EP1347838A2 - Coating for gas sensors - Google Patents
Coating for gas sensorsInfo
- Publication number
- EP1347838A2 EP1347838A2 EP01987439A EP01987439A EP1347838A2 EP 1347838 A2 EP1347838 A2 EP 1347838A2 EP 01987439 A EP01987439 A EP 01987439A EP 01987439 A EP01987439 A EP 01987439A EP 1347838 A2 EP1347838 A2 EP 1347838A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- sensor
- electrode
- electrolyte
- coating
- gas
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Classifications
-
- 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
Definitions
- the present disclosure relates to gas sensors, and particularly to sensors with a porous protective layer for protection of the sensor electrode from poisoning.
- a sensor is used to determine the exhaust gas content for alteration and optimization of the air to fuel ratio for combustion.
- One type of sensor uses an ionically conductive solid electrolyte between porous electrodes.
- solid electrolyte sensors are used to measure oxygen activity differences between an unknown gas sample and a known gas sample.
- the unknown gas is exhaust and the known gas, (i.e., reference gas), is usually atmospheric air because the oxygen content in air is relatively constant and readily accessible.
- This type of sensor is based on an electrochemical galvanic cell operating in a potentiometric mode to detect the relative amounts of oxygen present in an automobile engine's exhaust.
- an electromotive force emf
- a gas sensor based upon this principle typically consists of an ionically conductive solid electrolyte material, a porous electrode with a porous protective overcoat exposed to exhaust gases (“exhaust gas electrode”), and a porous electrode exposed to a known gas' partial pressure (“reference electrode”).
- exhaust gas electrode a porous electrode with a porous protective overcoat exposed to exhaust gases
- reference electrode a porous electrode exposed to a known gas' partial pressure
- Sensors typically used in automotive applications use a yttria stabilized zirconia based electrochemical galvanic cell with porous platinum electrodes, operating in potentiometric mode, to detect the relative amounts of a particular gas, such as oxygen for example, that is present in an automobile engine's exhaust.
- a typical sensor has a ceramic heater attached to help maintain the sensor's ionic conductivity.
- T absolute temperature of the gas
- r oxygen partial pressure of the reference gas
- the sensor comprises a first electrode capable of sensing an exhaust gas and a second electrode capable of sensing a reference gas with an ionically conductive solid electrolyte disposed therebetween.
- High temperatures and materials such as silicon, lead and the like, present in engine components, can poison or otherwise damage the sensing electrode.
- a protective layer made of spinel or the like has conventionally been applied to the sensing electrode.
- the protective layer is designed to allow for the electrodes to sense the particular gas without inhibiting the performance of the sensor.
- a thick layer (or multiple layers) of protective coating more effectively inhibits the transmission of the poisoning materials, but at the expense of a decrease in the efficiency of the sensor.
- One conventional poison resistance technique comprises applying multiple layers of a heat resistant metal oxide to the electrode to form a protective layer.
- the multiple layers have a tendency to change the performance of the sensor and only provide limited poison protection.
- the drawbacks and disadvantages of the prior art are overcome by the coating for a gas sensor and method for making the same.
- the method for making a sensor comprises: using a sensing electrode having a first and second side and a first electrical lead in electrical communication with said sensing electrode; using a reference electrode having a first and second side and a second electrical lead in electrical communication with said reference electrode; disposing an electrolyte between said first side of sensing electrode and said first side of reference electrode; disposing a first side of a protective layer adjacent to said side of sensing electrode; mixing a metal oxide, a fugitive material, and a solvent to form a mixture; applying the mixture to a second side of said protective layer; and calcining the sensor to form said protective coating on the protective layer second side.
- Figure 1 is an expanded isometric view of one embodiment of an oxygen sensor.
- Figure 2 is a graph showing low calcium rapid age test (RAT) durability at 260°C for various sensors with hours of RAT exposure time on the X axis (hours) and rich to lean response time on the Y axis in milliseconds (ms).
- Figure 3 is graph showing the siloxane poisoning at 400°C with hours of siloxane exposure time on the X axis (hours) and rich to lean response time on the Y axis in ms.
- a protective coating for gas sensors is formed from a composition comprising a metal oxide and a fugitive material.
