催化学报  2015, Vol. 36 Issue (8): 1242-1248   PDF (25010 KB)    
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本文作者相关文章
程彦虎
张帆
张翼
缪长喜
华伟明
乐英红
高滋
Oxidative dehydrogenation of ethane with CO2 over Cr supported on submicron ZSM-5 zeolite
Yanhu Chenga, Fan Zhanga, Yi Zhanga, Changxi Miaob, Weiming Huaa, Yinghong Yuea , Zi Gaoa    
a Department of Chemistry and Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Fudan University, Shanghai 200433, China;
b Shanghai Research Institute of Petrochemical Technology, SINOPEC, Shanghai 201208, China
Abstract: A series of submicron ZSM-5-supported chromium oxide catalysts were prepared and characterized by XRD, N2 adsorption, 27Al MAS NMR, SEM, XPS, laser Raman spectroscopy and diffuse reflectance UV-Vis spectroscopy. The catalytic performance of these materials during ethane dehydrogenation in the presence of CO2 was investigated. The catalysts exhibited both high activity and stability, with an ethane conversion of ~65% and ethylene yield of ~49% without any obvious deactivation following 50 h. Characterization results show that the excellent catalytic performance results from the high degree of dispersion of CrOx species on the submicron ZSM-5 surface. Both a high Si/Al ratio and the use of the Na-form of the ZSM-5 support were found to favor CrOx dispersion. The promotional effect of CO2 on the dehydrogenation reaction was quite evident and can be attributed to the reverse water-gas shift reaction.
© 2015, Dalian Institute of Chemical Physics, Chinese Academy of Sciences.
Published by Elsevier B.V. All rights reserved.
Key words: Dehydrogenation     Ethane     ZSM-5 zeolite     Submicron     Carbon dioxide    
亚微米ZSM-5负载Cr催化剂上乙烷CO2气氛下脱氢制乙烯
程彦虎a, 张帆a, 张翼a, 缪长喜b, 华伟明a, 乐英红a , 高滋a    
a 复旦大学化学系上海市分子催化与功能材料重点实验室, 上海200433;
b 中石化上海石油化工研究院, 上海201208
摘要:石油资源的日趋短缺使天然气和页岩气的开发利用受到重视, 因而低碳烷烃脱氢制取低碳烯烃也随之引起了人们越来越多的关注. 由于乙烷纯脱氢反应的平衡收率低, 能耗高, 而氧气氧化脱氢又易将乙烷深度氧化为CO2或CO, 因此开发具有反应条件温和、装置投资和操作费用低等优势的CO2气氛下乙烷脱氢的技术路线日益得到重视. CrOx是该反应理想的催化剂之一, CO2的加入可使CrOx对乙烷脱氢的催化活性提升3倍, 然而受困于CrOx过小的比表面积, 通常将CrOx制备成负载型催化剂使用. CrOx的常见载体有Al2O3, ZrO2和SiO2等氧化物及MCM-41, SBA-15, SBA-1和MSU-x等介孔硅材料, ZSM-5作为载体负载CrOx用于低碳烷烃脱氢的研究则较少, 所得结果也不甚理想. 我们采用亚微米尺寸的ZSM-5作为载体制备了负载型CrOx催化剂, 研究了其在CO2气氛下催化乙烷脱氢反应, 发现该催化剂具有非常优异的脱氢活性, 高硅铝比和Na型的ZSM-5作载体对反应更加有利, 而且在反应进行50 h后, 催化剂依然保持很好的活性和很高的乙烯收率, 这是在一般负载型CrOx催化剂上所不能实现的.
X射线光电子能谱(XPS)表征发现, Na型ZSM-5载体制得的催化剂具有更高的Cr6+/Cr3+比. 一般认为, Cr6+是Cr系催化剂进行低碳烷烃脱氢反应时的活性位(或活性位前驱体), 因此可以初步判定, Na型载体具有很好催化效果的原因可能是由它制得的催化剂具有更多的反应活性位. 程序升温还原(H2-TPR)表征结果证实了这一点, Na型载体明显具有更高的H2消耗量; 也就是说, Na型载体制得的催化剂具有更多的可还原Cr物种, 即脱氢活性位. 进一步表征发现, 反应活性还与Cr物种存在形式有关. 文献报道, 低聚态的Cr物种和孤立态的Cr物种比Cr2O3有更好的催化活性. 通过漫反射紫外-可见光谱(UV-Vis)对Cr物种的存在形态进行表征后发现, Na型载体上Cr主要以四配位形式存在, 而在H型载体上出现了对应于六配位的Cr物种; 激光Raman表征结果表明, Na型载体上出现的都是低聚态Cr物种和孤立态Cr物种, 而H型载体上出现了明显的对应于α-Cr2O3的峰, 说明相较于H型载体, Na型载体更有利于Cr组分分散, 这也是Na型ZSM-5载体催化剂具有更高活性的原因之一.
CO2引入后对乙烷脱氢反应具有明显的促进作用, 特别是在CO2/C2H6 = 5时, 催化剂上C2H6转化率是非CO2气氛下的3.2倍; 同时, CO2的引入也提高了脱氢反应的稳定性. 在非CO2气氛下, 反应进行6 h后, C2H6转化率降低到初活性的60%左右, 而在CO2/C2H6 = 5时, 相同时间内催化剂活性下降仅有5%左右. 实验分析了CO2对脱氢反应具有促进作用的原因. 在脱氢反应温度650 ℃下, CO2/H2 = 1时进行了逆水煤气反应测试, 发现CO2的转化率达到22.5%, 说明引入CO2后可以通过逆水煤气反应有效地消耗掉乙烷脱氢反应生成的H2, 从而促进反应向脱氢方向进行; CO2的引入也可以促进Cr物种的CrOx/CrOx-1循环, 从而提高催化剂效率, 减缓催化剂失活; CO2还可与反应中生成的积碳类物质发生Boudouard反应, 将反应活性位暴露出来, 从而提高催化剂的稳定性. CO2气氛下反应6 h后催化剂的积碳量为3.0%, 低于非CO2气氛下的3.4%, 同时在脱氢反应中生成的CO量与消耗掉的CO2量的比值约为1.4, 也有力地说明Boudouard反应的存在.
关键词脱氢反应     乙烷     ZSM-5分子筛     亚微米     二氧化碳    

