Phase change material based switch

The switch design with multiple electrodes and heating elements addresses inefficiencies in phase change material switches by enhancing switching speed and signal isolation in radiofrequency communication applications.

FR3146373B1Active Publication Date: 2025-08-15COMMISSARIAT A LENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVES
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
FR2023002012
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-03-03
Publication Date
2025-08-15
Estimated Expiration
2043-03-03

AI Technical Summary

Technical Problem

Existing phase change material based switches suffer from various drawbacks, including inefficiencies in switching times and signal isolation, particularly in radiofrequency communication applications.

Method used

A switch design comprising multiple electrodes and heating elements that modify the phase change material in specific zones to achieve rapid and efficient switching between crystalline and amorphous states, enhancing signal isolation and attenuation properties.

Benefits of technology

The proposed switch design improves switching speed and signal isolation, offering better isolation and attenuation characteristics compared to conventional designs.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000017_0000
    Figure 00000017_0000
  • Figure 00000017_0001
    Figure 00000017_0001
  • Figure 00000017_0002
    Figure 00000017_0002
Patent Text Reader

Abstract

Phase change material based switch The present description relates to a switch (100) comprising: – first, second and third electrodes (107a, 107b, 107d); – a region (103) of a phase change material connecting the first, second and third electrodes; and – first, second and third heating elements connected between a first face of the phase change material region and the first, second and third electrodes, respectively, the second and third heating elements being intended to modify the state of the phase change material in first and second zones (113b, 113d) within said region. Figure for abstract: Fig. 1
Need to check novelty before this filing date? Find Prior Art

Description

Title of the invention: Switch based on phase change material Technical field

[0001] The present description relates generally to electronic devices. The present description relates more particularly to switches based on a phase change material, capable of alternating between a crystalline, electrically conductive phase and an amorphous, electrically insulating phase. Prior art

[0002] Various applications take advantage of switches, or interrupters, based on a phase-change material to allow or prevent the flow of an electric current in a circuit. Such switches can in particular be implemented in radiofrequency communication applications, for example to switch an antenna between transmission and reception modes, activate a filter corresponding to a frequency band, etc.

[0003] Existing phase change material based switches, however, suffer from various drawbacks. Summary of the invention

[0004] There is a need to improve existing phase change material based switches.

[0005] For this, one embodiment provides a switch comprising: - first, second and third electrodes; - a region of a phase change material connecting the first, second and third electrodes; and - first, second and third heating elements connected between a first face of the phase change material region and the first, second and third electrodes, respectively, the second and third heating elements being for modifying the state of the phase change material in first and second zones within said region.

[0006] According to one embodiment, the first heating element is intended to modify the state of the phase change material in a third zone, different from the first and second zones, inside the phase change material region.

[0007] According to one embodiment, the switch further comprises a fourth electrode and a fourth heating element connected between the first face of the region of phase change material and the fourth electrode, the fourth heating element being intended to modify the state of the phase change material in a fourth zone, different from the first and second zones, within said region.

[0008] According to one embodiment, the first, second and third electrodes are respectively connected to first, second and third conductive regions each corresponding to a conduction electrode of a MOS transistor formed in a substrate.

[0009] According to one embodiment, the first, second and third electrodes are respectively connected to first, second and third control circuits each comprising a node for applying a control potential.

[0010] According to one embodiment, the first and second zones interpenetrate.

[0011] According to one embodiment, the first and second zones are separate.

[0012] According to one embodiment, the first and second electrodes are intended to be connected to a radiofrequency communication circuit and the third electrode is intended to be brought to a reference potential.

[0013] According to one embodiment, the switch further comprises at least one third additional heating element connected between the first face of the phase change material region and the third electrode, each third additional heating element being intended to modify the state of the phase change material in a second additional zone within said region.

[0014] According to one embodiment, the switch further comprises at least one second additional heating element connected between the first face of the phase change material region and the second electrode, each second additional heating element being intended to modify the state of the phase change material in a first additional zone within said region.

[0015] According to one embodiment, a second face of the phase change material region, opposite the first face, is coated with a conductive layer.

