Catalytic oxidation of CO is a classical and crucial reaction, concerning the practical applications such as the gas sensors of trace amount of CO, automobile exhaust purification, and safety masks, which attracted enormous research interests. The supported Au nanoparticles (NPs), which play an important role in many catalytic reactions for the unusual catalytic performances [1], show unexpected performances in CO oxidation [2, 3]. Currently, the supported Au nanoparticles have been regarded to be promising for potential wide applications, but these catalysts still suffer from the challenges of stability and deactivation, where the sintering of NPs at high reaction temperature usually occurs [4].
To overcome the aforementioned issues, various strategies have been developed, including isolating the Au NPs on the surfaces [5, 6] or in the mesopores of supports [7], covering the Au NPs with metal oxide/silica/carbon overlayers [8, 9], encapsulating them in the rigid solids [10-14]. Particularly, construction of the strong metal-support interaction (SMSI) [15] to cover or encapsulate metal NPs by metal oxides, has been shown as an efficient route to stabilize the NPs. Several reducible oxides have been chosen to prepare these supported Au NP catalysts, including TiO2 [16-18], Nb2O5 [19], ZnO [20], and CeO2 [21, 22]. These strategies have effectively improved the stability of supported Au catalysts, but relatively complicated procedures for these strategies has a challenge for the industrial applications.
Herein, we developed a simple and efficient route to improve the catalytic activity and durability of Au NPs on an inert support of SiO2 modified with CeOx. Key to this success is to anchore a slight amount of CeOx NPs onto the surface of Au NPs in the presence of ethylenediaminetetraacetic acid (EDTA), which was denoted as CeOx@Au/SiO2. Owing to the modification by CeOx, abundant Au-CeOx interfaces were reasonably achieved, leading to increase of positively-charged Au (Auδ+) concentration. Catalytic tests in CO oxidation show that the CeOx@Au/SiO2 exhibits much better activity and stability than conventional Au nanoparticles supported on silica support (Au/SiO2).
Synthesis of Au NPs. As a typical run, 1.0 g of polyvinyl pyrrolidone (PVP, K-30) was added to 100 mL of HAuCl4 aqueous solution (0.05 mmol of HAuCl4). After stirring the mixture in an ice bath for 0.5 h, 10 mL of NaBH4 aqueous (0.01 mmol of NaBH4) was added quickly with vigorous stirring. After stirring for another 2 h, the Au NPs colloid were finally obtained.
Synthesis of CeOx@Au/SiO2. In a typical run, 0.4 mmol of Ce(NO3)3 was added to the 100 mL of Au NPs colloid with stirring, followed by addition of 0.8 mL of NH3·H2O and 5 mL of EDTA aqueous solution (0.4 mmol of EDTA). After stirring for 0.5 h, 1.0 g of amorphous SiO2 was impregnated with the colloid. The liquid mixture was continuously stirred for another 3 h at room temperature. After distilling under vacuum condition to remove the water, drying at 105 ℃ overnight, and calcining at 400 ℃ for 4 h, the CeOx@Au/SiO2 was finally obtained.
Synthesis of CeOx-Au/SiO2. 0.04 mmol CeO2 was added to the 100 mL of Au NPs colloid directly. After stirring for 0.5 h, 1.0 g of amorphous SiO2 was impregnated with the colloid. The liquid mixture was continuously stirred for another 3 h at room temperature. After distilling under vacuum condition to remove the water, drying at 105 ℃ overnight, and calcining at 400 ℃ for 4 h, the CeOx-Au/SiO2 was obtained.
Synthesis of Au/SiO2. The Au/SiO2 was prepared via the similar impregnation without the addition of Ce species.
Synthesis of CeO2/SiO2. The CeO2/SiO2 was synthesized by physically mixing 0.08 mmol of CeO2 and 1.0 g of amorphous SiO2.
The CO oxidation was carried out in a continuous fixed-bed glass vertical reactor (length at 450 mm and inner diameter at 6 mm). As a typical run, quartz sands were placed into both ends of the catalyst to maintain the bed height and reduce the dead volume. 0.15 g of catalyst (40-60 mesh) was diluted with 0.3 g of quartz sands (40-60 mesh) in the catalyst bed. Before the reaction, the catalyst was pretreated by O2 (20% in He) at 300 ℃ for 1 h. CO/O2/He (2%/16%/82%) was introduced to the upper inlet of the reactor with a rate of 40 mL/min. The reactor temperature was programmed by a temperature-controlled instrument. The composition of effluent gas was analyzed with a Fu Li-9790 gas phase chromatography (GC) equipped with a thermal conductivity detector (TCD).