1. Introduction

The catalytic conversion of light alkanes such as ethane and propane into the corresponding value-added alkenes has gained much attention over the past several decades because of the growing demand for light alkenes. The dehydrogenation of alkanes is endothermic and is inevitably controlled by the thermodynamic equilibrium, thus relatively high temperatures are required to obtain high yield of alkenes, resulting in high energy consumption and ready deactivation of the catalyst. For this reason, oxidative dehydrogenation using oxygen has been proposed as an alternative process. However, the over- oxidation of alkanes to carbon dioxide is unavoidable during this process, leading to a decrease in the targeted product selectivity. However, it has been reported that these disadvantages can be overcome by replacing O2 with milder oxidants, such as N2O [1, 2, 3, 4] and CO2 [5, 6, 7, 8, 9, 10, 11].

The dehydrogenation of ethane over In [5], Cr [6, 7], Ga [8, 9], Co [10] and Mn [11]-containing catalysts in the presence of CO2 has been studied intensely for some time now. Cr-based catalysts in particular show excellent activity for the dehydrogenation of ethane, and CO2 can markedly promote the reaction, leading to a significant increase in ethylene yield in the presence of CO2 over Cr-based catalysts. Because of the low surface area of bulk crystalline chromium oxides, Cr species are often dispersed on supports with high surface areas, such as Al2O3 [7], SiO2 [7], ZrO2 [12, 13], TS-1 [14], mesoporous silicas like SBA-1 [15], SBA-15 [16], MSU-x [17], MCM-41 [18] and oxidized diamond [19, 20], so as to prepare a catalyst with an abundance of active sites.

