WO2019130849A1 - ガスセンサ素子およびガスセンサ - Google Patents
ガスセンサ素子およびガスセンサ Download PDFInfo
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- WO2019130849A1 WO2019130849A1 PCT/JP2018/041529 JP2018041529W WO2019130849A1 WO 2019130849 A1 WO2019130849 A1 WO 2019130849A1 JP 2018041529 W JP2018041529 W JP 2018041529W WO 2019130849 A1 WO2019130849 A1 WO 2019130849A1
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- gas sensor
- sensor element
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- rhodium
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N27/00—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
- G01N27/26—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating electrochemical variables; by using electrolysis or electrophoresis
- G01N27/403—Cells and electrode assemblies
- G01N27/406—Cells and probes with solid electrolytes
- G01N27/407—Cells and probes with solid electrolytes for investigating or analysing gases
- G01N27/4075—Composition or fabrication of the electrodes and coatings thereon, e.g. catalysts
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N27/00—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
- G01N27/26—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating electrochemical variables; by using electrolysis or electrophoresis
- G01N27/403—Cells and electrode assemblies
- G01N27/406—Cells and probes with solid electrolytes
- G01N27/407—Cells and probes with solid electrolytes for investigating or analysing gases
- G01N27/4077—Means for protecting the electrolyte or the electrodes
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N27/00—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means
- G01N27/26—Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating electrochemical variables; by using electrolysis or electrophoresis
- G01N27/403—Cells and electrode assemblies
- G01N27/406—Cells and probes with solid electrolytes
- G01N27/407—Cells and probes with solid electrolytes for investigating or analysing gases
- G01N27/409—Oxygen concentration cells
Definitions
- the present disclosure relates to a gas sensor element and a gas sensor including a solid electrolyte body and a pair of electrodes.
- Patent Document 1 describes a gas sensor element including a solid electrolyte body extending in the axial direction, a detection electrode and a reference electrode provided on the solid electrolyte body, and a catalyst layer covering at least a part of the detection electrode. .
- One embodiment of the present disclosure includes a solid electrolyte body containing ZrO 2 having oxygen ion conductivity, a measurement electrode disposed on the solid electrolyte body and exposed to a gas to be measured, and a reference gas disposed on the solid electrolyte body And a reference electrode exposed to the light to detect a specific gas contained in the gas to be measured.
- the gas sensor element of the present disclosure includes a catalyst layer formed to cover at least a part of the measurement electrode.
- the catalyst layer contains rhodium and at least one noble metal other than rhodium.
- the content of rhodium relative to the total noble metal contained in the catalyst layer is 30 mol% or more and less than 100 mol%, preferably 55 mol% or more and 90 mol% or less, more preferably 60 mol% or more and 85 mol% or less I assume.
- the gas sensor element of the present disclosure thus configured can suppress a decrease in sensor output caused by using the gas sensor element for a long time, and can improve the durability of the gas sensor element.
- a porous protective layer covering at least a part of the catalyst layer may be provided.
- the gas sensor element of the present disclosure can prevent the catalyst layer from being directly exposed to the gas to be measured, and can suppress the deterioration of the catalyst layer.
- Another aspect of the present disclosure is a gas sensor including the gas sensor element of one aspect of the present disclosure and a holding member that holds the gas sensor element.
- the gas sensor of the present disclosure thus configured is a gas sensor provided with the gas sensor element of one aspect of the present disclosure, and can obtain the same effects as the gas sensor element of the present disclosure.
- FIG. 1 It is sectional drawing which shows the structure of the oxygen sensor of 1st Embodiment. It is a fragmentary sectional view showing composition of a gas sensor element of a 1st embodiment. It is a perspective view of a plate type gas sensor element of a 2nd embodiment. It is a typical disassembled perspective view of a plate type gas sensor element of a 2nd embodiment. It is the elements on larger scale of the tip side of the plate type gas sensor element of a 2nd embodiment. It is a fragmentary sectional view which shows the structure of the gas sensor element of another embodiment.
- the oxygen sensor 1 of this embodiment is provided with the gas sensor element 2, the ceramic heater 3, and the casing 4 as shown in FIG. In FIG. 1, it is shown that the front end side of the oxygen sensor 1 is the lower side, and the rear end side is the upper side.