- a composition comprising a metal oxide and a fugitive material.
- the protective coating can be employed with any type of sensor such as a nitrogen oxide sensor, hydrogen sensor, hydrocarbon sensor, or the like.
- oxygen is the reference gas used in the description disclosed herein, it should be understood that other gases could be employed as a reference gas.
- the exhaust gas (or outer) electrode 20 and the reference gas (or inner) electrode 22 are disposed on opposite sides of, and adjacent to, an electrolyte layer 30 creating an electrochemical cell (20/30/22).
- a protective coating 31 can be disposed over the porous section 32.
- the electrolyte 30 and the porous section 32 can be disposed adjacent to, or as inserts within, layers 40, 42, respectively.
- a heater 60 disposed on a side of the reference electrode 22 opposite electrolyte layer 30 is a heater 60.
- leads which supply current to the heater and electrodes, are typically formed on the same layer as the heater/electrode to which they are in electrical communication and extend from the heater/electrode to the terminal end of the gas sensor where they are in electrical communication with the corresponding via (not shown) and appropriate contact pads (not shown).
- Insulating layers 50, 52, and protective layer 40 provide structural integrity (e.g., protect various portions of the gas sensor from abrasion and/or vibration, and the like, and provide physical strength to the sensor), and physically separate and electrically isolate various components.
- Heater 60 Disposed between the insulating layers 50, 52, is a heater 60 that is employed to maintain the sensor element at the desired operating temperature.
- Heater 60 can be any conventional heater capable of maintaining the sensor end at a sufficient temperature to facilitate the various electrochemical reactions therein.
- the heater 60 which is typically platinum, aluminum, palladium, and the like, as well as oxides, mixtures, and alloys comprising at least one of the foregoing metals, or any other conventional heater, is generally screen printed or otherwise disposed onto a substrate to a thickness of about 5 microns to about 50 microns.
- the electrolyte 30 Disposed on an opposite side of insulating layer 50 as heater 60 is the electrolyte 30.
- the electrolyte 30 can be solid or porous, can comprise the entire layer or a portion thereof, can be any material that is capable of permitting the electrochemical transfer of oxygen ions, should have an ionic/total conductivity ratio of approximately unity, and should be compatible with the environment in which the gas sensor will be utilized (e.g., up to about 1,000°C).
- Possible electrolyte materials can comprise any material conventionally employed as sensor electrolytes, including, but not limited to, zirconia which may optionally be stabilized with calcium, barium, yttrium, magnesium, aluminum, lanthanum, cesium, gadolinium, and the like, as well as combinations comprising at least one of the foregoing materials.
- the electrolyte can be alumina and/or yttrium stabilized zirconia.
- the electrolyte which can be formed via many conventional processes (e.g., die pressing, roll compaction, stenciling and screen printing, tape casting techniques, and the like), has a thickness of up to about 500 microns or so, with a thickness of about 25 microns to about 500 microns preferred, and a thickness of about 50 microns to about 200 microns especially preferred. It should be noted that the electrolyte layer 30 and porous section
- 42 can comprise an entire layer or a portion thereof; e.g., they can form the layer (i.e., 42 and 40, respectively), be attached to the layer (porous section/electrolyte abutting dielectric material), or disposed in an opening in the layer (porous section/electrolyte can be an insert in an opening in a dielectric material layer).
- the latter arrangement eliminates the use of excess electrolyte and protective material, and reduces the size of gas sensor by eliminating layers. Any shape can be used for the electrolyte and porous section, with the size and geometry of the various inserts, and therefore the corresponding openings, being dependent upon the desired size and geometry of the adjacent electrodes.
- the openings, inserts, and electrodes have a substantially compatible geometry such that sufficient exhaust gas access to the electrode(s) is enabled and sufficient ionic transfer through the electrolyte is established.
- the electrodes 20, 22, are disposed in ionic contact with the electrolyte layer 30.
- Conventional electrodes can comprise any catalyst capable of ionizing oxygen, including, but not limited to, materials such as platinum, palladium, osmium, rhodium, indium, gold, ruthenium, zirconium, yttrium, cerium, calcium, aluminum, silicon, and the like, and oxides, mixtures, and alloys comprising at least one of the foregoing catalysts.
