Aromatics largely produced by petrochemical processes such as the cracking and reforming of petroleum are very important raw materials for the chemical industry [1]. The development of new technologies stemming from renewable sources to meet the increasing demand of aromatics, especially benzene, toluene, and xylene (BTX), is gaining importance because of fossil fuel depletion [2-5]. In recent years, the aromatization of methanol has been receiving ever-increasing attention because of the wide availability of methanol, which is currently produced from coal, natural gas and biomasses [6-9]. ZSM-5 zeolites can be used as catalysts for the methanol-to-aromatics (MTA) reaction because of their large surface areas, tunable acidity, shape-selective properties, and high hydrothermal stability [10-13]. The acidity of ZSM-5 is a principal property affecting the nature of products, and is generally tuned by tailoring of the framework Si/Al molar ratio [14, 15]. The tortuosity of ZSM-5 is another important property that facilitates molecular diffusion behavior. Nano-sized ZSM-5 possesses an additional layer of auxiliary porosity because of inter-crystalline voids, resulting in improved diffusion [16].
Numerous works have reported enhanced catalytic performance of nano-sized ZSM-5 when compared with their larger sized analogues. Viswanadham et al. [17, 18] reported that nano-sized ZSM-5 exhibited very high activity in the esterification of cyclohexanol with acetic acid, and enhanced catalytic performance in the acetone-to-gasoline reaction. According to Firoozi and coworkers [19], nano-sized H-ZSM-5 showed higher activity and stability compared with the micro-sized H-ZSM-5 in the methanol-to-propylene reaction. Choi et al. [20] synthesized stable MFI zeolite single-unit-cell nanosheets, which were active and long-lived in methanol-to-gasoline reactions. Shen et al. [11, 21] prepared nano-sized ZSM-5 under atmospheric pressure with high crystallinity, large surface area, uniform size and excellent catalytic performance for the MTA reaction compared with conventional ZSM-5.
However, there are limited reports investigating the MTA reaction performance as a function of H-ZSM-5 crystal size. In this paper, a systematic study has been designed to synthesize H-ZSM-5 zeolites having different crystal sizes to elucidate how H-ZSM-5 activity and selectivity in the MTA reaction is affected by crystal size.
All reagents used for the ZSM-5 preparation were purchased from Sinopharm Chemical Reagent Co., Ltd, China. ZSM-5 samples with different crystal sizes were prepared using tetrapropylammonium hydroxide (TPAOH, 25 wt%) as the templating agent, tetraethyl orthosilicate (TEOS, 28.4 wt%) as the silica source, Al(NO3)3·9H2O (99 wt%) as the alumina source, NaOH (96 wt%) and deionized water. A sol-gel was prepared with a molar composition of: 5-15 TPAOH: 0.5 Al2O3: 25 SiO2: 500 H2O: 0.075 Na2O and was stirred for 2 h at room temperature before being transferred into a Teflon-lined autoclave and pre-treated at 120 ℃ for 2 h followed by hydrothermal treatment at 180 ℃ for 24-72 h. All synthesized samples were separated from the mother liquor by centrifugation, washed with deionized water, and dried at 120 ℃ for 6 h. The zeolites were rendered porous by template removal through calcination at 550 ℃ in air for 4 h.
The calcined Na-zeolites were ion-exchanged twice with a NH4NO3 (99 wt%) solution (0.3 mol/L, liquid/solid ratio = 20:1 mL/g) at 80 ℃. Thereafter, the NH4-zeolite samples were washed, filtered, and dried at 120 ℃ for 6 h. Finally, the samples were calcined at 550 ℃ for 4 h to obtain H-ZSM-5 zeolites.
