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1.
用阶跃过渡应答技术研究了乙烷氧化脱氢反应的反应物C2H6,O2,产物C2H4和主要副产物CO2在MoO3-V2O5/Al2O3催化剂上的吸附行为。结果表明:C2H6和C2H4在该催化剂上不吸附;氧为慢吸附、不可逆吸附;CO2为可逆吸附,吸附量较小。并发现在无氧的条件下,乙烷能与催化剂表面上的晶格氧反应生成乙烯。这些结果对乙烷氧化脱氢反应机理的探讨有重要意义。  相似文献   

2.
通过一系列应答实验,证实了氧在MoO3-V2O5/Al2O3催化剂上的吸附和吸附态氧转变为晶格氧的过程是慢过程,是乙烷氧化脱氢反应的速度控制步骤;乙烯的深度氧化是乙烯与催化剂表面上吸附态氧作用的结果,而不是与催化剂上晶格氧作用的结果。结合第Ⅰ部分的实验结果,提出了乙烷氧化脱氢制乙烯反应的机理,并用Treanor法和DFP法求取了各基元步骤的速率常数、活化能和指前因子等动力学参数。用计算所得的结果进  相似文献   

3.
研究了MgO、Al2O3、SiO2催化剂对湿天然气中乙烷氧化脱氢反应的影响,发现MgO对乙烷脱氢有较好的活性,700C时,C2H4选择性达41.85%,收率达18.75%。考察了催化剂酸碱性对反应的影响,适当碱性的催化剂有利于反应的进行,催化剂活性顺序与碱性大小顺序相一致为MgO>Al2O3>SiO2。催化剂活性顺序与其晶格氧流动性有顺应关系。  相似文献   

4.
空石英管中乙烷氧化脱氢制乙烯   总被引:2,自引:0,他引:2  
张新杰  庄伟 《分子催化》1999,13(3):223-225
使用空石英反应管,对乙烷氧化脱氢制乙然反应进行了研究。在633℃,可得到乙烷转化率79%,乙烯选择性66%,乙烯单程收率为52%,此结果比已知文献报道的使用催化剂的结果毫不逊色。采用空石英反应管的反应特点是在较低的乙烷转化率时,可以得到很高的乙烯选择性,其主要反应副产物为CO。  相似文献   

5.
董雁春 《化学通报》2024,87(2):226-234
在碳中和及全球能源供需版图调整的背景下,乙烯生产原料轻质化成为主流趋势。乙烷脱氢制乙烯技术具有低能耗、低碳排、流程短、收率高、成本低等优势,但目前工业上主要通过乙烷蒸汽裂解法生产乙烯,其他方法工业化生产相对不成熟。本文简述了近年来乙烷脱氢制乙烯技术(包括直接催化脱氢、O2辅助氧化脱氢、CO2辅助氧化脱氢、化学链氧化脱氢、催化膜反应器脱氢等)工艺及催化剂的研究现状,同时介绍了其他新兴工艺及催化剂。乙烷脱氢制乙烯技术现阶段面临的挑战不仅在于开发更高效的催化剂及更低能耗的技术,更需要突破乙烷脱氢热力学平衡的限制设计合适的反应路径,其中催化膜反应器脱氢、化学链氧化脱氢工艺都具有非常广阔的市场和工业化发展前景。  相似文献   

6.
氧化镍中非化学计量氧在乙烷氧化脱氢中的作用   总被引:12,自引:2,他引:12  
以纯NiO为模型催化剂考察了乙烷氧化脱氢(ODHE)性能,发现非化学计量氧的存在与反应的活性及选择性密切相关.TGA研究结果表明,500℃制备的样品具有x≈6%的非化学计量氧.H2TPR结果表明,非化学计量氧与晶格氧的可还原性明显不同;O2TPDMS又把非化学计量氧区分为两个氧物种,O-2和O-(或O2-2).脉冲试验结果表明,非化学计量氧对ODHE制乙烯是选择性反应的活性氧物种,晶格氧是完全氧化反应的活性氧物种.一旦催化剂中非化学计量氧耗尽并动用晶格氧时,催化剂便有Ni0生成,表现出自催化性能,使反应活性迅速提高,但产物均为CO2,CO,CH4等完全燃烧或裂解产物.为保持有较高的乙烯收率,反应处于稳态时Ni必须处于高价态.电导测定结果表明,优良的ODHE催化剂应有P型半导性.  相似文献   