- the electrodes 20, 22 can be formed using conventional techniques.
- a protective coating 31 can be applied to the sensing element 10. This protective coating, which may optionally coat a portion of or all of substrate layer 40 and/or support layer 52, is formed from a composition comprising a metal oxide and a fugitive material.
- Possible metal oxides can include zirconia, alumina, magnesia, titania, and the like, as well as mixtures, alloys, and combinations comprising at least one of the foregoing metal oxides, with a coating comprising alpha alumina, gamma alumina, or delta alumina, as well as combinations comprising at least one of these aluminas preferred.
- fugitive material means a material that will occupy space until the electrode is fired, thus leaving porosity in the coating. Suitable fugitive materials are accordingly those which will release at firing temperatures, and include, but are not limited to, carbon based materials, such as carbon black, graphite, non-dissolved organics, and the like, as well as combinations comprising at least one of the foregoing materials. Preferably, carbon black is used having particle sizes of about 0.02 microns ( ⁇ m) to about 0.2 ⁇ m.
- the amount of metal oxide and fugitive material used to form the protective coating 31, as well as the characteristics of those materials, is based upon the desired coating characteristics.
- the protective coating 31 preferably has a sufficient porosity with a small enough pore size to enable the passage of exhaust gases while inhibiting passage of poisoning particulates.
- the porosity can be up to about 20 %, with about 2% to about 15% preferred, and about 5% to about 12% especially preferred. Meanwhile, a pore size of than about 25 micron ( ⁇ m), with less than about 10 ⁇ m preferred and about 1 ⁇ m to about 2 ⁇ m is typically preferred.
- the thickness of the protective coating 31 is based upon the ability to filter out poisoning particulates while allowing passage of the exhaust gases to be sensed.
- the protective coating is preferably a single layer having an overall thickness of up to or exceeding about 200 ⁇ m, with a thickness of about 120 ⁇ m to about 160 ⁇ m preferred.
- the composition of the unfired protective coating 31 can be up to about 98 weight percent (wt.%) metal oxide, with up to about 10 wt.% fugitive material; with about 93 wt.% to about 97 wt.% metal oxide and about 3 wt.% to about 7 wt.% fugitive material preferred; and about 94 wt.% to about 96 wt.% metal oxide and about 4 wt.% to about 6 wt.% fugitive material especially preferred; based upon the total weight of fugitive material and metal oxide.
- the metal oxide comprises a mixture of gamma alumina and alpha alumina.
- up to about 80 wt% gamma alumina and up to about 80 wt.% alpha alumina can be employed and optionally up to about 10 wt% alumina nitrate; with about 25 wt.% to about 75 wt.% gamma alumina, about 25 wt.% to about 75 wt.% alpha alumina, and optionally up to about 5 wt.% alumina nitrate preferred; with about 43.5 wt.% to about 54.5 wt.% gamma alumina, about 43.5 wt.% to about 54.5 wt.% alpha alumina, and about 1 wt.% to about 3 wt.% alumina nitrate especially preferred.
- the gamma alumina has an agglomerate size of up to about 25 ⁇ m or so, with about 6 ⁇ m to about 14 ⁇ m preferred, while the alpha alumina preferably has a particle size of up to about 1 ⁇ m, with about 0.3 ⁇ m to about 0.5 ⁇ m especially preferred.
- the protective coating 31 can be applied to the porous protective layer in any conventional fashion using techniques such as imbibing, spraying, spray coating, painting, dipping, spin coating, vapor deposition, and the like, dipping is especially preferred.
- a solution, suspension, ink, paste, slurry, or the like is prepared by mixing the metal oxide(s) with a sufficient amount of a fugitive material, such as carbon black, in a sufficient amount of a solvent to attain the desired viscosity mixture.
- a solvents include water, nitric acid, benzoic acid, acetic acid, citric acid, and the like, as well as a combination comprising at least one of the foregoing solvents.
- the slurry is optionally dried at temperatures up to about 100°C for up to about 1 hour.
- the dried sensor is then calcined for up to about 10 hour, with less than 5 hours preferred and about 10 minutes to 60 minutes especially preferred, at a temperature sufficient to burn off the fugitive material.