[0016] According to one embodiment, the phase change material region is made of a chalcogenide material. Brief description of the drawings

[0017] These characteristics and advantages, as well as others, will be explained in detail in the following description of particular embodiments given without limitation in relation to the attached figures among which:

[0018] [Fig.lA], [Fig.lB] and [Fig.lC] are schematic and partial views, respectively from above and in section along planes BB and CC of [Fig.lA], of an example of a switch based on a phase change material according to one embodiment;

[0019] [Fig.2A], [Fig.2B] and [Fig.2C] are schematic and partial top views illustrating different states of the switch of Figures 1A to 1C;

[0020] [Fig.3A] and [Fig.3C] are schematic and partial views, respectively from above and in section along the plane CC of [Fig.3A], of an example of a switch based on a phase change material according to one embodiment;

[0021] [Fig.4A] and [Fig.4B] are schematic and partial views, respectively from above and in section along plane BB of [Fig.4A], of an example of a switch based on a phase change material according to one embodiment;

[0022] [Fig.5] is a schematic and partial top view of an example of a switch based on a phase change material according to one embodiment;

[0023] [Fig.6] is a schematic and partial top view of an example of a switch based on a phase change material according to one embodiment; and

[0024] [Fig.7] is a schematic and partial top view of an example of a switch based on a phase change material according to one embodiment. Description of the embodiments

[0025] The same elements have been designated by the same references in the different figures. In particular, the structural and / or functional elements common to the different embodiments may have the same references and may have identical structural, dimensional and material properties.

[0026] For the sake of clarity, only the steps and elements useful for understanding the described embodiments have been shown and are detailed. In particular, the control circuits of the switches based on a phase-change material and the applications in which such switches may be provided have not been detailed, the described embodiments and variants being compatible with the control circuits of the usual phase-change material switches and with the usual applications implementing switches based on a phase-change material.

[0027] Unless otherwise specified, when referring to two elements connected to each other, this means directly connected without intermediate elements other than conductors, and when referring to two elements connected (in English "coupled") to each other, this means that these two elements can be connected or be connected by means of one or more other elements.

[0028] In the following description, when referring to position qualifiers absolute, such as the terms "front", "back", "top", "bottom", "left", "right", etc., or relative, such as the terms "above", "below", "upper", "lower", etc., or orientation qualifiers, such as the terms "horizontal", "vertical", etc., reference is made, unless otherwise specified, to the orientation of the figures.

[0029] Unless otherwise specified, the expressions “about”, “approximately”, “substantially”, and “of the order of” mean to within 10%, preferably to within 5%.

[0030] [Fig.lA] is a schematic and partial top view of an example of a switch 100 based on a phase change material according to one embodiment. [Fig.lB] and [Fig.lC] are sectional views of the switch 100 along planes BB and CC, respectively, of [Fig.lA].

[0031] In the example shown, the switch 100 comprises a substrate 101. The substrate 101 is for example a wafer or a piece of wafer made of a semiconductor material, for example silicon. By way of example, the substrate 101 is of the CMOS (Complementary Metal-Oxide-Semiconductor) type and comprises a plurality of MOS (Metal-Oxide-Semiconductor) transistors not detailed in figures 1A to 1C so as not to overload the drawing.

[0032] In the illustrated example, a region 103 made of a phase change material extends laterally over and in contact with a face of the substrate 101 (the upper face of the substrate 101, in the orientation of FIGS. 1B and 1C). The region 103 has, for example, in top view, a rectangular or, as in the example shown, substantially square periphery. This example is however not limiting, the region 103 being able, as a variant, to have any shape.

[0033] By way of example, the region 103 of the switch 100 is made of a so-called “chalcogenide” material, that is to say a material or an alloy comprising at least one chalcogen element, for example a material from the germanium telluride, antimony telluride or germanium-antimony-tellurium family, more commonly designated by the acronym “GST”.