7.
掺杂钛酸盐对乙烷氧化脱氢催化性能的研究   总被引:2,自引:0,他引:2  
在700 ̄850℃范围内研究了掺杂CaTiO3、SrTiO3催化剂用于乙烷氧化脱氢(ODHE)的催化行为,发现这类催化剂对ODHE均有一定的催化活性。适量的Li^+取代Ti^4+后不仅提高了催化活性,而且改善了催化剂对乙烯的选择性。催化剂CaTi0.9Li0.1O3-δ在850℃时乙烷转化率和乙烯选择性分别为87.8%和71.7%。Sr对Ca部分取代后制得的催化剂可在极宽的温度范围内(700 ̄85  相似文献   

8.
乙烯是最为重要的化工原料之一,目前其工业来源主要来自于烃类的水蒸汽裂解过程.该过程本质上是一个高温均相裂解过程,温度(>800?℃)高,能耗大,碳排放严重.乙烷氧化脱氢制乙烯属于放热反应,反应温度低,速率快,无积碳等限制,是一条更富有竞争力的工艺路线.然而,常用的金属或金属氧化物催化剂容易导致乙烯深度氧化,从而降低了乙烯选择性.纳米碳材料在烃类氧化脱氢反应中展现出一定的催化活性,但容易被氧化,难以用于反应温度高的乙烷氧化脱氢反应.本文报道了羟基化的氮化硼(BNOH)可高效催化乙烷氧化脱氢制乙烯.氮化硼边沿羟基官能团脱氢生成了动态活性位,从而引发了乙烷的脱氢反应.BNOH对乙烷氧化脱氢制乙烯显示出高选择性.当乙烷转化率在11%,乙烯选择性可高达95%;当乙烷转化率增加到40%,乙烯选择性保持在90%.重要的是,当乙烷转化率超过60%时,BNOH仍然可保持80%的乙烯选择性以及50%的乙烯收率.这些性能指标与现有工业乙烷水蒸气裂解过程运行性能相当.进一步优化反应条件,BNOH催化剂能够实现高达9.1 gC2H4 gcat-1 h-1的时空收率.经过200 h的氧化脱氢反应测试,BNOH催化剂活性和选择性基本恒定,表明其具有非常好的稳定性.X射线粉末衍射结果显示,反应前后BNOH催化剂的物相没有发生变化.透射电子显微镜测试证实,反应后BNOH催化剂的形貌和微观结构也没有明显改变.X射线光电子能谱结果显示,反应200 h后BNOH催化剂表面的氧含量仅从反应前的6.9 atom%微增到8.3 atom%.1H固体核磁共振谱测试显示,反应200 h后,BNOH催化剂上羟基含量无明显改变.结合原位透射红外光谱和同位素示踪实验,初步确定了BNOH催化剂上引发乙烷氧化脱氢反应的活性中心.氮化硼边沿的氧官能团并不能引发乙烷的氧化脱氢反应,而羟基官能团才是氧化脱氢反应发生的活性位.在乙烷氧化脱氢条件下,分子氧脱除羟基官能团上的氢原子动态生成BNO·?和HO2·?活性位.密度泛函理论计算表明,乙烷首先在BNO·?或HO2·?位活化生成乙基自由基,这些中间物进一步与气相氧物种发生反应脱氢生成乙烯.动力学测试结果也验证了上述实验和理论结果.  相似文献   