ZSM-5 plays a very important role both in industrial processes and in academic studies as either a catalyst or a catalyst support, owing to its three-dimensional microporous structure, high surface area and high thermal and hydrothermal stability. ZSM-5-supported metal oxide catalysts have been investigated with regard to ethane or propane dehydrogenation using CO2, and H-form ZSM-5 with a Si/Al ratio over 1900 has been reported to be preferred as the support [23]. More recently, Cr supported on Na-type ZSM-5 having a smaller crystal size (ca. 400 nm) was found to be more effective when applied to the dehydrogenation of propane in the presence of CO2, although the stability of the catalyst system was still not satisfactory [24].

In our present work, a series of Cr catalysts supported on submicron H- or Na-form ZSM-5 materials having various Si/Al ratios were prepared and characterized by X-ray diffraction (XRD), nitrogen adsorption, laser Raman spectroscopy, X-ray photoelectron spectroscopy (XPS), diffuse reflectance UV-Vis spectroscopy (DRS) and temperature-programmed reduction (TPR). The catalytic performance of each of these submicron ZSM-5-supported Cr-based catalysts during the dehydrogenation of ethane to ethylene in the presence of CO2 was also investigated. The relationship between catalytic behavior and physicochemical properties is discussed herein on the basis of the experimental results.

2. Experimental
2.1. Catalyst preparation

Submicron ZSM-5 zeolite was prepared using procedures previously reported in the literature [23], employing tetrapropylammonium hydroxide (TPAOH, 25% aqueous solution, Yixing Dahua) as the template. Typically, NaAlO2 (CP, Sinopharm Chemical) was dissolved in an aqueous TPAOH solution, after which tetraethylorthosilicate (TEOS, AR, Shanghai Lingfeng) was added. The resulting mixture was stirred for 6 h at room temperature, followed by heating at 50 °C with further stirring to evaporate the ethanol resulting from the reaction. A clear gel was obtained with the molar composition 120SiO2:xAl2O3:48TPAOH:3600H2O. This gel was transferred to an autoclave and crystallized by heating at 170°C for 2 d. The obtained product was centrifuged, washed, dried at 110°C overnight and then calcined in air at 600 °C for 6 h to remove the template.

The supported chromium oxide catalysts were prepared by impregnating ZSM-5 with an aqueous solution of Cr(NO3)3×9H2O (AR, Sinopharm Chemical) using the incipient wetness method. The impregnated samples were dried at 110 °C overnight and calcined in air at 650°C for 6 h. The obtained catalysts are denoted as yCr/ZSM-5-c, where y represents the mass fraction of Cr2O3 in the catalysts, and c represents the Si/Al ratio in gel.

2.2. Catalyst characterization

XRD patterns were acquired with a Persee XD-2 X-ray diffractometer using nickel-filtered Cu Karadiation at 40 kV and 30 mA. The BET surface areas and micropore volumes of the catalysts were determined by N2 adsorption at -196 °C using a Micromeritics ASAP 2000 instrument. Scanning electron microscopy (SEM) images were recorded digitally on a Philips XL 30 microscope operating at 30 kV. Laser Raman spectra were obtained with a Horiba JY XPloRA spectrometer using the 532 nm radiation from an air-cooled solid state laser as the excitation source. The other parameters included a laser power of 25 mW, a data acquisition time of 30 s, an accumulation number of 8 and a spectral resolution of 2 cm-1. The spectra were obtained at room temperature under ambient conditions. DRS spectra were collected on a Shimadzu UV-2450 spectrometer equipped with an integrating sphere attachment. XPS data were acquired using a Perkin-Elmer PHI 5000C spectrometer with Mg Karadiation as the excitation source. All binding energy values were referenced to the C 1s peak at 284.6 eV.