- the gas sensor element 2 is formed in a bottomed cylindrical shape that extends in the direction of the axis O (hereinafter, an axial direction DA) by a solid electrolyte body mainly composed of ZrO 2 and whose tip is closed.
- the ceramic heater 3 is formed in a rod shape, and is disposed in the gas sensor element 2 to heat the gas sensor element 2.
- the casing 4 is a member for housing the internal structure of the oxygen sensor 1 and fixing the oxygen sensor 1 to a mounting portion such as an exhaust pipe of a vehicle.
- the casing 4 holds the gas sensor element 2 and extends to the upper portion of the metal shell 5 so as to project the detection portion 2a on the tip side thereof inside the exhaust pipe etc. And an outer cylinder 6 forming a space.
- the metal shell 5 has a cylindrical main body.
- the metal shell 5 is internally provided with a support member 51 for supporting the gas sensor element 2 from below, a filling member 52 made of talc powder filled on the upper portion of the support member 51, a sleeve 53 for pressing the filling member 52 from above To accommodate.
- a step 54 projecting inward is provided, and the support member 51 is supported by the step 54 via the packing 55, so that the gas sensor element is obtained. 2 is supported from below.
- the filling member 52 is disposed between the inner peripheral surface of the metal shell 5 on the upper side of the support member 51 and the outer peripheral surface of the gas sensor element 2, and the cylindrical sleeve 53 and the packing 56 are sequentially arranged on the upper side of the filling member 52.
- the rear end portion of the metal shell 5 is crimped inward (that is, downward in FIG. 1).
- the filling member 52 is pressurized and filled, and the gas sensor element 2 is firmly fixed to the metal shell 5.
- a metal protector 57 having a plurality of holes is attached by welding to the outer periphery on the front end side of the metal shell 5 while covering the protruding portion of the gas sensor element 2.
- the protector 57 has a double structure, and includes an outer protector 58 and an inner protector 59.
- the bottomed cylindrical outer protector 58 is disposed outside, and the bottomed cylindrical inner protector 59 is disposed inside.
- the outer cylinder 6 is attached to the metal shell 5 by welding in a state where the upper portion of the metal shell 5 is fitted into the tip end opening.
- the separator 7 has a flange portion 71 projecting radially outward on an outer peripheral surface near the axial center.
- the separator 7 is held inside the outer cylinder 6 via a metal cylindrical holding member 8 locked to the flange portion 71.
- the separator 7 is provided with a plurality of insertion holes 74 penetrating from the rear end surface 72 toward the tip end surface 73 and a recess 75 formed in the tip end surface 73 so as to be able to accommodate the rear end portion 31 of the ceramic heater 3. .
- the separator 7 includes a metal terminal 9 extending from the outer peripheral surface of the rear end of the gas sensor element 2 to the tip of the lead wire 11 and a metal terminal 10 extending from the inner peripheral surface of the rear end of the gas sensor element 2 to the tip of the lead wire 12 They are accommodated in different insertion holes 74 to maintain the insulation between the metal terminal 9 and the metal terminal 10 and the insulation between the metal terminals 9 and 10 and the outer cylinder 6.
- the rear end opening of the outer cylinder 6 is closed by a grommets 13 made of fluorocarbon resin, and lead wires 11 and 12 are disposed through the grommet 13.
- the gas sensor element 2 has a bottomed cylindrical shape in which the tip end portion 21 is closed, and includes a cylindrical element main body 22 extending in the axial direction DA.
- An element collar portion 23 protruding radially outward along the circumferential direction is formed on the outer periphery of the element main body 22.
- an outer electrode 24 is formed on the outer peripheral surface of the element main body 22 at the tip portion 21 of the gas sensor element 2.
- the outer electrode 24 is an electrode in which Pt or a Pt alloy is formed porous. Further, on the outer peripheral surface of the element body 22, a not-shown lead portion extending from the outer electrode 24 toward the rear end side of the gas sensor element 2 is formed.
- An inner electrode 25 is formed on the inner peripheral surface of the element body 22 at the tip 21 of the gas sensor element 2.
- the inner electrode 25 is an electrode in which Pt or a Pt alloy is formed porous. Further, on the inner peripheral surface of the element body 22, a not-shown lead portion extending from the inner electrode 25 toward the rear end side of the gas sensor element 2 is formed.