9.
乙烯是最为重要的化工原料之一,目前其工业来源主要来自于烃类的水蒸汽裂解过程.该过程本质上是一个高温均相裂解过程,温度(800℃)高,能耗大,碳排放严重.乙烷氧化脱氢制乙烯属于放热反应,反应温度低,速率快,无积碳等限制,是一条更富有竞争力的工艺路线.然而,常用的金属或金属氧化物催化剂容易导致乙烯深度氧化,从而降低了乙烯选择性.纳米碳材料在烃类氧化脱氢反应中展现出一定的催化活性,但容易被氧化,难以用于反应温度高的乙烷氧化脱氢反应.本文报道了羟基化的氮化硼(BNOH)可高效催化乙烷氧化脱氢制乙烯.氮化硼边沿羟基官能团脱氢生成了动态活性位,从而引发了乙烷的脱氢反应.BNOH对乙烷氧化脱氢制乙烯显示出高选择性.当乙烷转化率在11%,乙烯选择性可高达95%;当乙烷转化率增加到40%,乙烯选择性保持在90%.重要的是,当乙烷转化率超过60%时,BNOH仍然可保持80%的乙烯选择性以及50%的乙烯收率.这些性能指标与现有工业乙烷水蒸气裂解过程运行性能相当.进一步优化反应条件,BNOH催化剂能够实现高达9.1g_(C2H4)g_(cat)~(-1)h~(-1)的时空收率.经过200 h的氧化脱氢反应测试,BNOH催化剂活性和选择性基本恒定,表明其具有非常好的稳定性.X射线粉末衍射结果显示,反应前后BNOH催化剂的物相没有发生变化.透射电子显微镜测试证实,反应后BNOH催化剂的形貌和微观结构也没有明显改变.X射线光电子能谱结果显示,反应200 h后BNOH催化剂表面的氧含量仅从反应前的6.9 atom%微增到8.3 atom%.~1H固体核磁共振谱测试显示,反应200 h后,BNOH催化剂上羟基含量无明显改变.结合原位透射红外光谱和同位素示踪实验,初步确定了BNOH催化剂上引发乙烷氧化脱氢反应的活性中心.氮化硼边沿的氧官能团并不能引发乙烷的氧化脱氢反应,而羟基官能团才是氧化脱氢反应发生的活性位.在乙烷氧化脱氢条件下,分子氧脱除羟基官能团上的氢原子动态生成BNO~·和HO_2~·活性位.密度泛函理论计算表明,乙烷首先在BNO~·或HO_2~·位活化生成乙基自由基,这些中间物进一步与气相氧物种发生反应脱氢生成乙烯.动力学测试结果也验证了上述实验和理论结果.  相似文献   

10.
用Li+部分替代MTiO3(M=Ca、Sr)催化剂中的Ti4+,明显地提高了乙烷氧化脱氢(ODHE)反应中乙烯的选择性。在CaTi0.9Li0.1O3-δ催化剂上,反应温度为850℃时,乙烯选择性为77.4%,乙烷转化率为81.7%。Li掺杂的作用是增加了催化剂的P型半导性和未充分还原的氧物种数目。  相似文献   

11.
C(60)H(36) was prepared by the Benkeser reaction with a much milder procedure. Thermal dehydrogenation of C(60)H(36) with IrCl(CO)(PPh(3))(2), Pd/C, and Ni-Al alloy and photochemical catalytic dehydrogenation with RhCl(CO)(PPh(3))(2) were studied. Pd/C catalyst was more effective for the thermal decomposition of C(60)H(36) till now.  相似文献   

12.
Pd/MoO3-TiO2/SiO2光催化CO2与C2H6合成烃类氧化物的反应性能   总被引:2,自引:0,他引:2  
王希涛  钟顺和  肖秀芬 《催化学报》2005,26(10):900-904
 采用化学反应改性和等体积浸渍法制备了负载型Pd/MoO3-TiO2/SiO2催化剂,并用IR,FT-Raman,TPD-MS,UV-Vis DRS和活性评价等方法研究了催化剂的表面结构、光吸收性能、化学吸附性能及光催化CO2与C2H6合成烃类氧化物的反应性能. 结果表明,SiO2负载的MoO3和TiO2之间存在着强相互作用,并能部分形成Mo-O-Ti键联,使得两种氧化物微粒均匀分布于载体表面; 表面MoO3和TiO2的复合作用使TiO2/SiO2的吸光带边红移,扩展了其吸光域,Pd的引入明显提高了固体材料的可见光吸收率; CO2和C2H6能较好地吸附在催化剂表面,在紫外光的激发下,CO2吸附态能解离生成CO,而C2H6单位吸附态能部分转化为C和H同时吸附在两个晶格氧上的双位吸附态; 光促CO2和C2H6反应主要生成丙醛、乙醇和乙醛; 在合适的条件下,烃类氧化物的选择性可超过90%.  相似文献   

