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1.
提出了一种催化降解氯代苯胺高选择性合成环己酮的技术.在La修饰Pd/Al2O3催化剂作用下,通过催化加氢的方法实现了由多氯代苯胺(2,4,6-三氯苯胺和2,4,-二氯苯胺)高选择性地合成环己酮(不含环己醇).在优化的反应条件下,2,4,6-三氯苯胺加氢生成环己酮的转化率和选择性分别为100%和98.6%(没有检测到环己醇);2,4,-二氯苯胺加氢生成环己酮的转化率和选择性均为100%.氯代苯胺在Pd/La-Al2O3催化剂表面首先发生加氢脱氯/N-甲基化等反应生成苯胺、N-甲基苯胺和N,N-二甲基苯胺等中间产物,随后这些中间产物发生苯环加氢、氨基水解/醇解等反应得到环己酮;氯代苯胺上Cl元素的存在和体系中水的含量是影响环己酮选择性的重要因素.  相似文献   

2.
赵敏  王雪  刘雅楠  贺宇飞  李殿卿 《化学学报》2021,79(12):1518-1525
环己酮是合成尼龙等材料的重要中间体, 但苯酚直接加氢反应制备环己酮容易生成环己醇而降低收率. 采用原位生长策略制备Pd/MgAl-LDO@Al2O3催化剂, 并用于苯酚选择性加氢反应, 获得的催化剂在高底物比条件具有良好的催化性能, 相较于Pd/Al2O3催化剂, Pd/MgAl-LDO@Al2O3催化剂使苯酚转化率显著增加, 苯酚转化率在97%时环己酮选择性可达88%. 利用X射线衍射(XRD)、程序升温脱附(TPD)、高分辨透射电子显微镜(HRTEM)和X射线光电子能谱(XPS)等手段对催化剂结构进行表征发现在氧化铝上原位生长类水滑石结构能够优化催化剂孔结构并提高活性组分分散度, 且增加了载体表面碱位点的强度, 碱位点的存在影响了苯酚的吸附形式, 从而大幅增加环己酮的选择性. 此外, 当将Ni引入层状结构时, 通过NaBH4的还原可获得PdNi合金结构. 动力学研究表明, 由于PdNi合金的形成, Pd/NiAl-LDO@Al2O3催化剂苯酚加氢反应的能垒低于Pd/MgAl-LDO@Al2O3, 同时合金结构导致环己酮选择性的明显降低.  相似文献   

3.
作为生产尼龙6、尼龙66和聚酰胺树脂等各种聚合物的重要原材料,环己酮和环己醇(KA oil)每年在全球的消耗量大约在100万吨.KAoil主要采用苯酚加氢法和环己烷氧化法制备,其中苯酚加氢法可以在相对温和的反应条件下实现较高的选择性.目前, Pt基和Pd基非均相催化剂因具有良好的可重复使用性成为加氢反应的主流催化剂,但在实际应用中却面临着催化剂价格昂贵的问题.因此,减少贵金属的消耗量以降低KAoil的最终生产成本,开发探索出更高效的方法最大程度提升贵金属纳米催化剂的活性成为核心问题.目前,研究者致力于通过调控催化剂的金属粒径、合金结构和催化剂孔结构来提高金属纳米催化剂的苯酚加氢活性.近期研究发现,酸性氧化物载体可以用来提升负载金属中心的苯酚加氢活性,可以通过改变金属周围的微环境进一步提高金属活性.本文通过构建尺寸可调控的Pd纳米立方体/硫掺杂碳载体异质结结构,提出一种特殊的电子界面效应成功地提高了活性中心Pd纳米立方体的苯酚加氢活性.在金属/半导体载体异质结中,由金属和半导体之间所形成的肖特基势垒所驱动,电子在金属和半导体载体的界面处发生转移直至金属和半导体载体的费米能级达到平衡,最终...  相似文献   

4.
Au/ZSM-5催化选择氧化环己烷制环己酮和环己醇的研究   总被引:9,自引:1,他引:9  
利用水热合成的方法制备了ZSM-5分子筛担载的纳米金催化剂.对合成的样品进行了XRD,XPS,Uv-Vis征分析,以环己烷催化氧化为探针反应.发现该催化剂对选择氧化环己烷制备环己酮和环己醇表现了优异的活性,环己烷的最高转化率可达到~16%.环己酮和环己醇的总选择性达到~92%.  相似文献   