- the outer electrode 24 and the inner electrode 25 are disposed so as to sandwich the element body 22 at the tip 21 of the gas sensor element 2.
- the element body 22 and the pair of electrodes i.e., the outer electrode 24 and the inner electrode 25
- a gas limiting layer 26 covering the outer electrode 24 is formed on the outer peripheral surface of the element body 22 in a region from the tip 21 of the gas sensor element 2 to the vicinity of the element flange 23.
- the gas limiting layer 26 is a layer in which a ceramic such as spinel is porously formed, and is formed by thermal spraying. The gas limiting layer 26 limits the amount of exhaust gas flowing into the outer electrode 24.
- a porous protection layer 27 is formed at the tip portion 21 of the gas sensor element 2 to cover the outer electrode 24 with the gas limiting layer 26 interposed therebetween.
- the porous protective layer 27 comprises an inner protective layer 28 and an outer protective layer 29.
- the inner protective layer 28 is formed to extend from the front end 21 of the gas sensor element 2 to the rear end side of the outer electrode 24.
- the inner protective layer 28 can be formed, for example, by bonding one or more ceramic particles selected from the group of alumina, spinel, zirconia, mullite, zircon and cordierite by firing or the like.
- the outer protective layer 29 is formed to extend from the front end portion 21 of the gas sensor element 2 to the rear end side of the inner protective layer 28 and to cover the inner protective layer 28.
- the outer protective layer 29 can be formed, for example, by firing one or more ceramic particles selected from the group of alumina, spinel, zirconia, mullite, zircon and cordierite.
- the outer protective layer 29 contains platinum (Pt) and rhodium (Rh). Platinum and rhodium function as catalysts for promoting the combustion of the unburned gas components contained in the exhaust gas.
- Platinum and rhodium function as catalysts for promoting the combustion of the unburned gas components contained in the exhaust gas.
- the outer protective layer 29 can have a catalytic function of both the oxidation ability of platinum and the reduction ability of rhodium.
- the content of rhodium relative to the entire precious metal that is, platinum and rhodium
- the content of rhodium relative to the entire precious metal is 30 mol% or more and less than 100 mol%, preferably 55 mol% or more and 90 mol% or less, more preferably 60 mol% The above is 85 mol% or less.
- a material of a solid electrolyte for example, partially stabilized zirconia in which 5 mol% of yttria (Y 2 O 3 ) is added to zirconia (ZrO 2 )
- Y 2 O 3 partially stabilized zirconia in which 5 mol% of yttria
- ZrO 2 zirconia
- the material powder is obtained by dry granulation by spray drying. Then, the material powder is pressed and then cut to obtain a green compact. Furthermore, the green compact is fired at, for example, 1500 ° C. to obtain a device body 22.
- the inner electrode 25 is formed on the inner peripheral surface of the element body 22 by electroless plating. Further, the outer electrode 24 is formed on the outer peripheral surface of the element body 22 by electroless plating.
- the gas limiting layer 26 is formed by thermal spraying to cover the outer electrode 24.
- a paste containing the material of the inner protective layer 28 is applied on the gas limiting layer 26 and fired. Further, a paste containing the material of the outer protective layer 29 is applied on the inner protective layer 28 and fired.
- the portion where the outer protective layer 29 is formed is immersed in a mixed solution of a Rh solution and a Pt solution, and then subjected to a drying process and a baking step.
- the gas sensor element 2 can be manufactured by carrying out each of the above steps.
- the engine high temperature endurance is a test in which a plurality of cycles are performed with 30 minutes at an engine rotation speed of 3400 rpm, then 20 minutes at an engine rotation speed of 2800 rpm, and then 10 minutes at idling (engine rotation number 700 rpm). This test shows 50 cycles of test results.
- the deteriorated catalyst is attached to the exhaust pipe of the automobile, and the oxygen sensor 1 is attached to the downstream of the deteriorated catalyst in the exhaust pipe, and the excess oxygen ratio ⁇ is less than 1 (ie, rich).
- the sensor output was measured.
- the gas sensor element 2 in which the content of rhodium with respect to the entire noble metal in the outer protective layer 29 is set to 10, 20, 30, 40, 50, 55, 60, 65, 70, 80, 85, 90, 95 mol% was used.
- the gas sensor element which does not contain Rh was used as a comparative example.