- calcination is completed at temperatures up to about 1,000°C, with about 500°C to about 800°C preferred, and with about 550°C to about 650°C especially preferred.
- the following example is provided to further illustrate the coating for a gas sensor and is not intended to limit the scope thereof.
- the following example was used to prepare an exhaust sensor having a platinum electrode, yttria doped zirconia electrolyte, alumina support layers, an alumina protective layer, and a protective coating.
- An electrolyte was disposed in an alumina support between two alumina supports with a platinum electrode screen printed on each support such that the electrodes were in intimate contact with the electrolyte. Electrical leads were disposed across the supports from the electrodes to contacts (vias) disposed at an end of the sensor opposite the electrodes. A protective layer, also disposed in an alumina support, was then oriented in physical contact with the sensing electrode, while the reference electrode was disposed in contact with a series of alumina support layers, with a heater disposed between the last two support layers.
- a slurry was then prepared by mixing 4,900 grams (g) of gamma alumina, 4,900 g of alpha alumina, 200 g of alumina nitrate and 490 g of carbon black with water.
- the sensor was dipped in the slurry and dried at 60°C for about 10 minutes.
- the sensor was then calcined at 650°C for about 1.5 hours.
- Figures 2 and 3 graphically illustrate the low calcium rapid age and the siloxane poisoning tests, respectively.
- the low density protective coating sensor maintained a rich to lean time (RTL), (under conditions of 260°C, 0.5 hertz (Hz), and an air to fuel ratio of +/- 0.3 from stoichiometry) of less than about 110 milliseconds (ms) (lines 202) for 400 hours of exposure to the high temperature cycling of the RAT test.
- RTL rich to lean time
- ms milliseconds
- Figure 3 illustrates that the sensor prepared in accordance with the above example maintained a substantially better rich to lean response time for the entire 100 hours as compared to the comparative sensors also tested.
- Sensors prepared in accordance with the above example maintained a rich to lean response time better than about 125 milliseconds (ms) (line 60) and many of these sensors maintained a rich to lean response time better than about 90 ms
- This sensor has a protective coating with lower density and demonstrates better resistance to poisoning and improved durability.
- the coating applied is able to resist sensor deactivation as vehicles age because of the rough texture of the coating. While smooth, flat coatings are easy to degrade due to the "glassy" zinc phosphate deposition, this coating has a superior resistance to diffusion limitation than any other coating.
- the sensor exhibits RLT of less than about 130 ms for over 100 hours with siloxane poisoning (1.56 ml/gal); over an order of magnitude improvement over the prior art. Additionally, a RLT of less than about 110 ms for over about 400 hours was achieved in a calcium rapid age test. It is believed that although conventional sensors fail at about 1,000 hours of actual use, this sensor will resist sensor deactivation for greater than about 2,000 hours with up to and exceeding about 4,000 hours feasible. Furthermore, the process to manufacture such a sensor does not require additional processing steps or time.