X-ray diffraction (XRD) patterns of the samples were obtained using a PANalytical X'Pert PRO MPD diffractometer applying Cu-Kα radiation (λ = 0.15406 nm) generated at 40 kV and 30 mA. Sample morphology and crystal size were determined by scanning electron microscopy (SEM) using a FEI Sirion 200 microscope operating at an acceleration voltage of 10 kV. N2 adsorption-desorption isotherms were measured using an ASAP-2020 instrument (Micrometrics, USA) at -196 ℃. Dead space was measured using helium gas. Surface areas, pore volumes and pore size distributions were calculated by measuring the volume adsorbed at different relative pressures [14]. Pyridine-adsorbed Fourier transform infrared (FT-IR) spectra were recorded using a VERTEX 70 FT-IR spectrometer (Bruker, Germany). The catalyst samples were first dried at 300 ℃ under N2 for 4 h, prior to cooling to room temperature, before being subjected to a saturated pyridine atmosphere for 12 h to allow adsorption. Thereafter, the samples were exposed to pure N2 at 110 ℃ for 4 h to remove the physically absorbed pyridine. The NH3-temperature-programed desorption (TPD) curves were obtained in the range of 70-700 ℃ having a ramp of 10 ℃/min (Quantachrome Chembet-3000). The adsorption of ammonia on the samples was performed at 70 ℃, followed by ammonia removal in a flow of pure helium. SiO2/Al2O3 molar ratios of the ZSM-5 zeolites were determined using a PANalytical Axios Petro X-ray fluorescence (XRF) instrument.
The as-synthesized H-ZSM-5 zeolites were pressed into wafers and then crushed and sieved to 20-40 mesh particle size before use. The catalytic activity tests for the MTA reaction were performed in a fixed-bed continuous flow reactor with an inner diameter of 8.5 mm under the following conditions: N2 pressure of 0.5 MPa, temperature of 450 ℃, weight hourly space velocity (WHSV) of 2 h-1, and a catalyst loading of 5 mL (3.325 g). After a stabilizing period of 2 h, the reaction product was removed from the reactor for further analysis. The product obtained at the end of the reaction was cooled using a cold-water circulator, where the entire product was separated into liquid products and gas products. The liquid products contained both aqueous and oil phase components. The oil products were analyzed using an Agilent 7890N gas chromatograph (GC) system. The aqueous phase products were analyzed using an Agilent 6820-GC system. The gas phase products were collected in a syringe and analyzed using a Bruker 450-GC system. The total amount of coke formed on the deactivated spent catalysts was determined by thermal gravimetric (TG) analysis using a Netzsch STA 449 F3 instrument in air at a heating rate of 10 ℃/min from room temperature to ~800 ℃.
The reaction performance was assessed by methanol conversion and aromatic product selectivity according to the following formulas:
where XMeOH is the conversion of methanol, SAro is the selectivity for aromatics, SBTX represents the selectivity for BTX, SAro, i is the selectivity for target aromatic product i (i = benzene, toluene, xylene and C9+aromatics), nMeOH, in and nMeOH, out represent the number of moles of methanol passing the inlet and outlet streams, respectively, and mAro, mBTX, and mAro, i represent the mass of aromatics, BTX and aromatic product i in the product stream, respectively.
The powder XRD patterns of the prepared ZSM-5 samples are shown in Fig. 1. It can be seen that all the samples exhibit the typical diffraction peaks which are characteristic of the ZSM-5 framework (MFI) structure. Across all five samples the XRD patterns have a very low background signal and sharp reflections indicating their superior crystalline properties. However, there are differences in the diffractograms between the prepared ZSM-5 zeolites as peak intensities decrease and line widths increase from sample a to e, suggesting a decrease in crystal size from sample a to sample e [21, 22]. The degree of crystallinity was estimated by comparing the total XRD peak area normalized to sample a over the 2θ range from 7° to 25°, as shown in Table 1. Fig. 2 shows the SEM micrographs and corresponding particle size distributions of the as-synthesized ZSM-5 zeolites. The results illustrate that the as-synthesized ZSM-5 zeolites exhibit cuboid-like particle morphology, which vary in size as a function of the sol-gel composition. From Fig. 2(a)-(e), it is clear that particle size reduces from sample a to sample e. The corresponding particle sizes are: 4.0 ± 0.3, 1.2 ± 0.2 μm, 614.1 ± 31.9, 391.9 ± 32.4, and 99.1 ± 7.0 nm, respectively.