- the rhodium content relative to the total noble metal was adjusted by changing the proportions of the Rh solution and the Pt solution in the above mixture.
- Table 1 shows the evaluation results of the sensor output after engine high temperature endurance.
- Table 1 shows the evaluation results of the sensor output after engine high temperature endurance.
- Table 1 shows the evaluation results of the sensor output after engine high temperature endurance.
- Table 1 shows the evaluation results of the sensor output after engine high temperature endurance.
- Table 1 shows the evaluation results of the sensor output after engine high temperature endurance.
- Table 1 shows the evaluation results of the sensor output after engine high temperature endurance.
- Table 1 shows the evaluation results of the sensor output after engine high temperature endurance.
- an element body 22 containing ZrO 2 having oxygen ion conductivity, an outer electrode 24 disposed on the element body 22 and exposed to the exhaust gas, and disposed on the element body 22 serve as a reference gas.
- the outer protective layer 29 contains rhodium and platinum and is for the entire noble metal. Examples 7 to 11 in which the rhodium content is 60 mol% or more and 85 mol% or less are ⁇ , and it has been confirmed that the durability is excellent.
- Example 6 with a rhodium content of 55 mol% and Example 12 with a 90 mol% turned out to be ⁇ , confirming that the durability is good.
- Examples 3 to 5 and Example 13 having a rhodium content of 30 mol% or more and 50 mol% or less are ⁇ , and it was confirmed that there is no problem in practical use.
- Comparative Examples not containing rhodium and Examples 1 and 2 in which the rhodium content is 10 mol% or more and 20 mol% or less are x, and it was confirmed that the durability is poor.
- the content of rhodium with respect to the entire precious metal contained in the catalyst layer is 30 mol% or more and less than 100 mol%, preferably 55 mol% or more and 90 mol% or less, more preferably 60 mol% or more and 85 mol% or less I assume.
- the gas sensor element 2 configured in this manner can suppress a decrease in sensor output caused by using the gas sensor element 2 for a long time, and can improve the durability of the gas sensor element 2.
- the element main body 22 corresponds to a solid electrolyte body
- the outer electrode 24 corresponds to a measurement electrode
- the inner electrode 25 corresponds to a reference electrode
- the exhaust gas corresponds to a measurement gas
- the outer protective layer 29 corresponds to a catalyst layer.
- the plate-type gas sensor element 100 includes an element body 101 and a porous protective layer 120.
- the element main body 101 includes an oxygen concentration detection cell 130, a reinforcing protection layer 111, an air introduction hole layer 107, and a lower surface layer 103.
- illustration of the porous protective layer 120 is abbreviate
- the oxygen concentration detection cell 130 includes a reference electrode 104, a solid electrolyte body 105, and a measurement electrode 106.
- the reference electrode 104 and the measurement electrode 106 are disposed so as to sandwich the solid electrolyte body 105.
- the reference electrode 104 includes a reference electrode portion 104a and a reference lead portion 104L.
- the reference lead portion 104L is formed to extend along the longitudinal direction of the solid electrolyte body 105 from the reference electrode portion 104a.
- the measurement electrode 106 includes a measurement electrode unit 106a and a detection lead unit 106L.
- the detection lead portion 106L is formed to extend along the longitudinal direction of the solid electrolyte body 105 from the measurement electrode portion 106a.
- the reinforcing and protective layer 111 includes a reinforcing portion 112 and an electrode protecting portion 113a.
- the reinforcing portion 112 is a plate-like member for protecting the solid electrolyte body 105 by sandwiching the detection lead portion 106L with the solid electrolyte body 105.
- the reinforcing portion 112 is formed of the same material as the solid electrolyte body 105, and includes a protective portion disposition space 112a penetrating in the thickness direction of the plate.
- the electrode protection portion 113a is formed of a porous material, and is disposed in the protection portion disposition space 112a.
- the electrode protection unit 113 a protects the measurement electrode unit 106 a by sandwiching the measurement electrode unit 106 a with the solid electrolyte body 105.
- the plate type gas sensor element 100 of the present embodiment is a so-called oxygen concentration and electromotive force type gas sensor, and detects the oxygen concentration using the value of the voltage (that is, the electromotive force) generated between the electrodes of the oxygen concentration detection cell 130. can do.