[0034] In the example shown, the face of the region 103 made of phase-change material opposite the substrate 101 (the upper face of the region 103, in the orientation of FIGS. 1B and 1C) is coated with an electrically conductive layer 105. The conductive layer 105 constitutes, for example, an upper electrode of the switch 100 and is, for example, intended to be brought to a reference potential, for example ground. The layer 105 is, for example, based on a metal or a metal alloy. For example, the layer 105 is made of titanium nitride (TiN). The layer 105 has not been shown in [Fig. 1A] so as not to overload the drawing. As a variant, the layer 105 may be omitted.

[0035] In the illustrated example, the switch 100 further comprises electrodes 107, more precisely four electrodes 107a, 107b, 107c and 107d, in this example. The electrodes 107 of the switch 100 are insulated from each other. In the example shown, each electrode 107 has, in side view, an L-shape, a horizontal portion of which extends laterally in the substrate 101 directly above the layer 103, the horizontal portion of each electrode 107 being separated from the layer 103 by a non-zero distance, and a vertical portion of which extends vertically in the thickness of the substrate 101 from a zone of the upper face of the substrate 101 not coated with the region 103. The vertical portion of each electrode 107 may, as in the example shown, protrude from the upper face of the substrate 101. This example is however not limiting, the electrodes 107 being able, as a variant, to be flush with the upper face of the substrate 101.

[0036] The electrodes 107 of the switch 100 are for example made of a conductive material, for example a metal or a metal alloy. For example, the electrodes 107 are made of copper. In order to simplify the production of the switch 100, the electrodes 107 have for example substantially identical structures and compositions, apart from manufacturing dispersions.

[0037] The electrodes 107a and 107b are for example intended to be connected to a radiofrequency communication circuit and the electrodes 107c and 107d are for example intended to be brought to a reference potential, for example ground. For example, the electrodes 107c and 107d may be interconnected.

[0038] In the example shown, the switch 100 further comprises heating elements 109 (“heater”, in English), more precisely four heating elements 109a, 109b, 109c and 109d, in this example. The heating elements 109 of the switch 100 are insulated from each other. The heating elements 109a, 109b, 109c and 109d are connected between the face of the region 103 coating the substrate 101 (the lower face of the region 103, in the orientation of FIGS. 1B and 1C) and the electrodes 107a, 107b, 107c and 107d, respectively.In the illustrated example, each heating element 109a, 109b, 109c, 109d has an L shape, a horizontal part of which extends laterally over and in contact with the horizontal part of the L formed by the corresponding electrode 107a, 107b, 107c, 107d, and a vertical part of which, located directly above the region 103 made of phase-change material, extends vertically in the thickness of the substrate 101 from the upper face of the substrate 101 to the corresponding electrode 107a, 107b, 107c, 107d. In the orientation of Figures 1B and 1C, the upper end of the vertical portion of each heating element 109 is flush with an area of ​​the upper face of the substrate 101 coated with the region 103 and is in mechanical contact with the lower face of the region 103. The heating elements 109 contact the region 103 at different locations, for example spaced from each other by . a few tens of nanometers.

[0039] In the illustrated example, the switch 100 further comprises conductive regions 111, more precisely four regions 111a, 111b, 111c and 111d, in the example shown. The conductive regions 111 of the switch 100 are for example insulated from each other, and correspond for example to conduction electrodes (source or drain) of MOS transistors formed in the substrate 101. In the orientation of FIGS. 1B and 1C, each conductive region 111a, 111b, 111c, 111d is in mechanical contact, by its upper face, with the lower face of the horizontal part of the L formed by the electrode 107a, 107b, 107c, 107d, respectively.

[0040] [Fig.2A], [Fig.2B] and [Fig.2C] are schematic and partial top views illustrating different states of the switch of Figures 1A to 1C.

