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991.
The effects of Manganese(Mn)incorporation on a precipitated iron-based Fischer-Tropsch synthesis(FTS)catalyst were investigated using N_2 physical adsorption,air differential thermal analysis (DTA),H_2 temperature-programmed reduction(TPR),and M(?)ssbauer spectroscopy.The FTS perfor- mances of the catalysts were tested in a slurry phase reactor.The characterization results indicated that Mn increased the surface area of the catalyst,and improved the dispersion ofα-Fe_2O_3 and reduced its crystallite size as a result of the high dispersion effect of Mn and the Fe-Mn interaction.The Fe-Mn inter- action also suppressed the reduction ofα-Fe_2O_3 to Fe_3O_4,stabilized the FeO phase,and(or)decreased the carburization degree of the catalysts in the H_2 and syngas reduction processes.In addition,incorporated Mn decreased the initial catalyst activity,but improved the catalyst stability because Mn restrained the reoxidation of iron carbides to Fe_3O_4,and improved further carburization of the catalysts.Manganese suppressed the formation of CH_4 and increased the selectivity to light olefins(C_(2-4)~=),but it had little effect on the selectivities to heavy(C_(5 )) hydrocarbons.All these results indicated that the strong Fe-Mn interaction suppressed the chemisorptive effect of the Mn as an electronic promoter,to some extent,in the precipitated iron-manganese catalyst system.  相似文献   
992.
K助化Co—Mo/Al2O3催化剂的表征   总被引:1,自引:0,他引:1  
  相似文献   
993.
Using renewable green hydrogen and carbon dioxide (CO2) to produce methanol is one of the fundamental ways to reduce CO2 emissions in the future, and research and development related to catalysts for efficient and stable methanol synthesis is one of the key factors in determining the entire synthesis process. Metal nanoparticles stabilized on a support are frequently employed to catalyze the methanol synthesis reaction. Metal-support interactions (MSIs) in these supported catalysts can play a significant role in catalysis. Tuning the MSI is an effective strategy to modulate the activity, selectivity, and stability of heterogeneous catalysts. Numerous studies have been conducted on this topic; however, a systematic understanding of the role of various strengths of MSI is lacking. Herein, three Cu/ZnO-SiO2 catalysts with different strengths of MSI, namely, normal precipitation Cu/ZnO-SiO2 (Nor-CZS), co-precipitation Cu/ZnO-SiO2 (Co-CZS), and reverse precipitation Cu/ZnO-SiO2 (Re-CZS), were successfully prepared to determine the role of such interactions in the hydrogenation of CO2 to methanol. The results of temperature-programmed reduction (H2-TPR) and X-ray photoelectron spectroscopy (XPS) characterization illustrated that the MSI of the catalysts was considerably affected by the precipitation sequence. Fourier transform infrared reflection spectroscopy (FT-IR) results indicated that the Cu species existed as CuO in all cases and that copper phyllosilicate was absent (except for strong Cu-SiO2 interaction). Transmission electron microscopy (TEM), X-ray diffraction (XRD), and N2O chemical titration results revealed that strong interactions between the Cu and Zn species would promote the dispersion of Cu species, thereby leading to a higher CO2 conversion rate and improved catalytic stability. As expected, the Re-CZS catalyst exhibited the highest activity with 12.4% CO2 conversion, followed by the Co-CZS catalyst (12.1%), and the Nor-CZS catalyst (9.8%). After the same reaction time, the normalized CO2 conversion of the three catalysts decreased in the following order: Re-CZS (75%) > Co-CZS (70%) > Nor-CZS (65%). Notably, the methanol selectivity of the Re-CZS catalyst was found to level off after a prolonged period, in contrast to that of Co-CZS and Nor-CZS. Investigation of the structural evolution of the catalyst with time on stream revealed that the high methanol selectivity of the catalyst was caused by the reconstruction of the catalyst, which was induced by the strong MSI between the Cu and Zn species, and the migration of ZnO onto Cu species, which caused an enlargement of the Cu/ZnO interface. This work offers an alternative strategy for the rational and optimized design of efficient catalysts.  相似文献   
994.