- the lower surface layer 103 and the air introduction hole layer 107 are stacked on the reference electrode 104 so as to sandwich the reference electrode 104 with the solid electrolyte body 105.
- the air introduction hole layer 107 is formed in a substantially U shape whose rear end side is open.
- An internal space surrounded by the solid electrolyte body 105, the air introduction hole layer 107, and the lower surface layer 103 is an air introduction hole 107h.
- the reference electrode 104 is disposed so as to be exposed to the air introduced into the air introduction hole 107 h.
- the element main body 101 is a laminate in which the lower surface layer 103, the air introduction hole layer 107, the reference electrode 104, the solid electrolyte body 105, the measurement electrode 106, and the reinforcing protection layer 111 are stacked.
- the element body 101 is formed in a plate shape.
- the terminal of the reference lead portion 104L is electrically connected to the detection element side pad 121 on the solid electrolyte body 105 through a conductor formed in the through hole 105a provided in the solid electrolyte body 105.
- the dimension of the reinforcing and protective layer 111 in the axial direction (that is, the left and right direction in FIG. 4) is formed shorter than the end of the detection lead portion 106L.
- the terminals of the detection element side pad 121 and the detection lead portion 106L are exposed to the outside from the rear end of the reinforcing protection layer 111, and are electrically connected to external terminals (not shown) for external circuit connection.
- the porous protective layer 120 is provided so as to cover the entire circumference of the tip side of the element body 101.
- the porous protective layer 120 is formed to include the tip end face of the element body 101 and to extend to the rear end side along the axial direction (that is, the left and right direction in FIG. 5).
- the porous protective layer 120 is formed in the axial direction so as to cover at least the region including the reference electrode portion 104 a and the measurement electrode portion 106 a in the element body 101.
- the plate type gas sensor element 100 may be exposed to poisonous substances such as silicon and phosphorus contained in the exhaust gas, and water droplets in the exhaust gas may be attached. Therefore, by covering the outer surface of the plate type gas sensor element 100 with the porous protective layer 120, it is possible to suppress capture of a poisoning substance or direct contact of water droplets with the plate type gas sensor element 100.
- the solid electrolyte body 105 is composed of a partially stabilized zirconia sintered body obtained by adding yttria (Y 2 O 3 ) or calcia (CaO) as a stabilizer to zirconia (ZrO 2 ).
- the solid electrolyte body 105 is mainly composed of zirconia, and 50 to 83.3% by mass of the zirconia is tetragonal zirconia.
- the reference electrode 104 and the measurement electrode 106 are mainly composed of Pt and contain monoclinic zirconia.
- the reference electrode 104 and the measurement electrode 106 may contain a ceramic component.
- the “main component” refers to a component that exceeds 50% by mass with respect to all components constituting the target portion (that is, the solid electrolyte body 105, the measurement electrode 106, and the like).
- the porous protective layer 120 At least a portion covering the measurement electrode 106 is formed of spinel (MgAl 2 O 4 ) and titania (TiO 2 ), and contains platinum (Pt) and rhodium (Rh). There is.
- the content of rhodium with respect to the entire precious metal that is, platinum and rhodium
- the noble metal functions as a catalyst for promoting the combustion of the unburned gas component contained in the exhaust gas.
- at least a portion covering the measurement electrode 106 refers to a portion overlapping the measurement electrode 106 in the stacking direction of the element main body 101.
- the plate-type gas sensor element 100 includes the solid electrolyte body 105 containing ZrO 2 having oxygen ion conductivity, the measurement electrode 106 disposed on the solid electrolyte body 105 and exposed to the exhaust gas, and the solid electrolyte body 105. And a reference electrode 104 exposed to the atmosphere to detect oxygen contained in the exhaust gas.
- the plate type gas sensor element 100 includes a porous protective layer 120 formed to cover the measurement electrode 106.
- the porous protective layer 120 contains rhodium and platinum. Further, in the porous protective layer 120, the content of rhodium with respect to the entire noble metal contained in the porous protective layer 120 is 30 mol% or more and less than 100 mol%, preferably 55 mol% or more and 90 mol% or less, more preferably 60 mol% The above is 85 mol% or less.
- the plate-type gas sensor element 100 configured as described above can obtain the same effects as the gas sensor element 2 of the first embodiment.
- the plate type gas sensor element 100 corresponds to a gas sensor element
- the solid electrolyte body 105 corresponds to a solid electrolyte body
- the porous protective layer 120 corresponds to a catalyst layer.
