Detection sensor having a sensor cell with a high-electron mobility transistor and ring resonator(s)
11187671 · 2021-11-30
Assignee
Inventors
- Vincent Aubry (Orsay, FR)
- Abdallah Ougazzaden (Marly, FR)
- Jean-Paul Salvestini (Metz, FR)
- Paul Voss (Metz, FR)
- Yacine Halfaya (Metz, FR)
Cpc classification
Y02A50/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G01N27/414
PHYSICS
International classification
Abstract
A wireless sensor for detection or measurement of at least one specific component present in a gaseous or liquid mixture, the gas sensor including at least one sensor cell, having a high-electron-mobility transistor having a source and a drain with a gate intercalated between source and drain. The at least one sensor cell having a high-electron-mobility transistor is associated with at least one split-ring resonator with at least one respective slit and connected between, on the one hand, the drain and on the other hand, the gate or the source of the at least one sensor cell, the sensor detecting a change in the intensity or the frequency of resonance as a function of the presence and/or of the concentration of the at least one specific component in the gaseous or liquid mixture.
Claims
1. A wireless sensor for detection or measurement of at least one specific component present in a gaseous or liquid mixture, the gas sensor comprising: at least one sensor cell having a high-electron-mobility transistor; said at least one sensor cell being associated with at least one split-ring resonator with at least one respective slit and positioned in said at least one respective slit, wherein the sensor detects a change in the intensity or the frequency of resonance as a function of the presence and/or of the concentration of said at least one specific component in the gaseous or liquid mixture.
2. The sensor according to claim 1, in which the intensity or the frequency of resonance is a function of one or more of the following parameters, alone or in combination: when said at least one split-ring resonator has several slits, a number of slits for said at least one split-ring resonator; and when the sensor has at least two split-ring resonators, a number and position of the split-ring resonators with respect to one another.
3. The sensor according to claim 1, in which the sensor has at least two split-ring resonators and said at least one sensor cell having a high-electron-mobility transistor is inserted into said at least one slit of one of said at least two split-ring resonators.
4. The sensor according to claim 3, in which said at least one sensor cell having a high-electron-mobility transistor is inserted into said at least one slit of an innermost split-ring resonator of said at least two split-ring resonators.
5. The sensor according to claim 1, in which the sensor has at least two split-ring resonators and said at least one sensor cell having a high-electron-mobility transistor is inserted between said at least two split-ring resonators.
6. The sensor according to claim 5, in which said at least one sensor cell having a high-electron-mobility transistor is concentric with said at least two split-ring resonators.
7. The sensor according to claim 1, in which said at least one sensor cell having a high-electron-mobility transistor is rectangular.
8. The sensor according to claim 1, in which the sensor has at least two concentric split-ring resonators having a common center and said at least one slit of said at least two split-ring resonators is/are aligned according to a diameter of the outermost split-ring resonator of said at least two split-ring resonators, the common center of said at least two split-ring resonators being intercalated, aligned between said at least one slit of the two split-ring resonators.
9. An assembly of at least two wireless sensors for detection or measurement, each sensor detecting a respective specific component present in a gaseous or liquid mixture, said at least two sensors are according to claim 1, each of said at least two sensors showing a change in intensity or frequency of resonance as a function of the presence and/or the concentration of the respective specific component of each sensor in the gaseous or liquid mixture.
10. An exhaust line of an internal combustion engine of a motor vehicle, that comprises a sensor according to claim 1 or an assembly of at least two wireless sensors for detection or measurement, each sensor detecting a respective specific component present in a gaseous or liquid mixture, each of said at least two sensors showing a change in intensity or frequency of resonance as a function of the presence and/or the concentration of the respective specific component of each sensor in the gaseous or liquid mixture, the gaseous or liquid mixture being formed by exhaust gases passing through the exhaust line and said at least one specific component or said at least two specific components being respectively a gas or gases contained in the exhaust gases, in particular NOx gases.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other characteristics, aims and advantages of the present invention will become apparent on reading the following detailed description and in the light of the attached drawings given non-limitatively by way of example and in which:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) It should be remembered that the figures are given by way of example and do not limit the invention. They constitute diagrammatic representations of principle intended to facilitate understanding of the invention, and are not necessarily at the scale of practical applications. In particular, the dimensions of the different elements shown are not representative of reality.