[0041] Phase change materials are, generally speaking, materials capable of alternating, under the effect of a temperature variation, between a crystalline phase and an amorphous phase, the amorphous phase having an electrical resistance greater than that of the crystalline phase. In the case of the switch 100, this phenomenon is taken advantage of to obtain: - a first state ([Fig.2A]), called the “on state”, allowing the transmission of a radiofrequency signal between the electrodes 107a and 107b, when the material of two zones 113a and 113b of the region 103, located respectively in line with the vertical parts of the heating elements 109a and 109b, is in the crystalline phase and when at least part of the material of two other zones 113c and 113d of the region 103, located respectively in line with the vertical parts of the heating elements 109c and 109d, is in the amorphous phase; - a second state ([Fig.2B]), called “reflective blocked state”, preventing the transmission of a radiofrequency signal between the electrodes 107a and 107b, when at least part of the material of the zones 113a and 113b of the region 103 is in the amorphous phase and when the material of the zones 113c and 113d of the region 103 is in the crystalline phase; and - a third state ([Fig.2C]), called “absorbing blocked state”, allowing the partial transmission of a radiofrequency signal between the electrodes 107a and 107b, and possibly between the electrode 107a and the electrodes 107c and 107d, when the material of the zones 113a, 113b, 113c and 113d of the region 103 is in the crystalline phase.

[0042] In the example shown, each zone 113a, 113b, 113c, 113d of the region 103 has the shape of a spherical cap substantially centered, in top view, relative to the place where the vertical part of the heating element 109a, 109b, 109c, 109d, intended to modify the state of the phase change material in the corresponding zone, is in mechanical contact with the lower face of the region 103. In the illustrated example, the zones 113a, 113b, 113c and 113d interpenetrate, each zone 113a, 113b, 113c, 113d being in contact with all the other zones. By way of example, each zone 113a, 113b, 113c, 113d has, in top view, a maximum lateral dimension (corresponding, in this example, to the diameter of the base circle of the spherical cap formed by the zone 113a, 113b, 113c, 113d considered) of the order of a few tens of nanometers, for example equal to approximately 40 nm.

[0043] When switching the switch 100 between the on and off reflective states, control voltages are for example applied simultaneously between the regions 111a, 111b, 111c and 111d, on the one hand, and the layer 105, on the other hand, in order to cause a flow of current through the heating elements 109a, 109b, 109c and 109d, respectively. This current causes, by Joule effect then by radiation and / or conduction inside the structure of the switch 100, in particular through the layer 103, a rise in temperature inside the zones 113a, 113b, 113c and 113d from the lower face of the region 103.

[0044] More precisely, to switch the switch 100 from the reflective blocked state to the conducting state, the zones 113a and 113b of the region 103 made of phase-change material are heated, by means of the heating elements 109a and 109b, for example to a temperature T1 and for a duration d1. The temperature T1 and the duration d1 are chosen so as to cause a phase change of the material of the zones 113a and 113b from the amorphous phase to the crystalline phase. The temperature T1 is for example higher than a crystallization temperature and lower than a melting temperature of the material of the region 103. For example, the temperature T1 is between 150 and 350°C and the duration d1 is less than 1 ps. In the case where region 103 is made of germanium telluride, the temperature Tl is for example equal to approximately 300 °C and the duration dl is for example between 100 ns and 1 ps.

[0045] Furthermore, the zones 113c and 113d of the region 103 made of phase change material are heated, by means of the heating elements 109c and 109d, for example to a temperature T2 higher than the temperature T1, and for a duration d2 lower than the duration d1. The temperature T2 and the duration d2 are chosen so as to cause a phase change of the material of the zones 113c and 113d from the crystalline phase to the amorphous phase. The temperature T2 is for example higher than the melting temperature of the phase change material. For example, the temperature T2 is between 600 and 1000°C and the duration d2 is less than 500 ns. In the case where region 103 is made of germanium telluride, the temperature T2 is for example equal to approximately 700 °C and the duration d2 is for example equal to approximately 100 ns.

[0046] When switching the switch 100 between the reflective off state and the on state, the heating elements 109a, 109b, 109c and 109d are for example controlled simultaneously. This advantageously makes it possible to reduce the duration of switching.

[0047] Conversely, to switch the switch 100 from the on state to the reflective off state, the zones 113a and 113b are heated, by means of the heating elements 109a and 109b, for example to the temperature T2 and for the duration d2. Furthermore, the zones 113c and 113d are heated, by means of the heating elements 109c and 109d, for example to the temperature T1 and for the duration d1.