13.
The activity and the selectivity to light alkenes of silicalite-2 (Si-2) zeolite supported F'e catalyst tor CO hydrogenation can he improved obviously with the addition of K2O and MnO promoters. The results of CO hydrogenation, CO-TPD, CO/H2-TPSR, C2H4/H2-TPSR and C2H4/H2 pulse reaction over K-Fe-MnO/Si-2 catalysts clearly show that the K2O additive into Fe-MnO/Si-2 catalyst leads to a remarkable increase in both the capacity and strength of the strong CO ad-species that will produce much more |Cad| via their disproportionation at higher temperatures. This results in an increase in the CO conversion and the selectivity to light olefins, and a decrease in CH4 formation. Moreover, K2O can suppress the disproportionate of C2H4 that occurs during the reaction as a side-reaction Meanwhile, the MnO promoter mainly prohibits the hydrogenation of C2H4 and C3H6, which is favorable to enhancing the selectivity to C2H4 and C3H6 and decreasing the formation of C2H6, and C3H8. It is also of interest that MnO has har  相似文献   

14.
1INTRODUCTIONOctacarbonyldicobaltisaveryconvenientstartingmaterialforthepreparationofalmostanycobaltcompound〔1〕.Thereactionso...  相似文献   

15.
The oxidative dehydrogenation (ODH) of isobutane over Cr2O3/La2(CO3)3 has been investi- gated in a low-pressure Knudsen cell reactor, under conditions where the kinetics of the primary reaction steps can be accurately determined. By heating the catalyst at a constant rate from 150-300oC, temper- ature uctuations due to non-equilibrium adsorption are minimized. The evolved gas profiles show that ODH to isobutene and water is a primary reaction pathway, while carbon dioxide, which forms from the catalyst during reaction, is the only other product. This CO2 evolution may enhance the activity of the catalyst. Isobutene formation proceeds with the participation of lattice oxygen from the Cr2O3/La2(CO3)3 catalyst. The small pre-exponential factor is expected for a concerted mechanism and for such a catalyst with a small surface area and limited porosity.  相似文献   

16.
The self-organized (2log3 x 2log3) coadsorbed phases of C(6)H(6) with O and with CO are investigated within first-principles density functional theory. The main driving force for formation of the C(6)H(6)/2O phase is found to be the reduction of O adatom repulsive interactions, while for the C(6)H(6)/2CO phase it is the interspecies attractive interactions and benzene-benzene repulsive interactions which are most important.  相似文献   