- this indication is not limited to the said embodiment, It can deform
- the gas sensor provided with the cylindrical gas sensor element was demonstrated as a gas sensor in the said 1st Embodiment, it may be a gas sensor provided with the plate type gas sensor element of the said 2nd Embodiment.
- the gas sensor provided with a plate type gas sensor element is known, the description about a detailed structure is abbreviate
- the said embodiment demonstrated the oxygen concentration detection gas sensor, it is not restricted to this,
- gas sensors such as NOx detection
- the porous protective layer has the inner protective layer and the outer protective layer, and the outer protective layer has the catalyst.
- the present invention is not limited to this.
- the inner protective layer has the catalyst Both the inner and outer protective layers may have a catalyst, or the porous protective layer may have a catalyst in one layer.
- the porous protective layer may cover at least a part of the measurement electrode without covering the entire outer periphery of the gas sensor element.
- the outer protective layer 29 contains platinum and rhodium
- the noble metal other than rhodium may contain a noble metal other than platinum.
- Noble metals other than platinum include palladium (Pd), ruthenium (Ru) and iridium (Ir). Palladium, ruthenium and iridium all have the same catalytic function as platinum.
- the outer protective layer 29 may contain two or more noble metals other than rhodium.
- the outer protective layer 29 may contain platinum, palladium and rhodium.
- the rhodium content relative to the entire precious metals is defined as in the present disclosure, and the same effect as in the case where rhodium and platinum are included. Is obtained.
- the outer protective layer 29 contains platinum and rhodium.
- the catalyst layer containing platinum and rhodium is porous-protected. It may be covered with a layer.
- the outer electrode 24, the gas limiting layer 201, the catalyst layer 202, and the porous protective layer 203 are formed on the outer peripheral surface of the element body 22.
- the gas limiting layer 201 is a layer in which a ceramic such as spinel is formed in a porous manner, as in the case of the gas limiting layer 26.
- the gas limiting layer 201 is formed to extend from the front end portion 21 of the gas sensor element 2 to the rear end side of the outer electrode 24 so as to cover the outer electrode 24.
- the catalyst layer 202 is a layer formed of metal oxide particles supporting a noble metal and granules formed of metal oxide particles supporting a noble metal.
- the catalyst layer 202 is formed to extend from the front end portion 21 of the gas sensor element 2 to the rear end side of the gas restriction layer 201 so as to cover the gas restriction layer 201.
- the catalyst layer 202 contains platinum and rhodium as noble metals.
- the content of rhodium relative to the entire precious metal that is, platinum and rhodium
- the content of rhodium relative to the entire precious metal is 30 mol% or more and less than 100 mol%, preferably 55 mol% or more and 90 mol% or less, more preferably 60 mol% or more % Or less.
- the porous protective layer 203 is formed to extend from the front end 21 of the gas sensor element 2 to the rear end side of the catalyst layer 202.
- the porous protective layer 203 can be formed, for example, by bonding one or more ceramic particles selected from the group of alumina, spinel, zirconia, mullite, zircon and cordierite by firing or the like.
- the gas sensor element 2 configured in this manner includes the porous protective layer 203 which covers the catalyst layer 202 and in which the exhaust gas can pass.
- the gas sensor element 2 can prevent the catalyst layer 202 from being directly exposed to the exhaust gas, and can suppress the deterioration of the catalyst layer 202.
- each of the above embodiments may be shared by a plurality of components, or the function of a plurality of components may be performed by one component.
- part of the configuration of each of the above embodiments may be omitted.
- at least a part of the configuration of each of the above-described embodiments may be added to or replaced with the configuration of the other above-described embodiments.
- all the aspects contained in the technical thought specified from the wording as described in a claim are an embodiment of this indication.