As shown in Fig. 3, the N2 adsorption-desorption isotherms of samples a-d exhibit type I physisorption corresponding to a typical microporous structure, while sample e exhibits type IV physisorption relating to the presence of mesoporosity, according to the IUPAC classification [23]. For the nano-sized H-ZSM-5 zeolite, sample e, there is an apparent type H4 hysteresis loop because of the presence of both mesopores and macropores at high relative pressure (p/p0= 0.8-1.0) relating to inter-crystalline voids produced by stacking of the nano-sized crystals [17, 24]. The Barrett-Joyner-Halenda (BJH) method is one model typically employed to determine the mesopore size distribution [25]. The pore size distribution curves of samples a-e, derived from the BJH model using the adsorption branch of the isotherms, are shown in Fig. 4. The nano-sized H-ZSM-5 zeolite, sample e, shows a bi-modal mesoporous size distribution from 2-7 and 20-50 nm. Furthermore, sample e clearly shows the presence of significant macropores (> 50 nm). Table 1 shows the increase in BET surface area from 294 to 383 m2/g as a function of decreasing crystal size (4.0 ± 0.3 μm to 99.1 ± 7.0 nm). Additionally, there is a corresponding increase in mesopore volume from 0.06 to 0.24 cm3/g. As a result, the Brunauer-Emmett-Teller (BET) surface area decreases gradually with an increase of ZSM-5 crystal size with the nano-sized ZSM-5 zeolite possessing a significantly larger BET surface area together with a larger mesopore and macropore volume. Furthermore, crystal size can also affect both zeolite textural and surface properties [26].
Py-IR was performed to probe the acid types of the catalysts, and Fig. 5(a) shows the pyridine-adsorbed FT-IR spectra of various H-ZSM-5 catalysts in the region of 1400 to 1600 cm -1. The band at 1450 cm -1 is assigned to pyridine adsorbed on Lewis acid sites, while the band at 1540 cm -1 is ascribed to pyridine adsorbed on Brnsted acid sites. The band at 1490 cm-1 can be attributed to pyridine co-adsorbed on both Lewis and Brnsted acid sites [27]. The results suggest that all the samples have similar numbers of Lewis acid and Brnsted acid sites. Generally, the NH3-TPD spectra of the H-ZSM-5 zeolite catalysts show two main desorption peaks, namely, the low-temperature peak located < 300 ℃ and the high-temperature peak at temperatures > 500 ℃. The low-temperature peak is ascribed to ammonia adsorbed on weak acid sites, and the high-temperature peak is attributed to strong adsorption sites of ammonia [28]. As shown in Fig. 5(b), the acidic nature of the samples is determined by NH3-TPD, and all the zeolite samples show two peaks centered around 270 and 500 ℃. The total acid amount of the samples detected by NH3-TPD are similar, as are the SiO2/Al2O3 molar ratios of the samples (Table 1). Thus, the influence of crystal size of the H-ZSM-5 zeolites on the acidic properties is insignificant. Therefore, the impact of crystal size of the H-ZSM-5 zeolites on the MTA reaction could be studied to assess the effect of the additional auxiliary level of porosity of the nano-sized HZSM-5.
