1. Field of the Invention
The present invention relates to a NOx adsorbent that adsorbs NOx at ambient temperature in a range of room temperature. The NOx adsorbent suggested by various embodiments of the present invention is disposed upstream or downstream of an exhaust gas purifying catalyst, e.g., a three-way catalyst or a NOx adsorption/reduction catalyst, in an exhaust gas passage, so that the NOx adsorbent can adsorb a sufficient amount of NOx until the temperature of the exhaust gas purifying catalyst reaches a certain range of the activation temperature of the catalyst so as to greatly suppress the emission of the NOx to the atmosphere.
2. Description of the Related Art
Due to improvements in technology concerning exhaust gas purifying catalysts, including three-way catalysts and NOx adsorption/reduction catalysts, harmful substances contained in exhaust gases from automobiles are being gradually decreased to very low levels. However, since exhaust gas purifying catalysts are used to purify exhaust gases by oxidation or reduction of harmful substances contained in the exhaust gases by catalytic activities of catalytic metals (e.g., platinum (Pt)), they disadvantageously remain inactive at a temperature less than the activation temperature of the catalytic metals.
Specifically, harmful substances contained in exhaust gases are emitted without being purified for several tens of seconds until the temperature of an exhaust gas purifying catalyst is increased above the activation temperature of a catalytic metal immediately after start-up of an engine. In particular, during the winter time, the emission of unpurified harmful substances is often extensive for a long period of time.
The activation temperature of a catalytic metal, at which the catalytic activity of the catalytic metal takes place, varies depending on the kind of substances contained in exhaust gases to be purified. For example, the activation temperature of NOx, at which NOx can be purified, is higher than the activation temperatures of HC and CO, at which HC and CO can be purified. Accordingly, the emission time of NOx is longer than that of HC and CO.
Thus, it is contemplated that the emission of NOx to the atmosphere can be suppressed by adsorbing NOx until the temperature of an exhaust gas purifying catalyst is increased above the activation temperature of a catalytic metal immediately after start-up of an engine.
For example, Japanese Unexamined Patent Publication No. 2001-198455 teaches a NOx adsorbent which comprises one metal oxide selected from oxides of Co, Fe and Ni. The NOx adsorbent adsorbs a large amount of NOx in a low-temperature region below 400C. The NOx adsorbent shows a saturated adsorption amount of NOx of 10×10−5 mol/g or more in gases at 40° C. or lower, and has good NOx adsorption performance at low temperature.
Further, Japanese Unexamined Patent Publication No. 2001-289035 describes a NOx adsorbent comprising an alkali metal oxide, alkaline earth metal oxide, CO3O4, NiO2, MnO2, Fe2O3, ZrO2, and zeolite. This patent publication describes that the NOx adsorbent can adsorb NOx contained in exhaust gases usually in low to intermediate temperature regions.
However, these NOx adsorbents may have a low adsorptivity for NOx at ambient temperature in a range of room temperature, and have limitations in that NOx is emitted to the atmosphere until the temperature of an exhaust gas purifying catalyst reaches the activation temperature of a catalytic metal.
The present invention has been made in view of the above limitations, and is directed to provide a NOx adsorbent capable of adsorbing a sufficient amount of NOx even at ambient temperature in a range of room temperature.
In accordance with an aspect of the present invention, there is provided an ambient temperature NOx adsorbent comprising a support and a metal supported on the support (hereinafter, referred to simply as a ‘supported metal’) wherein the support comprises at least one metal oxide selected from oxides of Co, Fe, Cu, Ce, Mn, and a combination thereof (hereinafter, referred to simply as a ‘selected metal oxide’) and the supported metal comprises at least one metal selected from Cu, Co, Ag, Pd, and a combination thereof with the condition that the support includes the metal different from the supported metal.
In one embodiment, the supported metal can be one metal selected from Ag and Pd.
In one embodiment, the selected metal oxide can be selected from oxides of Co, Fe, Ce, and a combination thereof.
In one embodiment, the supported metal is supported in an amount of about 1 to 20 parts by weight with respect to 100 parts by weight of the selected metal oxide.