X-ray diffraction (XRD) patterns were collected on a Rigaku D/MAX 2550 diffract meter with Cu Kα radiation (λ = 1.5406 Å). The composition of catalysts was measured with an inductively coupled plasma (ICP) analysis (Perkin-Elmer 3300DV). Transmission electron microscopy (TEM) images were obtained on a JEM-2100F electron microscopy with an acceleration voltage of 200 kV and a FEI Tecnai G2 F20 S-TWIN electron microscopy with an acceleration voltage of 200 kV. X-ray photoelectron spectra (XPS) of the samples were recorded using a Kratos AXIS SUPRA with Al Kα X-ray radiation as the X-ray source. The binding energies were calibrated on the basis of the C 1s (284.8 eV) peak. H2-temperature programmed reduction (H2-TPR) was performed on a Finesorb-3010. Infrared (IR) spectra were recorded using a Bruker Vestor 22 FT-IR spectrometer equipped with a MCT/A detector and ZeSe windows and a high temperature reaction chamber. As a typical run, 50 mg of solid sample was localized in the chamber and pretreated at 200 ℃ for 30 min in flowing pure Ar (20 mL/min). Then, the chamber was adjusted to desired temperature (200 ℃), and CO (10% CO in Ar) was flowed to the sample for 30 min. After removing the physically adsorbed CO by pure Ar gas, the FTIR spectra of CO adsorbed on the samples were recorded. Then O2 (10% O2 in Ar) was introduced, the spectra were collected when gas was flowed through the chamber.
By ICP-AES analysis, the Au and Ce loading on the CeOx@Au/SiO2 were measured to be 0.9 and 5.0 wt%, respectively. For comparison, the CeOx-Au/SiO2 was synthesized with similar method in the absence of EDTA, and the CeO2/SiO2 was prepared from a physical mixture of CeO2 and SiO2.
Fig. 1 shows XRD patterns of Au/SiO2, CeOx@Au/SiO2 and CeOx-Au/SiO2, giving peaks at 38.2°, 44.3°, 64.6° and 77.5°, which are characteristics of (111), (200), (220) and (311) planes of metallic Au, respectively. In addition, CeOx@Au/SiO2 and CeOx-Au/SiO2 samples also show diffraction peaks at 28.5°, 33.0°, 47.5° and 56.3° associated with of CeO2, indicating the successful loading of CeOx species on the Au/SiO2 catalyst. The CeO2 signals of CeOx-Au/SiO2 are stronger than those of CeOx@Au/SiO2, suggesting the relatively larger CeOx particles on CeOx-Au/SiO2 (Fig. S1).
TEM images give direct observation of the Au and CeOx distribution on silica support. As shown in Fig. 2(a), the Au NPs are uniformly distributed on the SiO2 support, displaying narrow diameter distribution at 6.0-15.0 nm and mean size at 10.6 nm. Very interestingly, small CeOx crystals (lattice distance at 0.31 nm, corresponding to the (111) plane) with diameters at ~2 nm were observed on the surface of Au nanoparticle (Fig. 2(b)).
Furthermore, XPS characterization was employed to analyze the surface composition of the catalysts. As shown in Fig. 3, Au 4f7/2 XPS spectra give binding energy signals at 83.6, 84.5 and 85.7 eV [23]. These signals can be assigned to the metallic Au NPs and surface positive Au species of Au+ and Au3+, respectively. Notably, the positively charged Au concentration of CeOx@Au/SiO2 catalyst is much higher than those of Au/SiO2 and CeOx-Au/SiO2 catalysts, which could reasonably be attributed to the modification of Au/SiO2 by CeOx species, where the electronic interaction occurred between Au species and CeOx nanocrystals (Fig. S2). This interaction should be favorable for the catalytic oxidations since the positively charged Au species have been considered as an active site for the activation of oxygen [24, 25].
Fig. 4 shows CO oxidation light-off curves over CeOx@Au/SiO2, CeOx-Au/SiO2, CeO2/SiO2, and Au/SiO2 catalysts, exhibiting quite different catalytic performances. The Au/SiO2 catalyst shows low CO conversion (4.0%) at 160 ℃ and complete conversion of CO at 340 ℃. In contrast, the CeOx@Au/SiO2 catalyst exhibits CO conversion of 98.8% at 160 ℃ and the complete conversion is achieved at 180 ℃. When the CeOx-Au/SiO2 is employed, the complete CO conversion is at 300 ℃, which is slightly better than the Au/SiO2 catalyst. In addition, the CeO2/SiO2 catalyst without Au is also active for CO oxidation, but the CO conversion is much lower (half CO conversion at 460 ℃). Considering the CeOx@Au/SiO2, CeOx-Au/SiO2, and Au/SiO2 have similar Au nanoparticles and loading as well as the same silica support, a significant enhancement of catalytic activity should be directly assigned to the CeOx modification rather than other factors. In addition, the CeOx-Au/SiO2 is much less active than the CeOx@Au/SiO2, therefore it is suggested that the EDTA might be also important. One possibility is that the EDTA serves as a ligand to maximize the interaction between CeOx nanocrystals and Au nanoparticles.