TPR profiles were obtained on a Micromeritics AutoChem II apparatus loaded with 100 mg of catalyst. The TPR experiments were carried out in a 30 mL/min flow of 10% H2-90% Ar with a ramp rate of 10 °C/min. H2 consumption was monitored using a thermal conductivity detector. Thermogravimetric (TG) analysis was performed under an air flow on a Perkin-Elmer 7 Series Thermal Analyzer to determine the amount of coke deposited on the catalyst following the reaction.

2.3. Catalytic testing

Catalytic tests for ethane dehydrogenation with CO2 were performed at 650 °C in a fixed-bed flow microreactor at atmospheric pressure. The catalyst load was 200 mg, and each sample was pretreated at 650°C for 2 h under a nitrogen flow prior to the reaction. The gaseous reactant contained 3% ethane and 15% CO2 with the balance consisting of nitrogen at a total flow rate of 30 mL/min. The hydrocarbon reaction products were analyzed using an on-line gas chromatograph (GC) equipped with a 6 m Porapak Q packed column and a flame ionization detector (FID). The gaseous products were analyzed on-line using a second GC equipped with a thermal conductivity detector (TCD) and a carbon molecular sieve 601 column. The reverse water-gas shift reaction was performed in a fixed-bed flow microreactor at atmospheric pressure using a catalyst load of 200 mg. The H2:CO2:N2 molar ratio was 1:1:1, and the total flow rate of the gaseous reactants was 30 mL/min. The reaction temperature was in the range of 500-650 °C. The amounts of CO2 before and after the reaction were determined by on-line analysis with a GC equipped with a carbon molecular sieve 601 column and a TCD. The reaction data in this work were reproducible, with a variation of less than 5%.

3. Results and discussion
3.1. Structural Characterization

Figure 1 shows the XRD patterns of the various ZSM-5- supported chromium oxide catalysts. All exhibit well-crystallized MFI structures with characteristic reflections at 2θ = 8.0°, 8.9°, 23.1°, 23.4° and 24.0° [27]. No diffraction patterns corresponding to chromium oxide were observed, suggesting that the chromium oxide was well dispersed on all the ZSM-5 supports.

Fig. 1. XRD patterns of (1) 3Cr/NaZSM-5-60, (2) 3Cr/NaZSM-5-100, (3) 3Cr/NaZSM-5-160 and (4) 3Cr/HZSM-5-160.

SEM images of the ZSM-5 supports are presented in Fig. 2. All samples were well crystallized without any presence of amorphous materials and exhibit a rod-like morphology with a uniform crystallite size distribution. The average crystallite size was approximately 400 nm for all the ZSM-5 zeolites.

Fig. 2. SEM images of (a) ZSM-5-60, (b) ZSM-5-100 and (c) ZSM-5-160.

The textural properties of the ZSM-5-supported chromium oxide catalysts are summarized in Table 1. These catalysts, regardless of whether the ZSM-5 support was the Na- or H-form or had a low or high Si/Al ratio, exhibit similar BET surface areas and micropore volumes, showing that the supports had similar crystallinities and that their micropore channels were not blocked by the supported CrOx species.

Table 1
Textural properties of supported chromium oxide catalysts.

27Al MAS NMR spectra of the ZSM-5 supports were acquired to characterize the local coordination environment of the aluminum atoms in the zeolites. An intense line at δ = 55, assigned to ZSM-5 framework aluminum atoms in tetrahedral coordination, can be observed in the spectra of all the samples, while no discernable signal at δ = 0, attributed to extra-framework aluminum atoms in octahedral coordination, is evident (Fig. 3). The absence of extra-framework aluminum atoms indicates that all of the Al species have been incorporated into the zeolite framework.