5.
分别以MgO,-γAl2O3和镁铝水滑石(HT)为载体,PdCl2为活性金属前驱体,采用等体积浸渍法制得Pd质量分数为0.5%的Pd/MgO,Pd/Al2O3和Pd/HT催化剂,考察了它们对苯酚加氢制环己酮的催化活性和选择性.采用X射线衍射、N2吸附、H2程序升温脱附、CO2程序升温脱附和X射线光电子能谱等手段对这些催化剂进行了表征,并与催化活性和选择性关联.实验结果表明,载体的平均孔径越大,催化剂的表面Pd含量越高,催化剂表面的碱中心越多,则越有利于氢和苯酚在催化剂表面的吸附,从而提高苯酚的转化率和环己酮选择性.在反应温度为130℃,H2与苯酚摩尔比为4,LHSV为0.19 h-1的条件下,0.5%Pd/HT催化剂上苯酚的转化率可达90%,环己酮的选择性可达97%以上.  相似文献   

6.
利用等体积浸渍法制备了一系列不同助剂修饰的Pd/AI2O3催化剂,并考察了催化剂对苯酚液相原位加氢制环己酮反应的催化性能.结果表明,Ba-Pd/AI2O3对苯酚液相原位加氧反应有较优的催化性能.当w(Ba)=3%时,苯酚转化率可比Pd/AI2O3催化剂提高近2倍.在优化的反应条件下,苯酚转化率可达100%,环己酮收率可达80%.利用透射电子显微镜、CO化学吸附、X射线衍射、N2吸附-脱附和CO2程序升温脱附等手段表征了不同Ba含量的Pd/AI2O3催化剂的物理化学性质.结果表明,Ba的添加可明显提高Pd在AI2O3表面的分散度,同时增强了催化剂表面的碱性.这是Ba-Pd/AI2O3对苯酚液相原位加氢制环己酮反应具有较优催化性能的重要原因.  相似文献   

7.
采用化学还原法制备出非晶态催化剂Ni-W-B和Co-W-B,用BET、XRD和XPS对催化剂进行表征分析,以对甲基苯酚为模型化合物研究了两种催化剂的加氢脱氧性能.结果表明,所制备的两种催化剂均为非晶态结构,两种催化剂在对甲基苯酚的加氢脱氧反应中都显示出较好的脱氧活性.在相对低温523 K下,Ni -W-B催化剂显示较高的加氢活性,转化率达到100.0%,对甲基环己醇的选择性为55.1%,脱氧选择性只有44.1%,而Co-W-B催化剂显示出较高的脱氧活性,脱氧选择性达到93.1%,这主要是由于催化剂的表面不同价态元素组成含量引起的.在573 K和4.0 MPa下,催化对甲基苯酚的加氢脱氧反应的转化率和脱氧选择性都能达到100%.  相似文献   

8.
环己酮肟在B2O3/Al2O3-TiO2催化剂上的气相Beckmann重排反应   总被引:1,自引:0,他引:1  
制备了B2O3/Al2O3-TiO2复合载体催化剂,并考察了其对环己酮肟气相Beckmann重排制己内酰胺反应的催化性能. 结果表明,载体中TiO2的含量、B2O3的负载量、载体的预处理温度及催化剂的焙烧温度等均对催化剂的性能产生明显的影响. 当载体中TiO2含量为60%,B2O3负载量为20%,催化剂经350 ℃焙烧时,环己酮肟的气相Beckmann重排反应的转化率和选择性很高. 用BET,NH3-TPD,XRD和IR等方法对催化剂的织构、表面酸性和晶相等进行了表征,并与催化剂的活性进行了关联,表明催化剂表面中等强度的酸中心浓度与催化剂的选择性具有对应关系.  相似文献   

9.
将可溶性Ru纳米粒子用于催化苯选择性加氢制备环己烯反应,考察了还原方法对Ru纳米粒子催化活性的影响;并以醇水还原法制备的Ru纳米粒子为催化剂,考察了温度和压力对反应性能的影响.当使用脱硫的苯作为原料时,苯转化率可达30.2%,环己烯选择性达到46.9%.以无水兰尼镍作催化剂,100oC时,环氧环己烷加氢转化率为100%,环己醇选择性为93.2%.从原料苯出发制得环己醇的单程收率可达14%,由此找到一条制备环己醇的新途径.  相似文献   