(6) Hereinafter, reference is made to all the figures taken in combination. With respect to recognition of the designated reference numbers, when reference is made to one or more specific figures, these figures are to be taken in combination with the other figures.
(7) With reference to all of the figures, the present invention relates to a wireless sensor for detection or measurement of at least one specific component present in a gaseous or liquid mixture. The gas sensor comprises at least one sensor cell 1, 1a, having a high-electron-mobility transistor comprising a source and a drain with a gate intercalated between the source and the drain.
(8) A high-electron-mobility transistor bears the drain and the source at two opposite lateral ends. In an embodiment, between the source and the drain a nanostructured III-N semiconductor layer and an Al.sub.0.3Ga.sub.0.7N layer or active electrostatic interaction layer extend, the semiconductor layer being superimposed on the Al.sub.0.3Ga.sub.0.7N layer.
(9) The nanostructured 111-N semiconductor layer supports one or more layers forming an input gate for the ions of the component(s) to be detected or to be measured, for example dissociated negative oxygen ions O.sup.2− for nitrogen oxides NOx or oxygen O.sub.2, by creating a potential difference. This layer or these layers forming an input gate, advantageously coated with a layer of oxides, can be made from platinum or tungsten.
(10) Extending below the Al.sub.0.3Ga.sub.0.7N layer is a gate linking the source and the drain, the gate being itself superimposed on a GaN layer, serving as an insulating substrate.
(11) According to the invention, said at least one sensor cell 1, 1a having a high-electron-mobility transistor is associated with at least one split-ring resonator 2, 2a with at least one respective slit 3, 3a connected between, on the one hand, the drain and on the other hand, the gate or the source of said at least one sensor cell 1, 1a.
(12) The sensor detects a change in intensity or frequency of resonance as a function of the presence and/or the concentration of said at least one specific component in the gaseous or liquid mixture.
(13) A split-ring resonator 2, 2a is an artificially produced metamaterials structure. Such a split-ring resonator 2, 2a delivers a magnetic response or magnetic susceptibility creating a strong magnetic coupling necessary for an electromagnetic application and which was previously not available for conventional materials.
(14) A split-ring resonator 2, 2a can be used alone or forming part of a structure of several split-ring resonators 2, 2a. Such a structure then comprises loops formed by each of the rings with divisions or slits 3, 3a in the loops. The ring or rings 2, 2a are made from a magnetic metal, such as for example copper, and in the case of a structure with several rings, keeping a gap between two adjacent rings. The ring or rings 2, 2a can be in the form of a crown or square or rectangular in shape.
(15) A magnetic flux penetrating the ring or the split-ring resonators 2, 2a will induce rotating currents in the rings, which produce their own flux to enhance or oppose the incident field. The split-ring resonator(s) 2, 2a can be etched on a dielectric substrate.
(16) The sensor can comprise one or more sensor cells. Each sensor cell 1, 1a can comprise one or more high-electron-mobility transistors associated with one or more split-ring resonators 2, 2a. Each ring resonator can be split once only or multiple times.
(17) There is a variety of split-ring resonators 2, 2a, with periodic structures in the case of a structure having several rings. The rings 2, 2a can be nested, concentric, or surrounding one another without being concentric. The ring or rings 2, 2a can be in the form of a respective single split ring in spiral or helical form.
(18) Advantageously, the intensity or the frequency of resonance is a function of one or more of the following parameters, alone or in combination: a dimension of said at least one slit 3, 3a of said at least one split-ring resonator 2, 2a, a dimension or dimensions of the material constituting said at least one split-ring resonator 2, 2a, when said at least one split-ring resonator 2, 2a has several slits 3, 3a, a number of slits 3, 3a for said at least one split-ring resonator 2, 2a and, when the sensor has at least two split-ring resonators 2, 2a, a number and position of the split-ring resonators 2, 2a with respect to one another.