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Abstract
Description
以下に本開示の第1実施形態を図面とともに説明する。
表1の結果から、酸素イオン伝導性を有するZrO2を含む素子本体22と、素子本体22上に配置されて排気ガスに晒される外側電極24と、素子本体22上に配置されて基準ガスに晒される内側電極25とを備えて、さらに、外側電極24を覆うように形成される外側保護層29を備えるガスセンサ素子2において、外側保護層29は、ロジウムと、白金とを含み、貴金属全体に対するロジウムの含有量が60mol%以上であり85mol%以下である例7から例11は◎となり、耐久性に優れることが確認できた。また、ロジウム含有量が55mol%の例6と90mol%の例12とは○となり耐久性が良いことが確認できた。さらにロジウム含有量が30mol%以上であり50mol%以下である例3から例5と95mol%の例13とは△となり、実使用上は問題がないことが確認できた。一方、ロジウムを含有しない比較例やロジウム含有量が10mol%以上であり20mol%以下である例1、例2は×となり、耐久性が悪いことが確認できた。
以下に本開示の第2実施形態を図面とともに説明する。
Claims (4)
- 酸素イオン伝導性を有する固体電解質体と、
前記固体電解質体上に配置されて被測定ガスに晒される測定電極と、
前記固体電解質体上に配置されて基準ガスに晒される基準電極と
を備えて、前記被測定ガスに含まれる特定ガスを検出するガスセンサ素子であって、
前記測定電極の少なくとも一部を覆うように形成される触媒層を備え、
前記触媒層は、ロジウムと、ロジウム以外の少なくとも1つの貴金属とを含み、
前記触媒層において、前記触媒層に含まれる貴金属全体に対するロジウムの含有量は、30mol%以上かつ100mol%より少ないガスセンサ素子。 - 請求項1に記載のガスセンサ素子であって、
前記触媒層において、前記触媒層に含まれる貴金属全体に対するロジウムの含有量は、55mol%以上であり、90mol%以下であるガスセンサ素子。 - 請求項1または請求項2に記載のガスセンサ素子であって、
前記触媒層の少なくとも一部を覆う多孔質保護層を備えるガスセンサ素子。 - 請求項1~請求項3の何れか1項に記載のガスセンサ素子と、前記ガスセンサ素子を保持する保持部材とを備えるガスセンサ。
Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE112018006622.3T DE112018006622B4 (de) | 2017-12-28 | 2018-11-08 | Gassensorelement und gassensor |
| JP2019520169A JP6880179B2 (ja) | 2017-12-28 | 2018-11-08 | ガスセンサ素子およびガスセンサ |
| CN201880080848.6A CN111480070B (zh) | 2017-12-28 | 2018-11-08 | 气体传感器元件和气体传感器 |
| US16/956,008 US12158443B2 (en) | 2017-12-28 | 2018-11-08 | Gas sensor element, and gas sensor |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2017-253970 | 2017-12-28 | ||
| JP2017253970 | 2017-12-28 |
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| Publication Number | Publication Date |
|---|---|
| WO2019130849A1 true WO2019130849A1 (ja) | 2019-07-04 |
Family
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/JP2018/041529 Ceased WO2019130849A1 (ja) | 2017-12-28 | 2018-11-08 | ガスセンサ素子およびガスセンサ |
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| US (1) | US12158443B2 (ja) |
| JP (1) | JP6880179B2 (ja) |
| CN (1) | CN111480070B (ja) |
| DE (1) | DE112018006622B4 (ja) |
| WO (1) | WO2019130849A1 (ja) |
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| JP7272250B2 (ja) * | 2019-12-04 | 2023-05-12 | 株式会社デンソー | ガスセンサおよびガスセンサ用粉末 |
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| JPH01119755A (ja) * | 1987-11-02 | 1989-05-11 | Japan Electron Control Syst Co Ltd | 内燃機関の酸素センサ |
| JPH06504367A (ja) * | 1991-01-04 | 1994-05-19 | ローベルト ボツシユ ゲゼルシヤフト ミツト ベシユレンクテル ハフツング | 気体、特に内燃機関の排ガス中の酸素含有量の測定のための、触媒活性保護層を有するセンサー及びそのようなセンサーの製法 |
| JP2010256112A (ja) * | 2009-04-23 | 2010-11-11 | Denso Corp | ガスセンサ素子、及びそれを内蔵したガスセンサ、並びにガスセンサ素子の製造方法 |
| JP2010276530A (ja) * | 2009-05-29 | 2010-12-09 | Toyota Motor Corp | 空燃比センサ |
| JP2017223495A (ja) * | 2016-06-14 | 2017-12-21 | 日本特殊陶業株式会社 | ガスセンサ素子およびガスセンサ |