10.
Ni(Co)-W-B非晶态催化剂的制备和加氢脱氧性能研究   总被引:1,自引:0,他引:1  
采用化学还原法制备出非晶态催化剂Ni-W-B和Co-W-B,用BET、XRD和XPS对催化剂进行表征分析,以对甲基苯酚为模型化合物研究了两种催化剂的加氢脱氧性能。结果表明,所制备的两种催化剂均为非晶态结构,两种催化剂在对甲基苯酚的加氢脱氧反应中都显示出较好的脱氧活性。在相对低温523 K下,Ni-W-B催化剂显示较高的加氢活性,转化率达到100.0%,对甲基环己醇的选择性为55.1%,脱氧选择性只有44.1%,而Co-W-B催化剂显示出较高的脱氧活性,脱氧选择性达到93.1%,这主要是由于催化剂的表面不同价态元素组成含量引起的。在573 K和4.0 MPa下,催化对甲基苯酚的加氢脱氧反应的转化率和脱氧选择性都能达到100%。  相似文献   

11.
Pd/TiN nanocomposite catalysts were fabricated for one-step selective hydrogenation of phenol to cyclohexanone successfully. High conversion of phenol (99%) and selectivity of cyclohexanone (98%) were obtained at 30℃ and 0.2 MPa H2 for 12 h in the mixed solvents of H2O and CH2Cl2. The Pd nanoparticles were stable in the reaction, and no aggregation was detected after four successive runs. The catalytic activity and selectivity depended on slightly the Pd particle sizes. The generality of the catalysts for this reaction was demonstrated by the selective hydrogenation of phenol derivatives, which showed that the catalyst was selective for the formation of cyclohexanone.  相似文献   

12.
Pd-Ce-B/水滑石催化液相苯酚选择性加氢制环己酮   总被引:1,自引:0,他引:1  
刘建良  李辉  李和兴 《催化学报》2007,28(4):312-316
以Al3 /(Al3 Mg2 )摩尔比为0.2的水滑石(HT)为载体,采用还原浸渍法制备了负载型Pd-Ce-B/HT催化剂,并将其应用于液相苯酚选择性加氢制环己酮.与Pd-Ce-B/Al2O3,Pd-Ce-B/MgO和Pd-Ce-B/SiO2相比,Pd-Ce-B/HT催化剂具有高活性和高环己酮选择性.5.8%Pd-Ce-B/HT上苯酚的转化率和环己酮的选择性分别达82.0%和80.3%,显示了其潜在的工业化应用前景.根据多种表征结果,初步讨论了催化剂的构效关系以及添加剂Ce3 和载体酸碱性对催化性能的促进作用.  相似文献   

13.
Highly selective one-step hydrogenation of phenol to cyclohexanone, an important intermediate in the production of nylon 6 and nylon 66, is desirable but remains a challenge. Pd nanoparticles supported on nitrogen- and oxygen-functionalized carbon nanotubes (NCNTs, OCNTs) were prepared, characterized, and applied in the hydrogenation of phenol to cyclohexanone to study the effect of N-doping. Almost full conversion of phenol with high selectivity to cyclohexanone was achieved over Pd/NCNT under mild reaction conditions using either H2 or formic acid (FA) as a hydrogen source. The effects of reaction temperature and FA/phenol ratio and the reusability were investigated. Separate FA decomposition experiments without and with the addition of phenol were performed to investigate the reaction mechanism, especially the deactivation behavior. Deactivation was observed for both catalysts during the FA decomposition, while only Pd/OCNT rather than Pd/NCNT was deactivated in the transfer hydrogenation with FA and the FA decomposition in the presence of phenol, indicating the unique role of N-doping. Therefore, we assume that deactivation is caused by the strongly bound formates on the active Pd sites, suppressing further FA decomposition and/or transfer hydrogenation on Pd. The nonplanar adsorption of phenol on NCNTs via weak O−H⋅⋅⋅N interactions enables the occurrence of the subsequent hydrogenation by adsorbed formate on Pd.  相似文献   

14.
Addition of O(2) enables the liquid-phase hydrogenation of phenol using H(2) at low temperatures under atmospheric pressure with an unexpected selectivity towards 2-cyclohexene-1-one rather than cyclohexanone. As a catalyst, as-synthesized Pd/MCM-41 including the residual templates within the mesoporous channels exhibits a prominent positive effect on the catalytic performance.  相似文献   