Fig. 3. 27Al MAS NMR spectra of (1) ZSM-5-60, (2) ZSM-5-100 and (3) ZSM-5-160.
3.2. State of Cr species

XPS was employed to investigate the oxidation states of Cr species. The Cr 2p2/3 spectra obtained from the catalysts were deconvoluted into two bands at approximately 576.5 and 579.5 eV, assigned to Cr3+ and Cr6+, respectively [22, 25, 26], and the quantitative data after fitting are listed in Table 2. All the catalysts were found to have similar binding energy (BE) values. The Cr6+/Cr3+ ratio evidently decreases with increasing Si/Al ratios and as the Na content is decreased, indicating that Na+ cations may have a positive effect in terms of raising the Cr6+/Cr3+ ratio, similar to the action of K+ ions in K-doped CrOx/Al2O3 catalysts [27]. Compared with the NaZSM-5- supported catalyst, the HZSM-5 material having the same Si/Al ratio exhibited a lower Cr6+/Cr3+ ratio, which may also result from a lower Na content.

Table 2
XPS and TPR data for supported chromium oxide catalysts.

Additional information on the state of Cr species was obtained from UV-Vis diffuse reflectance measurements, and the results are summarized in Fig. 4. Two bands are observed for each catalyst, at approximately 272 and 370 nm, assigned to the O2-→Cr6+ charge transfer transition of chromate species in tetrahedral coordination [25, 28, 29, 30, 31, 32]. Bands at 468 and 605 nm, corresponding to octahedral Cr3+ species in Cr2O3 or CrOx clusters, are not present, indicating that all Cr species were well dispersed on the submicron ZSM-5 support.

Fig. 4. Diffuse reflectance UV-Vis spectra of (1) 3Cr/NaZSM-5-60, (2) 3Cr/NaZSM-5-100, (3) 3Cr/NaZSM-5-160 and (4) 3Cr/HZSM-5-160.

Laser Raman spectra were acquired to identify the molecular nature of the Cr species dispersed on the ZSM-5 supports, and the results are depicted in Fig. 5. A band at 551 cm-1, assigned to crystalline Cr2O3, appears in the spectra of the 3Cr/HZSM-5-160 catalyst [18, 22, 25, 30, 31, 32, 33], while the band at the same position is much weaker in the case of the NaZSM-5 supported catalysts. The intensity of the 551 cm-1 band decreases in the order 3Cr/HZSM-5-160 > 3Cr/NaZSM-5-60 > 3Cr/NaZSM-5-100 » 3Cr/NaZSM-5-160. These results demonstrate that the use of a high Si/Al ratio and the Na-form of the zeolite favor CrOx dispersion.

Fig. 5. Laser Raman spectra of (1) 3Cr/NaZSM-5-60, (2) 3Cr/NaZSM-5-100, (3) 3Cr/NaZSM-5-160 and (4) 3Cr/HZSM-5-160.

Two intense bands at approximately 980 and 1000 cm-1 are present in the spectrum of each of the catalysts, and can be ascribed to the symmetric vibrational modes of the terminal Cr=O bonds of monochromates and polymeric chromates, respectively [18,22,25,30,31,32,33]. Meanwhile, a weak, broad band at 810 cm-1, attributed to the bending mode of the Cr-O-Cr linkage of polymeric chromates, also appears. The intensity of the band at 1000 cm-1 increases as the Si/Al ratio is increased, indicating that the dispersed Cr(VI) species on the catalyst surfaces gradually transition from monochromates to polymeric chromates with increasing Si/Al ratios.

H2-TPR was carried out to characterize the redox ability of Cr species on the catalysts, which has a very important effect on the dehydrogenation activity. The results are presented in Fig. 6 and Table 2. It is evident that there is only one reduction peak at 370 °C, with a shoulder at 270 °C, that can be attributed to the reduction of Cr6+ to Cr3+ (and/or Cr2+) [30,31,32]. H2 consumption is higher over the NaZSM-5-supported catalysts as compared with HZSM-5 material, and increases as the Si/Al ratio is increased, indicating increasing quantities of reducible surface Cr6+. All these findings are consistent with the data obtained from laser Raman studies, showing that high Si/Al ratios and the Na-form are favorable for CrOx dispersion.