The above and other objects, features and other advantages of the present invention will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
The oxidation number of at least one metal oxide selected from oxides of Co, Fe, Cu, Ce, Mn, and a combination thereof is easily changed and has oxygen absorptive/emissive properties. At least one supported metal selected from Cu, Co, Ag, Pd, and a combination thereof has an oxidative activity and is highly adsorptive to NO. The supported metal is converted to its peroxidized form by oxygen supplied from the selected metal oxide. Accordingly, as shown in
Accordingly, the ambient temperature NOx adsorbent according to the embodiment of the present invention can adsorb NO present in an atmosphere in a very efficient manner, and can considerably suppress the emission of NOx until the temperature of an exhaust gas purifying catalyst reaches a certain range of the activation temperature of a catalytic metal after start-up of an engine.
The ambient temperature NOx adsorbent comprises a support containing a selected metal oxide and a supported metal supported on the selected metal oxide. The selected metal oxide includes at least one metal oxide selected from oxides of Co, Fe, Cu, Ce, Mn, and a combination thereof. Particularly, at least one metal oxide selected from oxides of Co, Fe, Ce, and a combination thereof exhibits very high NOx adsorption performance due to its ease of changeability of the oxidation number and high oxygen emissive power.
Although the support includes the selected metal oxide only in the preset embodiment, the support may further contain another oxide selected from alumina, zirconia, titania, silica, zeolite, and other oxides. Since the amount of NOx adsorbed per unit volume is decreased with increasing amount of the other oxide, the amount of the other oxide is preferably as small as possible.
The supported metal includes at least one metal selected from Cu, Co, Ag, Pd, and a combination thereof, and is different from the metal composing the selected metal oxide. As the supported metal, particularly preferred is Pd or Ag. Pd or Ag is highly oxidative to NO. Particularly, Pd is much highly oxidative to NO than others because it is likely to be converted to a highly peroxidized form. Ag is believed to have high affinity to NO. Accordingly, the use of either Pd or Ag as the supported metal is advantageous in terms of improvement in NOx adsorption performance.
The supported metal is required to be supported on the selected metal oxide. In the case where an oxide other than the selected metal oxide is contained in the support, the supported metal may be supported on the additional oxide.
The supported metal is preferably supported in an amount of about 1 to 20 parts by weight with respect to 100 parts by weight of the selected metal oxide. If the supported metal is supported in an amount of less than 1 part by weight, the NOx adsorption performance of the adsorbent according to the present embodiment is likely to be reduced to a level similar to that of the conventional NOx adsorbent. Meanwhile, since the NOx adsorption performance of the adsorbent according to the present embodiment is usually saturated in an amount of 20 parts by weight of the supported metal, the addition of the supported metal in an amount exceeding 20 parts by weight may result in a plateau of the NOx adsorption performance.
The support of the supported metal on the selected metal oxide is achieved by dissolving a compound containing the supported metal in a certain solution, impregnating the selected metal oxide with a predetermined amount of the resultant solution, and calcining the impregnated metal oxide. Alternatively, the supported metal may be supported on the selected metal oxide by co-precipitating an aqueous solution of a nitrate of the supported metal and a nitrate of the compositional metal of the selected metal oxide to prepare an oxide precursor, and calcining the oxide precursor.
The NOx adsorbent according to the embodiment of the present invention can be disposed upstream or downstream of an exhaust gas purifying catalyst, e.g., a three-way catalyst or a NOx adsorption/reduction catalyst, in an exhaust gas passage. For example, if the NOx adsorbent comprises CeO2 as a support and Pd as a supported metal, NOx begins to separate from the NOx adsorbent at around 300° C. and all NOx are emitted at a temperature of about 500° C. or higher. Accordingly, when the NOx adsorbent is disposed upstream of an exhaust gas purifying catalyst in an exhaust gas passage, NOx is emitted from the NOx adsorbent at a temperature (300° C. or higher) of exhaust gases, introduced into the exhaust gas purifying catalyst, which is already heated above the activation temperature of the catalyst, and purified by the exhaust gas purifying catalyst.
On the other hand, when the NOx adsorbent is disposed downstream of an exhaust gas purifying catalyst, NOx emitted from the NOx adsorbent after the temperature of exhaust gases reaches about 300° C. or higher is preferably returned upstream of the exhaust gas purifying catalyst, and purified by the exhaust gas purifying catalyst.
Hereinafter, the present invention will be explained in detail with reference to the following examples, including comparative examples and test examples.
A Fe2O3 powder was impregnated with a predetermined amount of an aqueous solution of palladium nitrate having a given concentration, evaporated to dryness at about 120° C. for about 2 hours, and calcined at about 500° C. for about 2 hours to prepare a NOx adsorbent powder. In the present experimental embodiment of the present invention, an amount of the Pd supported on the Fe2O3 powder was about 5% by weight.