15.
Cyclohexanone is an important intermediate in the manufacture of polyamides in chemical industry, but direct selective hydrogenation of phenol to cyclohexanone under mild conditions is a challenge. We report here a catalyst made of Pd nanoparticles supported on a mesoporous graphitic carbon nitride, Pd@mpg-C(3)N(4), which was shown to be highly active and promoted the selective formation of cyclohexanone under atmospheric pressure of hydrogen in aqueous media without additives. Conversion of 99% and a selectivity higher than 99% were achieved within 2 h at 65 °C. The reaction can be accelerated at higher temperature, but even at room temperature, 99% conversion and 96% selectivity could still be obtained. The generality of the Pd@mpg-C(3)N(4) catalyst for this reaction was demonstrated by selective hydrogenation of other hydroxylated aromatic compounds with similar performance.  相似文献   

16.
The catalytic action of 10% w/w Pd supported on two forms of graphitic carbon nanofibers (GCN) has been assessed and compared with the performance of 10% w/w Pd on SiO(2), Ta(2)O(5), activated carbon (AC), and graphite. Palladium nitrate served as metal precursor in each case but the role of the starting metal salt was also considered by examining the action of palladium acetate impregnated SiO(2). The activated catalysts have been characterized by hydrogen chemisorption, high-resolution transmission electron microscopy, and scanning electron microscopy. Phenol hydrogenation served as the test reaction, which proceeds in a stepwise fashion involving the partially hydrogenated cyclohexanone as a reactive intermediate. The occurrence and ramifications of Pd/support interaction(s) are related to hydrogenation activity and selectivity. The effects of contact time and reaction temperature (398-448 K) are reported and discussed in terms of phenol/catalyst interaction(s). Hydrogenation kinetics have been adequately represented by a standard pseudo-first-order approximation. The specific activities exhibited the following sequence of increasing values: Pd/AC相似文献   

17.
A series of Pd–Ag mixed‐metal nanocatalysts were prepared by reduction of Pd–Ag salts in the presence of poly(propylene imine) dendrimers, which were covalently bound to the surface of a silica polyamine composite, BP‐1 (polyallylamine covalently bound to a silanized amorphous silica gel). Three different Pd‐to‐Ag ratios were evaluated (50:50, catalyst 1 ; 40:60, catalyst 2 ; 60:40, catalyst 3 ) with the goal of determining how the amount of Ag effects selectivity, rate and conversion in the selective reduction of alkynes, such as phenylacetylene and 1‐ or 4‐octyne, to the corresponding alkenes. Conditions for the catalysis are reported where there is improved selectivity without a serious reduction in rate when compared with the analogous Pd‐only catalysts. Catalyst 2 worked best for phenylacetylene and catalyst 3 worked best for the octynes. The catalysts could be reused seven times without loss of activity. Copyright © 2015 John Wiley & Sons, Ltd.  相似文献   

18.
The gas phase hydrogenation (523-573 K) of phenol has been studied over 1 wt.% Pd/Al2O3 and 1 wt.% Ni/SiO2 catalysts doped with Group I and II promoter oxides. A direct correlation between catalytic activity and the charge transfer capacity of the promoters is presented where hydrogenation is favored by increasing electron donation from the promoter. The Pd catalysts generated cyclohexanone (selectivity > 97%) as the predominant product; selectivity was unaffected by the presence of the alkali or alkaline earth dopants. The Ni system exhibited appreciable hydrogenolysis behavior and charge transfer from the dopants limited the degree of hydrodeoxygenation to favor complete hydrogenation to cyclohexanol.  相似文献   

19.
A systematic study on the selective semihydrogenation of alkynes to alkenes on shape‐controlled palladium (Pd) nanocrystals was performed. Pd nanocrystals with a cubic shape and thus exposed {100} facets were synthesized in an aqueous solution through the reduction of Na2PdCl4 with L ‐ascorbic acid in the presence of bromide ions. The Pd nanocubes were tested as catalysts for the semihydrogenation of various alkynes such as 5‐decyne, 2‐butyne‐1,4‐diol, and phenylacetylene. For all substrates, the Pd nanocubes exhibited higher alkene selectivity (>90 %) than a commercial Pd/C catalyst (75–90 %), which was attributed to a large adsorption energy of the carbon–carbon triple bond on the {100} facets of the Pd nanocubes. Our approach based on the shape control of Pd nanocrystals offers a simple and effective route to the development of a highly selective catalyst for alkyne semihydrogenation.  相似文献   

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