Fig. 6. H2-TPR profiles of (1) 3Cr/NaZSM-50, (2) 3Cr/NaZSM-5-100, (3) 3Cr/NaZSM-5-160 and (4) 3Cr/HZSM-5-160.
3.3. Catalytic activity

The prepared Cr/ZSM-5 catalysts were evaluated during ethane dehydrogenation in the presence of CO2, and the results are shown in Table 3. For each catalyst, the ethane conversion drops with reaction time while the selectivity for ethylene increases. There are only minimal differences in the initial activities as well as the initial ethylene yields among the Cr/NaZSM-5 catalysts, although the stability is improved with increasing Si/Al ratios in the ZSM-5 support, resulting in a slight increase in the plateau value for the yield of ethylene. While all the submicron particle-supported catalysts exhibit superior performance, the 3Cr/NaZSM-5-160 shows higher activity than the 3Cr/HZSM-5-160.

Table 3
Reaction data for ZSM-5-supported chromium oxide catalysts obtained at 10 min and 6 h.

Cr-based catalysts have been reported to represent one of the most promising catalysts for light alkane dehydrogenation reactions because of their high catalytic efficiency both in the absence and presence of CO2. There are two types of coordinatively-unsaturated Cr(III) in chromium species, Cr(III) ions formed from the reduction of Cr(VI) and dispersed on fresh catalysts. Both are generally considered as active sites during non-oxidative dehydrogenation and oxidative dehydrogenation reaction processes. However, several groups have reported that coordinatively unsaturated Cr(III) formed from the reduction of higher-valence states (i.e. Cr(VI)) is more active, whether applied to the non-oxidative dehydrogenation reaction or oxidative dehydrogenation with CO2. As a result, the amount of reducible Cr(VI) on the calcined samples is crucial for the dehydrogenation reaction [17,22]. H2 consumption results allow one to estimate the amount of redox-active Cr(VI) species, and it can be seen from Table 2 that the amount of reducible Cr(VI) on the freshly calcined samples increases with the Si/Al ratio, which is in agreement with their increasing dehydrogenation activity. These results confirm that the reducible Cr(VI) makes an important contribution to the dehydrogenation reaction. This is also the reason why the activity of the 3Cr/NaZSM-5 is higher than that of the 3Cr/HZSM-5.

The type of Cr(VI) species is considered to be another possible factor in the dehydrogenation reaction. Kumar et al. [34]reported that isolated chromium species are more active for the dehydrogenation reaction than crystalline α-Cr2O3, whereas oligomeric chromium species are more active than isolated chromium species. We can see from Fig. 5 that dispersed Cr(VI) species are present in the form of polymeric chromates and monochromates on the surface of Cr/NaZSM-5 while crystalline Cr2O3 was formed on the Cr/HZSM-5. This may be the reason why 3Cr/HZSM-5-160 exhibits relatively low activity even though it has a higher amount of reducible Cr(VI) as compared with 3Cr/NaZSM-5-60.

The effect of the Cr loading on the dehydrogenation activity was also investigated. The ethane conversion was found to increase with increasing extents of Cr loading and then decreased as the Cr content was further increased, such that mass fraction of 3% Cr2O3 is optimal.

To investigate the stability of the 3Cr/NaZSM-5-160 catalyst, the dehydrogenation reaction was run continuously for 50 h, with the results shown in Fig. 7. The catalyst is relatively stable; the ethylene yield over the catalyst is maintained at about 46% without any obvious deactivation over the 50 h, although the activity does drop slowly. This is quite different from the behavior of other commonly studied Cr-containing catalysts, over which the ethylene yields are reported to have dropped quickly within 6 h.