The H-ZSM-5 catalysts were evaluated for their catalytic performance under the same reaction conditions. Fig. 6 shows the MTA catalytic performance as a function of time-on-stream over H-ZSM-5 catalysts having different crystal sizes. As shown in Fig. 6(a), methanol conversion over all H-ZSM-5 catalysts are ~100% after the first 60 min on-stream. However, the initial selectivity for both aromatics and BTX for the nano-sized H-ZSM-5, sample e, is higher than the H-ZSM-5 samples a-d having large particle sizes (Fig. 6(b) and (c)). Catalyst deactivation differs depending on the zeolite particle size. All catalysts show 95% conversion after 180 min on-stream. Extending the reaction time to beyond 180 min results in varying degrees of methanol conversion. For samples a-c, methanol conversion decreases sharply. However, methanol conversion over sample e is maintained at > 98% up to 300 min. Additionally, the selectivity toward aromatics and BTX as a function of time-on-stream is given in Fig. 6 (b) and (c), respectively. The selectivity towards aromatics (average > 42%) and BTX (37% at 180 min), for sample e, are significantly higher than those for samples a-d. Fig. 7 shows the effect of crystal size on the distribution of aromatic species including BTX and C9+ aromatics in the liquid products obtained at 120 min on-stream. Xylene and toluene are the primary aromatic species formed over samples b-e. However, xylene and C9+ aromatics are the major aromatic species obtained over sample a, which has the lowest selectivity for aromatics (29%, Fig. 6), indicating that enhanced diffusion in oversized crystals result in the intermediates to preferentially convert to heavy aromatics, thus tending to generate the coke precursor.
TG measurements on the spent catalysts under flowing air are shown in Fig. 8. In general, the decomposition of coke occurs between 300 and 600 ℃, while any adsorbed water is lost before 300 ℃. It is evident that weight loss over the deactivated catalyst sample a is significantly higher than that over deactivated catalyst sample e, with the latter converting significantly more methanol (Fig. 5). These results indicate that the nano-sized H-ZSM-5 catalyst possesses short pore channels, which facilitate the rapid diffusion of reactants and products inside the micropores, thus limiting micropore blocking and the deposition of polyaromatic hydrocarbons. Recently, Shen and coworkers [10] observed that coke was preferentially deposited at the interstitial voids of nano-sized H-ZSM-5 prior to being generated inside the microporous channels. Thereby, coke is sparingly deposited into the internal channels of nano-sized H-ZSM-5 because of the unique hierarchical structure and the abundance of pores residing at the large external surface. All of the above results for the aromatization of methanol over the H-ZSM-5 catalysts of differing crystal size clearly indicate that the nano-sized H-ZSM-5 catalyst shows significantly higher activity and enhanced stability than the micro-sized H-ZSM-5 catalysts. The studies of Srivastava et al. [29] on mesoporous materials possessing zeolite frameworks showed that the presence of micropores and mesopores in the hierarchical materials exhibited slow catalytic deactivation for various reactions. The interconnected microporous and mesoporous channel systems of ZSM-5 and MCM-48 were found to enhance the mass transfer properties and reduce diffusion limitations [30]. The presence of mesopores in ZSM-5 improved conversion and reaction yield for the Friedel-Crafts alkylation of toluene with ethane, as reported by Bohstrm and coworkers [31]. Furthermore, in the acetone-to-olefin reaction, nano-sized zeolites showed higher activity over a longer lifetime compared with the macro-zeolite counterparts [32]. Since the SiO2/Al2O3 molar ratios and acidic properties are similar for all the zeolite samples in this study, the higher conversion, longer lifetime and higher activity can be attributed to the abundant microporous and mesoporous formed by the aggregation of the nano-sized particles.
H-ZSM-5 zeolites were hydrothermally synthesized and control over their crystal size was easily achieved by changes to the TPAOH:H2O ratio and crystallization time. The influence of crystal size on methanol conversion in the MTA reaction was studied. Measurements of the textural properties of the H-ZSM-5 show that the specific external surface area and pore volume increase as a function of decreasing crystal size. The nano-sized H-ZSM-5 catalyst shows remarkable selectivity towards aromatics and BTX in the MTA reaction, which is attributed to the short diffusion length, substantial mesoporosity and large external surface area. The hierarchical nano-sized H-ZSM-5 zeolite catalyst exhibits increased catalytic lifetime, higher activity and low coking levels compared with the larger-sized zeolite analogues, and is potentially advantageous in the continuous flow MTA process.