17.
The kinetics and H atom channel yield at both 298 and 195 K have been determined for reactions of CN radicals with C2H2 (1.00+/-0.21, 0.97+/-0.20), C2H4 (0.96+/-0.032, 1.04+/-0.042), C3H6 (pressure dependent), iso-C4H8 (pressure dependent), and trans-2-C4H8 (0.039+/-0.019, 0.029+/-0.047) where the first figure in each bracket is the H atom yield at 298 K and the second is that at 195 K. The kinetics of all reactions were studied by monitoring both CN decay and H atom growth by laser-induced fluorescence at 357.7 and 121.6 nm, respectively. The results are in good agreement with previous studies where available. The rate coefficients for the reaction of CN with trans-2-butene and iso-butene have been measured at 298 and 195 K for the first time, and the rate coefficients are as follows: k298K=(2.93+/-0.23)x10(-10) cm3 molecule(-1) s(-1), k195K=(3.58+/-0.43)x10(-10) cm3 molecule(-1) s(-1) and k298K=(3.17+/-0.10)x10(-10) cm3 molecule(-1) s(-1), k195K=(4.32+/-0.35)x10(-10) cm3 molecule(-1) s(-1), respectively, where the errors represent a combination of statistical uncertainty (2sigma) and an estimate of possible systematic errors. A potential energy surface for the CN+C3H6 reaction has been constructed using G3X//UB3LYP electronic structure calculations identifying a number of reaction channels leading to either H, CH3, or HCN elimination following the formation of initial addition complexes. Results from the potential energy surface calculations have been used to run master equation calculations with the ratio of primary:secondary addition, the average amount of downward energy transferred in a collision DeltaEd, and the difference in barrier heights between H atom elimination and an H atom 1, 2 migration as variable parameters. Excellent agreement is obtained with the experimental 298 K H atom yields with the following parameter values: secondary addition complex formation equal to 80%, DeltaEd=145 cm(-1), and the barrier height for H atom elimination set 5 kJ mol(-1) lower than the barrier for migration. Finally, very low temperature master equation simulations using the best fit parameters have been carried out in an increased precision environment utilizing quad-double and double-double arithmetic to predict H and CH3 yields for the CN+C3H6 reaction at temperatures and pressures relevant to Titan. The H and CH3 yields predicted by the master equation have been parametrized in a simple equation for use in modeling.  相似文献   

18.
Ni/Si2催化剂具有较好的低碳烷烃与二氧化碳重整制合成气的反应性能,添加La2O3助剂和K2O助剂可提高催化剂活性和合成气收率,从而进一步改善催化剂的低碳烷烃与CO2重整制合成气的反应性能,研制的KLaNi/Si2催化剂,用于天然气与CO2重整反应制合成气可达97%的低碳烷烃转化率和95%以上的合成气收率。  相似文献   

19.
IntroductionItilasbeenshot'-nthattileadditionofMnOpromotertoFocatal}stcanresultinaremarkableimprovementinthesclectivit}'to11ghtalkenesforCOh}!drogenationll'l.Ho-c'cvcr.thecadetofMnOonCH4formationandCOconversionisvery'ambigUouslltolMoreover.MnOpromotergrca…  相似文献   

20.
C6H5SO2 radicals were produced upon irradiation of three flowing mixtures: C6H5SO2Cl in N2, C6H5Cl and SO2 in CO2, and C6H5Br and SO2 in CO2, with a KrF excimer laser at 248 nm. A step-scan Fourier-transform spectrometer coupled with a multipass absorption cell was employed to record the time-resolved infrared (IR) absorption spectra of reaction intermediates. Two transient bands with origins at 1087.7 and 1278.2 cm-1 are assigned to the SO2-symmetric and SO2-antisymmetric stretching modes, respectively, of C6H5SO2. Calculations with density-functional theory (B3LYP/aug-cc-pVTZ and B3P86/aug-cc-pVTZ) predict the geometry and vibrational wave numbers of C6H5SO2 and C6H5OSO. The vibrational wave numbers and IR intensities of C6H5SO2 agree satisfactorily with the observed new features. Rotational contours of IR spectra of C6H5SO2 simulated based on predicted molecular parameters agree satisfactorily with experimental results for both bands. The SO2-symmetric stretching band is dominated by a- and c-type rotational structures and the SO2-antisymmetric stretching band is dominated by a b-type rotational structure. When C6H5SO2Cl was used as a precursor of C6H5SO2, C6H5SO2Cl was slowly reproduced at the expense of C6H5SO2, indicating that the reaction Cl+C6H5SO2 takes place. When C6H5Br/SO2/CO2 was used as a precursor of C6H5SO2, features at 1186 and 1396 cm-1 ascribable to C6H5SO2Br were observed at a later period due to secondary reaction of C6H5SO2 with Br. Corresponding kinetics based on temporal profiles of observed IR absorption are discussed.  相似文献   

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