Fig. 7. (1) Ethane conversion, (2) ethylene selectivity and (3) ethylene yield over 3Cr/NaZSM-5-160 as functions of reaction time.
3.4. Effect of CO2 partial pressure

The effect of CO2 partial pressure on the dehydrogenation of ethane was also investigated, and the results are summarized in Table 4. The promotional effect of CO2 on the reaction is quite evident. The initial ethane conversion increases quickly from 20.4% with increasing CO2/C2H6 ratios until it reaches its peak at 65.5% when the CO2/C2H6 ratio equals 5, after which the conversion decreases slightly with further increases in the CO2/C2H6 ratio. The effect of CO2 can be attributed to the reverse water-gas shift reaction, which accelerates the formation of the dehydrogenation products by transforming H2 and CO2 into CO and H2O. This is demonstrated by the results of the H2/CO2 reaction over 3Cr/NaZSM-5-160. Obviously, the catalyst is very active for the reverse water-gas shift reaction, with a CO2 conversion of 22.6% at 650 °C.

Table 4
Reaction data for 3Cr/NaZSM-5-160 under different CO2 partial pressures obtained at 10 min and 6 h.

The stability of the catalysts was also improved greatly by the addition of CO2. About 40% of the initial activity was lost within 6 h in the absence of CO2. However, when 15% CO2 was introduced, only 5% loss was observed during the same period. The enhanced stability can be explained primarily by two effects: (1) CO2 promotes the Cr6+/Cr3+ reaction through the oxidation of reduced Cr species, Cr(III)Ox-1 + CO2 → Cr(VI)Ox + CO, and regenerates the active species [6,7,17,35,36,37], and (2) CO2 eliminates the formation of coke by the Boudouard reaction, CO2 + C → 2CO, and thus exposes more active sites to the reactants [6,7,17,35,36,37]. This can be confirmed by thermogravimetric tests that show that the amount of coke deposited on the catalyst after 6 h is 3.4% in the absence of CO2, a value that is higher than the 3.0% amount obtained in the presence of CO2. The fact that the Boudouard reaction proceeds is also evident from the observation that the molar ratio of CO formed to CO2 converted is approximately 1.4 during the reaction, since this ratio should be equal to unity if the Boudouard reaction does not occur.

4. Conclusions

Catalysts composed of submicron ZSM-5-supported chromium oxide particles were prepared by an incipient wetness method, and their catalytic performance for ethane dehydrogenation in the presence of CO2 was compared. The results show that chromium oxide supported on submicron Na-type ZSM-5 with a high Si/Al ratio is an excellent catalyst for the oxidative dehydrogenation of ethane with CO2. High activity as well as high stability can be obtained over this catalyst. The promotional effect of CO2 on dehydrogenation can also be observed on this catalyst and is attributed to the reverse water-gas shift reaction. Characterization by laser Raman, UV-Vis DRS, XPS and H2-TPR revealed that improved dispersion of Cr species can be achieved in submicron catalysts, resulting in a greater quantity of the reducible Cr(VI) species that play a key role in the ethane dehydrogenation reaction. The type of Cr(VI) species present is another possible factor affecting the dehydrogenation reaction.