(19) Non-limitatively, for a structure of at least two split-ring resonators 2, 2a, the position can relate to the arrangement of the split-ring resonators 2, 2a with respect to one another, the arrangement of the slits 3, 3a of the split-ring resonators 2, 2a with respect to one another and/or the distance between the two split-ring resonators 2, 2a.
(20) In a first embodiment of the structure of split-ring resonators 2, 2a, this first form being shown in
(21) In this first embodiment, said at least one sensor cell 1 having a high-electron-mobility transistor can be inserted into said at least one slit 3 of the innermost split-ring resonator 2 of said at least two split-ring resonators 2, 2a.
(22) In a second embodiment of the structure of split-ring resonators 2, 2a, this second form being shown in
(23) In this embodiment, said at least one sensor cell 1a having a high-electron-mobility transistor can be in the form of a crown concentric with said at least two split-ring resonators 2, 2a. The width of the crown formed by the sensor cell 1, 1a can influence the intensity or frequency of resonance of the sensor. The crown can be continuous or discontinuous.
(24) Non-limitatively, for all embodiments, said at least one sensor cell 1, 1a having a high-electron-mobility transistor can be rectangular or square in shape or as a portion of a crown.
(25) The sensor can have at least two concentric split-ring resonators 2, 2a having a common centre and said at least one slit 3, 3a of said at least two split-ring resonators 2, 2a are aligned according to a diameter of the outermost split-ring resonator 2a of said at least two split-ring resonators 2, 2a.
(26) The common centre of said at least two split-ring resonators 2, 2a can be intercalated, aligned between said at least one slit 3, 3a of the two split-ring resonators 2, 2a.
(27) According to the embodiments relating to the position of the sensor with respect to the two split-ring resonators 2, 2a, since the capacitance value of the sensor having a high-electron-mobility transistor varies as a function of the quantity of the component to be detected or measured, the transistor can therefore be placed either in the opening of a ring or between the rings, while varying the resonance frequency of the structure formed by the two split-ring resonators 2, 2a.
(28) In this design, a small variation in the capacitance results in a wide frequency shift, which increases the measurement sensitivity of the sensor. It also has the advantage of only requiring contacts between the structure and the sensor.
(29) The invention also relates to an assembly of at least two wireless sensors for detection or measurement, each sensor detecting a respective specific component present in a gaseous or liquid mixture.
(30) According to the invention, said at least two sensors are such as previously mentioned, each of said at least two sensors showing a change in intensity or frequency of resonance as a function of the presence and/or the concentration of the respective specific component of each sensor in the gaseous or liquid mixture. This assembly can therefore specifically detect at least two components present in the gaseous or liquid mixture.
(31) Finally, the invention relates to an exhaust line for an internal combustion engine for a motor vehicle. The exhaust line comprises such a sensor, in which case a component is specifically detected or measured. Alternatively, the line comprises such an assembly of at least two wireless sensors for detection or measurement, in which case two different components are simultaneously specifically detected and measured without mutual interference.
(32) For such an exhaust line, the gaseous or liquid mixture previously mentioned is formed by exhaust gases passing through the exhaust line and said at least one specific component or said at least two specific components, being respectively one or more pollutants contained in the exhaust gases, for example a nitrogen oxide of the NO or NO.sub.2 type, which can then be detected or measured in isolation without interference with the other NOx nitrogen oxides or with NH.sub.3 ammonia, which adversely affected the previously established detections according to the state of the art.
(33)
(34) The DAFR curve with squares shows a sensor with two split-ring resonators 2, 2a while the other two curves relate to sensors with a single split-ring resonator 2, 2a.
(35) The invention is in no way limited to the embodiments described and shown, which have been given purely by way of example.