In attempt to understand the promotion of CeOx, we have performed in situ DRIFT experiments over the CeOx@Au/SiO2 and Au/SiO2 catalysts. For CO adsorption (Fig. 5(a)), the Au/SiO2 catalyst gives IR bands at 2156 and 2117 cm-1 [26, 27] associated with the CO adsorbed on positive and metallic Au species, but the CeOx@Au/SiO2 catalyst shows additional IR bands at 2230, 1599, 1493 and 1449 cm-1. The band at 2230 cm-1 is correspondent to [Au(CO)2]δ+ species [28], which formed by two CO species adsorbed on the same positive Au nanoparticle. The bands at 1599, 1493 and 1449 cm-1 are assigned to the bidentate, polydentate, and monodentate carbonate (CO32-) species. These species might mean that the CO indeed interacts with the active oxygen species on the catalyst surface. The invisibility of these bands over the Au/SiO2 suggests the lack of active oxygen species. In addition, it is also observed a strong band at 2173 cm-1 on the CeOx@Au/SiO2, which is attributed to the adsorption of CO on Ce4+ species. In a word, the existence of Au-CeOx interface strengthens the CO adsorption on the CeOx@Au/SiO2, which benefits for the CO conversion.
When oxygen was introduced to the CO-adsorbed catalysts, as shown in Fig. 5(b), new bands at 2232, 1492, and 1447 cm-1 are observed on the Au/SiO2, which are correspondent to [Au(CO)2]δ+ species, polydentate, and monodentate CO32- species, respectively. These signals indicate the generation of CO2. Besides, bands at 2156 and 2117 cm-1 on the CO-adsorbed Au/SiO2 shift to 2162 and 2120 cm-1, meaning that the CO adsorption become weak. For the CeOx@Au/SiO2 catalyst, bands at 2361 and 2334 cm-1 assigned to gas phase CO2 are observed, demonstrating higher CO oxidation activity of CeOx@Au/SiO2 than that of Au/SiO2. Part of [Au(CO)2]δ+ species (2241 and 2231 cm-1) and CO species adsorbed on the Au NPs (2175, 2137 and 2120 cm-1) still exist, but their intensities are significantly reduced. In contrast, the bands at 1602, 1492 and 1447 cm-1 are obviously strengthened, suggesting that the CO32- species are mainly derived from CO adsorbed on the CeOx@Au/SiO2. Moreover, it is observed a weak band at 2343 cm-1 assigned to CO2 adsorbed on Ce4+, confirming strong oxidation activity from CO to CO2 over the CeOx@Au/SiO2 catalyst, in good agreement with those shown in the catalytic results.
Fig. 6 shows the durability of the CeOx@Au/SiO2 and Au/SiO2 catalysts. In the beginning of reaction at 180 ℃ over the CeOx@Au/SiO2, the CO is completely converted. Changing the temperature to 140 ℃, it is given the CO conversion at 78%. To evaluate the stability of the Au NPs, we employed a high temperature of 260 ℃. After reaction at 260 ℃ for 18 h, we cannot observe any decrease for the CO conversion. After cooling to 180 ℃ for another 12 h, full CO conversion is also achieved, confirming very high durability of the CeOx@Au/SiO2 catalyst. In contrast, the CO conversion of the Au/SiO2 is remarkably reduced after reaction at 260 ℃ for 10 h, which is reasonably attributed to the aggregation of Au NPs [4]. In addition, we also performed the calcination treatment of the catalysts at 600 ℃ for 3 h (Fig. 7), which is harsh for the survival of normal Au NPs. Interestingly, it is almost unchangeable for the Au NPs of CeOx@Au/SiO2 (10.8 nm) before and after the calcination, but it is obviously observed the aggregation of the Au NPs on the calcined Au/SiO2.
In summary, we report a significant enhancement of the catalytic activity and durability over silica supported Au NP catalyst by CeOx modification in the presence of EDTA. The existence of CeOx nanocrystals on the Au NPs surface increases positively charged Auδ+ concentration, improving the CO oxidation activity. More importantly, the CeOx@Au/SiO2 catalyst shows excellent durability. In situ IR spectra reveal that CeOx modification greatly promotes the CO adsorption on the catalyst, leading to the efficient conversion of CO to CO2 in the oxidative atmosphere. The strategy in this work might open an alternative way to develop more active and stable catalysts for the catalytic oxidations in the future.
Technical assistance, material support, and other help or advice may be acknowledged briefly in this section (excluding financial support, which should appear in the footnote on the title page).