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| JPS61241657A (ja) | 1985-04-19 | 1986-10-27 | Nissan Motor Co Ltd | 酸素センサ素子 |
| US5538612A (en) * | 1987-12-09 | 1996-07-23 | Ngk Spark Plug Co., Ltd. | Oxygen sensor element |
| JP4595264B2 (ja) * | 2000-10-05 | 2010-12-08 | 株式会社デンソー | 酸素センサ素子及びその製造方法 |
| EP1211508A3 (en) * | 2000-11-27 | 2004-10-27 | Kabushiki Kaisha Riken | Gas sensing and oxygen pumping device |
| US6787014B2 (en) * | 2001-10-09 | 2004-09-07 | Kabushiki Kaisha Riken | Gas-detecting element and gas-detecting device comprising same |
| JP4587473B2 (ja) * | 2004-07-22 | 2010-11-24 | 日本特殊陶業株式会社 | ガスセンサ |
| JP4923948B2 (ja) * | 2006-01-05 | 2012-04-25 | 株式会社デンソー | ガスセンサ素子 |
| JP2010256111A (ja) | 2009-04-23 | 2010-11-11 | Denso Corp | ガスセンサ素子、及びこれを内蔵したガスセンサ、並びにガスセンサ素子の製造方法 |
| JP5182321B2 (ja) * | 2010-05-13 | 2013-04-17 | 株式会社デンソー | ガスセンサ素子、及び、これを内蔵したガスセンサ |
| JP6443397B2 (ja) * | 2015-08-27 | 2018-12-26 | 株式会社デンソー | A/fセンサ、及びその製造方法 |
| JP6533140B2 (ja) | 2015-09-29 | 2019-06-19 | 日本特殊陶業株式会社 | センサ素子、センサ、センサ素子の製造方法 |
| JP6857051B2 (ja) * | 2016-04-20 | 2021-04-14 | 日本特殊陶業株式会社 | ガスセンサ素子およびガスセンサ |
| DE102017003752B4 (de) | 2016-04-20 | 2025-12-24 | Niterra Co., Ltd. | Gassensorelement und Gassensor |
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2018
- 2018-11-08 CN CN201880080848.6A patent/CN111480070B/zh active Active
- 2018-11-08 JP JP2019520169A patent/JP6880179B2/ja active Active
- 2018-11-08 US US16/956,008 patent/US12158443B2/en active Active
- 2018-11-08 DE DE112018006622.3T patent/DE112018006622B4/de active Active
- 2018-11-08 WO PCT/JP2018/041529 patent/WO2019130849A1/ja not_active Ceased
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| Publication number | Priority date | Publication date | Assignee | Title |
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| US4199425A (en) * | 1978-11-30 | 1980-04-22 | General Motors Corporation | Solid electrolyte exhaust gas sensor with increased NOx sensitivity |
| JPH01119755A (ja) * | 1987-11-02 | 1989-05-11 | Japan Electron Control Syst Co Ltd | 内燃機関の酸素センサ |
| JPH06504367A (ja) * | 1991-01-04 | 1994-05-19 | ローベルト ボツシユ ゲゼルシヤフト ミツト ベシユレンクテル ハフツング | 気体、特に内燃機関の排ガス中の酸素含有量の測定のための、触媒活性保護層を有するセンサー及びそのようなセンサーの製法 |
| JP2010256112A (ja) * | 2009-04-23 | 2010-11-11 | Denso Corp | ガスセンサ素子、及びそれを内蔵したガスセンサ、並びにガスセンサ素子の製造方法 |
| JP2010276530A (ja) * | 2009-05-29 | 2010-12-09 | Toyota Motor Corp | 空燃比センサ |
| JP2017223495A (ja) * | 2016-06-14 | 2017-12-21 | 日本特殊陶業株式会社 | ガスセンサ素子およびガスセンサ |
Also Published As
| Publication number | Publication date |
|---|---|
| US20210072180A1 (en) | 2021-03-11 |
| JP6880179B2 (ja) | 2021-06-02 |
| JPWO2019130849A1 (ja) | 2020-11-19 |
| DE112018006622T5 (de) | 2020-09-24 |
| DE112018006622B4 (de) | 2026-02-26 |
| US12158443B2 (en) | 2024-12-03 |
| CN111480070A (zh) | 2020-07-31 |
| CN111480070B (zh) | 2023-07-18 |
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