Landscapes
- Chemical & Material Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- Health & Medical Sciences (AREA)
- Physics & Mathematics (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Electrochemistry (AREA)
- Molecular Biology (AREA)
- Analytical Chemistry (AREA)
- Biochemistry (AREA)
- General Health & Medical Sciences (AREA)
- General Physics & Mathematics (AREA)
- Immunology (AREA)
- Pathology (AREA)
- Measuring Oxygen Concentration In Cells (AREA)
Abstract
Description
Claims
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US21612300A | 2000-12-18 | 2000-12-18 | |
| US216123 | 2000-12-18 | ||
| PCT/US2001/049121 WO2002050508A2 (en) | 2000-12-18 | 2001-12-18 | Coating for gas sensors |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP1347838A2 true EP1347838A2 (en) | 2003-10-01 |
| EP1347838A4 EP1347838A4 (en) | 2007-12-19 |
Family
ID=22805790
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP01987439A Withdrawn EP1347838A4 (en) | 2000-12-18 | 2001-12-18 | Coating for gas sensors |
Country Status (2)
| Country | Link |
|---|---|
| EP (1) | EP1347838A4 (en) |
| WO (1) | WO2002050508A2 (en) |
Family Cites Families (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4177112A (en) * | 1978-03-27 | 1979-12-04 | Nippondenso Co., Ltd. | Oxygen concentration detector and method of use thereof |
| DE2852647C2 (en) * | 1978-12-06 | 1986-04-30 | Robert Bosch Gmbh, 7000 Stuttgart | Process for the production of a layer system on solid electrolytes for electrochemical applications |
| DE4004172C2 (en) * | 1989-02-14 | 1998-06-04 | Ngk Spark Plug Co | An oxygen sensor for air-fuel mixture control having a protective layer comprising an oxygen occluding substance, and a method of manufacturing the sensor |
| US5762737A (en) * | 1996-09-25 | 1998-06-09 | General Motors Corporation | Porous ceramic and process thereof |
| US6015517A (en) * | 1998-04-08 | 2000-01-18 | International Business Machines Corporation | Controlled porosity for ceramic contact sheets and setter tiles |
| EP1269176A2 (en) * | 2000-03-28 | 2003-01-02 | Delphi Technologies, Inc. | High temperature poison resistant sensor |
-
2001
- 2001-12-18 EP EP01987439A patent/EP1347838A4/en not_active Withdrawn
- 2001-12-18 WO PCT/US2001/049121 patent/WO2002050508A2/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| WO2002050508A3 (en) | 2002-08-22 |
| EP1347838A4 (en) | 2007-12-19 |
| WO2002050508A2 (en) | 2002-06-27 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US6555159B2 (en) | Coating for gas sensors | |
| US6514397B2 (en) | Gas sensor | |
| US6562747B2 (en) | Gas sensor electrolyte | |
| US6579436B2 (en) | Gas sensor and method of producing the same | |
| US6447658B1 (en) | Low-density coating for gas sensors | |
| US20060237316A1 (en) | Methods of making gas sensors and sensors formed therefrom | |
| US6468407B2 (en) | NOx reduction sensor coating | |
| EP1215488A2 (en) | Sensor coating inhibiting glass formation | |
| US6630062B1 (en) | Poison resistant sensor | |
| EP0059933A1 (en) | Solid electrolyte oxygen sensing element of laminated structure with gas diffusion layer on outer electrode | |
| EP1234172A2 (en) | Method and device for pumping oxygen into a gas sensor | |
| US20020100697A1 (en) | Gas sensor with uniform heating and method of making same | |
| US6797138B1 (en) | Gas senior design and method for forming the same | |
| EP1215490A2 (en) | Slip method for making exhaust sensors | |
| US6793788B2 (en) | Method and device for hydrogen and hydrocarbon sensing | |
| EP1347838A2 (en) | Coating for gas sensors | |
| US20060213772A1 (en) | Sensing element and method of making | |
| EP1269176A2 (en) | High temperature poison resistant sensor | |
| US20030205468A1 (en) | High temperature poison resistant sensor | |
| EP1213581A2 (en) | Gas sensor with selective reference electrode and method of making the same | |
| JPH07107524B2 (en) | Oxygen gas detector | |
| US20020117397A1 (en) | Exhaust oxygen sensor electrode formed with organo-metallic ink additives | |
| EP1226428A1 (en) | Gas sensor design and method for using the same | |
| WO2004099596A1 (en) | Methods for forming conical sensors and sensors formed therefrom | |
| US20070039819A1 (en) | Sensing element with vent and method of making |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
| 17P | Request for examination filed |
Effective date: 20030718 |
|
| AK | Designated contracting states |
Kind code of ref document: A2 Designated state(s): AT BE CH CY DE DK ES FI FR GB GR IE IT LI LU MC NL PT SE TR |
|
| A4 | Supplementary search report drawn up and despatched |
Effective date: 20071121 |
|
| RIC1 | Information provided on ipc code assigned before grant |
Ipc: G01N 27/407 20060101AFI20071115BHEP Ipc: B05D 3/02 20060101ALI20071115BHEP Ipc: B05D 5/12 20060101ALI20071115BHEP |
|
| 17Q | First examination report despatched |
Effective date: 20080124 |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE APPLICATION IS DEEMED TO BE WITHDRAWN |
|
| 18D | Application deemed to be withdrawn |
Effective date: 20120926 |