性位对的数目,而且使反应中间物种Pd-OH之间脱水困难,因而阻塞了活性位,降低了其循环氧化还原活性;而在Sn0.4Zr0.6O2复合氧化物载体中,SnO2有效地阻止了四方晶相ZrO2向稳态单斜晶相转变,且复合载体的比表面积较ZrO2和SnO2有所增加,其表面PdOx物种的分散度适中.此外,Sn0.4Zr0.6O2复合氧化物负载的Pd的价态介于Pd0与Pd2 之间,表面氧空位较多,促进了丙烷中C-H键的活化,使比表面积较低的Pd/Sn0.4Zr0.6O2具有最好的催化丙烷氧化能力,相反比表面积较高的Pd/SnO2-Al2O3活性很差,说明分散度适中且具有较低氧化态的PdOx(0相似文献   

18.
利用程序升温还原(TPR)、X-射线衍射(XRD)、CO吸附-红外光谱(CO-IR)、电子顺磁共振(EPR)和微型催化反应评价等手段, 研究了负载Pd/γ-Al2O3, Pd/TiO2和Pd-Ag/TiO2催化剂的结构和乙炔选择性加氢催化性能. 结果表明, Pd/TiO2催化剂具有较Pd/γ-Al2O3催化剂更优良的乙炔选择性加氢催化性能, 这与Pd-TiO2之间的强相互作用密切相关. Pd-TiO2之间的强相互作用不仅使负载型钯金属催化剂具有较高的乙炔加氢催化选择性, 而且具有较高的乙炔加氢催化活性. Pd/TiO2催化剂中添加Ag 组分后, Pd金属可促进Ag+的还原并可能形成Pd-Ag合金, 催化剂的乙烯选择性虽有所增加, 但乙炔转化率和乙烯收率下降.  相似文献   

19.
Palladium catalysts on various types of supports were studied in the liquid-phase hydrogenation of diphenylacetylene. Samples of Pd/SiO2–Al2O3, Pd/MgAl2O4, Pd/Al2O3, and Pd/TiO2 were characterized by the chemisorption of the CO and IR spectroscopy of adsorbed CO. The use of n-hexane as the solvent increases the reaction rate, which can be explained by the better solubility of hydrogen in the liquid phase. It is established that the acid–base properties of the support do not affect the activity and selectivity of the catalysts in the reaction under study. However, they alter the electronic state of palladium. According to the catalytic tests, Pd/TiO2 has the highest activity (turnover frequency) and selectivity to alkene. The comparison of the obtained catalytic data and the results of IR spectroscopy made it possible to conclude that this is due to the electron density redistribution between the palladium and TiO x particles, which is caused by the strong metal–support interaction.  相似文献   

20.
用微型催化反应装置评价, 并结合X射线粉末衍射(XRD)、表面积和孔结构测试、程序升温还原(TPR)、氢化学吸附和热重分析等方法研究了负载型PtSn/γ-Al2O3, PtSn/MCM-41和PtSn/Al2O3/MCM-41催化剂的丙烷脱氢反应催化性能. 发现PtSn/Al2O3/MCM-41催化剂具有较PtSn/MCM-41催化剂高的丙烷脱氢反应活性和较PtSn/γ-Al2O3催化剂高的反应稳定性. 实验结果表明, 纯硅MCM-41载体表面的锡物种因与载体相互作用较弱故易被还原, 导致铂金属分散度和催化剂的丙烷脱氢活性较低. 用Al2O3修饰MCM-41可以增强Sn物种与Al2O3/MCM-41载体之间的相互作用, 提高PtSn/Al2O3/MCM-41催化剂铂金属分散度和丙烷脱氢催化活性. 并且, 积炭后的PtSn/Al2O3/MCM-41催化剂具有较高的铂金属表面裸露度, 故具有较高的丙烷脱氢反应稳定性. PtSn/Al2O3/MCM-41催化剂优良的丙烷脱氢催化性能可能不仅与Sn-载体Al2O3/MCM-41较强的相互作用有关, 而且与Al2O3/MCM-41载体的介孔结构有关.  相似文献   

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