The NOx adsorbent powder was pelletized by a prescribed process, and then a specified amount of the pellets was filled in an evaluation device. After N2 gas containing about 100 ppm NO was circulated at room temperature for about 8 minutes, the amount of the NO adsorbed to the NOx adsorbent powder was measured using a system for analysis of exhaust gases from automobiles. The results are shown in
Substantially the same procedure described in Example 1 was performed, with one difference in that only the Fe2O3 powder (NO Pd) was pelletized by a prescribed process. The results are shown in
A NOx adsorbent powder was prepared substantially in the same manner as in Example 1 with one difference in that a CeO2 powder was used instead of the Fe2O3 powder. The amount of NO adsorbed to the NOx adsorbent powder was measured in accordance with the procedure described in Example 1. The results are shown in
A NOx adsorbent powder was prepared substantially in the same manner as in Example 1 with two differences in that a CeO2 powder was used instead of the Fe2O3 powder, and an aqueous solution of silver nitrate was used instead of the aqueous solution of palladium nitrate. The Ag supported on the CeO2 powder had an amount of about 5% by weight. The amount of NO adsorbed to the NOx adsorbent powder was measured in accordance with the procedure described in Example 1. The results are shown in
Substantially the same procedure described in Example 1 was performed, with one difference in that only the CeO2 powder (NO Pd) used in Example 2 was pelletized by a prescribed process. The results are shown in
A NOx adsorbent powder was prepared substantially in the same manner as in Example 1 with one difference in that a CO3O4 powder was used instead of the Fe2O3 powder. The amount of NO adsorbed to the NOx adsorbent powder was measured in accordance with the procedure described in Example 1. The results are shown in
Substantially the same procedure described in Example 1 was performed with one difference in that only the CO3O4 powder (NO Ag) used in Example 4 was pelletized by a prescribed process. The results are shown in
As is evident from the graph of
Three CeO2—ZrO2 composite oxide powders having different Ce-to-Zr molar ratios of about 0.75, 0.45 and 0.39, and an Al2O3 powder were prepared, and then about 5% by weight of Pd was supported thereon in accordance with the procedure described in Example 1. The state of the Pd supported on the oxide metal powders was observed by XPS. The results are shown in
The graph of
FT-IR spectra of the NOx adsorbents prepared in Example 4 and Comparative Example 3 were taken after adsorption of NO to the NOx adsorbents in accordance with the procedure described in Example 1. The spectra are shown in
Major peaks observed in the spectrum of the NOx adsorbent prepared in Comparative Example 3 were absorption peaks (about 1400 cm−1, 1040±20 cm−1 and 825 cm−1) corresponding to the presence of NO3− free ions, absorption peaks (about 1410±10 cm−1, 1340±10 cm−1 and 835±10 cm−1) corresponding to Co—NO2 bonds, and absorption peaks (about 1330 cm−1, 1260 cm−1 and 830 cm−1) corresponding to the presence of ONO− free ions.
On the other hand, major peaks observed in the NOx adsorbent prepared in Example 4 were absorption peaks (about 1490±10 cm−1, 1280±10 cm−1, 1010 cm−1 and 800 cm−1) corresponding to Co—O—NO2 bonds.
In conclusion, the state of NO adsorbed to each of the NOx adsorbents varies according to whether or not Pd is supported on each of the metal oxides. The observation of the absorption peak corresponding to Co—O—NO2 bonds in the NOx adsorbent prepared in Example 4 indicates that NO was oxidized to NO2, which was subsequently adsorbed to the metal oxide even in the absence of oxygen.
On the basis of the results of Test Example 1, the Pd was converted to a peroxidized form (i.e. PdO2) by capturing oxygen from the CO3O4. NO was oxidized to NO2 by capturing the oxygen from the Pd which is in a peroxidized form, and then the NO2 was adsorbed to the NOx adsorbent. This NOx adsorption mechanism of the NOx adsorbent is illustrated in
While the present invention has been described with respect to the specific embodiments, it will be apparent to those skilled in the art that various changes and modifications may be made without departing from the spirit and scope of the invention as defined in the following claims.
Number | Date | Country | Kind |
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2005-357506 | Dec 2005 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2006/324143 | 11/28/2006 | WO | 00 | 6/6/2008 |