 通过浸渍法制备了不同Cu/Zn比的γ-Al2O3和改性γ-Al2O3负载的Cu-Zn催化剂,并用XRD,XPS和SEM等手段对催化剂进行了表征.XRD表征结果表明,还原活化前催化剂中的Cu和Zn分别以CuO和ZnO的形式存在;还原活化后Cu以单质的形式存在;催化剂失活后,单质Cu又转变成CuO.XPS和SEM分析结果表明,催化剂中金属的价态及颗粒的形貌在反应前后发生了变化.所制备的催化剂在糠醛加氢制糠醇反应中表现出较高的选择性.用Co改性的γ-Al2O3负载的Cu-Zn催化剂不仅具有较高的催化活性和选择性,而且还呈现出较长的寿命.催化剂中的Cu晶相是催化活性中心;催化剂中的Cu晶相转变成CuO和烧结是催化剂失活 的主要原因.  相似文献   
995.
考察了反应温度、气体空速和进料中CH4:O2比值对Mo2C/Al2O3催化的POM反应制合成气的影响.结果发现较高的温度具有较高的甲烷转化率、CO和H2的选择性;而在较低的温度下,对CO的选择性比对H2的影响更大.反应气体的空速较小时对于甲烷的转化率、CO和H2的选择性是有利的;而在较高的气体空速下,氢气的选择性则更低.进料中CH4:O2比值稍高于2:1时有利于获得高的甲烷转化率、CO和H2的选择性.并且还可以增加催化剂的稳定性.当CH4:O2比值低于2:1时.甲烷转化率、CO和H2选择性随反应的进行急剧下降.而当此比值调整到高于2:1时.转化率和选择件都可以得到恢复。  相似文献   
996.
Pt/Au双金属纳米粒子的制备及表征   总被引:6,自引:1,他引:6  
Poly (N-vinyl-2-pyrrolidone)-protected Pt/Au bimetallic nanoparticles were obtained by reducing the mixture of HAuCl4 and H2PtCl6 with sodium borohydride. UV-vis spectra, transmission electronic microscopy and X-my diffraction reveal that the prepared bimetallic nanoparticles are of alloy structure.  相似文献   
997.
取代茚基稀土配合物/添加剂体系催化丙烯腈聚合   总被引:7,自引:1,他引:7  
研究了取代茚基稀土配合物 /添加剂体系对丙烯腈的聚合 ,发现季胺盐及芳氧钠是取代茚基二价稀土配合物催化丙烯腈聚合的有效添加剂 ,其中Me3NC1 6 H33Br效果最好 ,5种二价稀土配合物 (C5H9C9H6 ) 2 Yb (THF) 2 ,(C5H9C9H6 ) 2 Sm (THF) 2 ,KSm (C5H9C9H6 ) 3(THF) 3,(PhCH2 C9H6 ) 2 Sm(THF) 2 和 (CH3CH2 C9H6 ) 2 Sm (THF) 2 与Me3NC1 6 H33Br构成的催化体系对于丙烯腈聚合都显示出好的催化活性。对(C5H9C9H6 ) 2 Yb(THF) 2 /Me3NC1 6 H33Br体系而言 ,在丙烯腈中当催化剂用量为 2× 10 - 5mol·g - 1时 ,丙烯腈聚合的最大转化率为 61%。  相似文献   
998.
报导了聚-γ-N-(β-丁硫基乙基)胺丙基硅氧烷和氯化钯的反应,得到固载在二氧化硅上的聚-γ-N-(β-丁硫基乙基)胺丙基硅氧烷钯络合物,并用XPS研究其结构.选用硝基苯、烯丙基环氧丙基醚、烯丙基苯基醚、丙烯腈、烯丙基苯、苯乙烯、环己烯及丁烯等8种底物进行催化加氢,以评价其催化活性.结果表明,该催化剂催化效果良好,并且有很好的稳定性.  相似文献   
999.
1000.
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   
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