References
[1] Sazama P, Sathu N K, Tabor E, Wichterlová B, Sklenák Š, Sobalík Z. J Catal, 2013, 299: 188
[2] Kowalska-Kus J, Held A, Nowinska K. Catal Lett, 2010, 136: 199
[3] Wu G J, Fei H, Guan N J, Li L D. Catal Sci Technol, 2013, 3: 1333
[4] Koekkoek A J J, Kim W, Degirmenci V, Xin H, Ryoo R, Hensen E J M. J Catal, 2013, 299: 81
[5] Chen M, Wu J L, Liu Y M, Cao Y, Guo L, He H Y, Fan K N. Appl Catal A, 2011, 407: 20
[6] Wang S B, Zhu Z H. Energ Fuels, 2004, 18: 1126
[7] Wang S B, Murata K, Hayakawa T, Hamakawa S, Suzuki K. Appl Catal A, 2000, 196: 1
[8] Nakagawa K, Okamura M, Ikenaga N, Suzuki T, Kobayashi T. Chem Commun, 1998: 1025
[9] Shen Z H, Liu J, Xu H L, Yue Y H, Hua W M, Shen W. Appl Catal A, 2009, 356: 148
[10] Zhang X, Ye Q, Xu B Q, He D H. Catal Lett, 2007, 117: 140
[11] Jin L, Reutenauer J, Opembe N, Lai M, Martenak D J, Han S, Suib S L. ChemCatChem, 2009, 1: 441
[12] Deng S, Li H Q, Li S G, Zhang Y. J Mol Catal A, 2007, 268: 169
[13] Deng S, Li S G, Li H Q, Zhang Y. Ind Eng Chem Res, 2009, 48: 7561
[14] Zhao X H, Wang X L. Catal Commun, 2006, 7: 633
[15] Michorczyk P, Ogonowski J, Niemczyk M. Appl Catal A, 2010, 374: 142
[16] Shi X J, Ji S F, Wang K. Catal Lett, 2008, 125: 331
[17] Baek J, Yun H J, Yun D, Choi Y, Yi J. ACS Catal, 2012, 2: 1893
[18] Wang Y, Ohishi Y, Shishido T, Zhang Q H, Yang W, Guo Q, Wan H L, Takehira K. J Catal, 2003, 220: 347
[19] Nakagawa K, Kajita C, Ikenaga N O, Suzuki T, Kobayashi T, Nishitani-Gamo M, Ando T. J Phys Chem B, 2003, 107: 4048
[20] Nakagawa K, Kajita C, Ikenaga N O, Nishitani-Gamo M, Ando T, Suzuki T. Catal Today, 2003, 84: 149
[21] Mimura N, Okamoto M, Yamashita H, Oyama S T, Murata K. J Phys Chem B, 2006, 110: 21764
[22] Zhang F, Wu R X, Yue Y H, Yang W M, Gu S Y, Miao C X, Hua W M, Gao Z. Microporous Mesoporous Mater, 2011, 145: 194
[23] Wang Y, Guo L F, Ling Y, Liu Y M, Li X H, Wu H H, Wu P. Appl Catal A, 2010, 379: 45
[24] Sang S Y, Chang F X, Liu Z M, He C Q, He Y L, Xu L. Catal Today, 2004, 93-95: 729
[25] Ayari F, Mhamdi M, Álvarez-Rodríguez J, Ruiz A R G, Delahay G, Ghorbel A. Appl Catal B, 2013, 134-135: 367
[26] Kytokivi A, Jacobs J P, Hakuli A, Merilainen J, Brongersma H H. J Catal, 1996, 162: 190
[27] Rombi E, Cutrufello M G, Solinas V, De Rossi S, Ferraris G, Pistone A. Appl Catal A, 2003, 251: 255
[28] Michorczyk P, Ogonowski J, Zenczak K. J Mol Catal A, 2011, 349: 1
[29] Cavani F, Koutyrev M, Trifiro F, Bartolini A, Ghisletti D, Iezzi R, Santucci A, Del Piero G. J Catal, 1996, 158: 236
[30] Rao T V M, Deo G, Jehng J M, Wachs I E. Langmuir, 2004, 20: 7159
[31] Weckhuysen B M, Wachs I E, Schoonheydt R A. Chem Rev, 1996, 96: 3327
[32] Puurunen R L, Weckhuysen B M. J Catal, 2002, 210: 418
[33] Weckhuysen B M, Jehng J M, Wachs I E. J Phys Chem B, 2000, 104: 7382
[34] Kumar M S, Hammer N, Rönning M, Holmen A, Chen D, Walmsley J C, Öye G. J Catal, 2009, 261: 116
[35] Mimura N, Takahara I, Inaba M, Okamoto M, Murata K. Catal Commun, 2002, 3: 257
[36] Shishido T, Shimamura K, Teramura K, Tanaka T. Catal Today, 2012, 185: 151
[37] Nakagawa K, Kajita C, Ikenaga N, Nishitani-Gamo M, Ando T, Suzuki T. Catal Today, 2003, 84: 149