[0048] The switching between the reflective off and absorbing off states is for example analogous to the switching between the passing and reflective off states described above, with the difference that only the heating elements 109a and 109b are implemented for the switching between the reflective off and absorbing off states, the material of the zones 113c and 113d remaining in the crystalline phase during this switching. For example, to switch the switch 100 from the reflective off state to the absorbing off state, the zones 113a and 113b of the region 103 are heated to the temperature T1 and for the duration d1. Conversely, to switch the switch 100 from the absorbing off state to the reflective off state, the zones 113a and 113b are for example heated to the temperature T2 and for the duration d2.

[0049] Furthermore, the switching between the on and off absorbing states is for example analogous to the switching between the on and off reflecting states described above, with the difference that only the heating elements 109c and 109d are implemented for the switching between the on state and the off absorbing state, the material of the zones 113a and 113b remaining in the crystalline phase during this switching. For example, to switch the switch 100 from the on state to the off absorbing state, the zones 113c and 113d of the region 103 are heated to the temperature T1 and for the duration d1. Conversely, to switch the switch 100 from the off absorbing state to the on state, the zones 113c and 113d are for example heated to the temperature T2 and for the duration d2.

[0050] The values ​​of the temperatures T1 and T2 and of the heating durations d1 and d2 may be substantially identical for each of the zones 113a, 113b, 113c, 113d.

[0051] Alternatively or additionally, the heating elements 109a, 109b, 109c and 109d of the switch 100 may be controlled by control circuits 115, more precisely by four control circuits 115a, 115b, 115c and 115d, respectively, in this example. Each circuit 115a, 115b, 115c, 115d comprises: - a node 117 intended to be connected to the corresponding electrode 107a, 107b, 107c, 107d; - an inductive element 119 connected between the node 117 and another node 121 for applying a control potential, for example a direct current (DC) potential; - a capacitive element 123 connected between the node 121 and another node for applying a reference potential, for example ground; and - another capacitive element 125 connected between node 117 and, in the case of circuits 115a and 115b, another node 127 for applying a radiofrequency (RF) signal or, in the case of circuits 115c and 115d, another node for applying a reference potential, for example ground.

[0052] For example, circuits 115a, 115b, 115c and 115d may be formed in substrate 101 or in another substrate superimposed on substrate 101, in the orientation of Figures 1B and 1C.

[0053] When switching the switch 100 between the on, off reflective and off absorbing states, the control circuits 115a, 115b, 115c and 115d may, in conjunction with the regions 111 or in place of the regions 111, be implemented to apply to the heating elements 109a, 109b, 109c and 109d the appropriate voltage allowing the corresponding areas 113a, 113b, 113c and 113d to alternate between the amorphous and crystalline phases as previously explained. In other words, the bias voltage of each heating element 109 of the switch 100 may be applied either by means of the regions 111 alone, or by means of the circuits 115 alone, or jointly by means of the regions 111 and the circuits 115.

[0054] An advantage of the switch 100 lies in the fact that the reflective blocked state makes it possible to obtain better isolation, for example improved by approximately -20 dB, between the electrodes 107a and 107b compared to the case of a similar switch but lacking for example the electrodes 107c and 107d, the heating elements 109c and 109d, and the regions 111c and 111d. Another advantage of the switch 100 lies in the fact that it is possible to take advantage of the absorbing blocked state to attenuate the signal transmitted between the conduction electrodes 107a and 107b.

[0055] [Fig. 3A] is a schematic and partial top view of an example of a switch 200 based on a phase change material according to one embodiment. [Fig. 3C] is a sectional view, along plane CC of [Fig. 3A], of the switch 200. The switch 200 has, in sectional view along plane BB of [Fig. 3A], a structure similar or identical to that of the switch 100 illustrated in [Fig. 1B].

[0056] The switch 200 of Figures 3A and 3C comprises elements in common with the switch 100 of Figures 1A to 1C. These common elements will not be detailed again below. The switch 200 of Figures 3A and 3C differs from the switch 100 of Figures 1A to 1C in that the switch 200 is devoid of the electrode 107c, the heating element 109c and the conductive region 11c. The operation of the switch 200 is for example analogous to that of the switch 100 previously explained in relation to Figures 1A to 1C. The operation of the switch 200 differs from that of switch 100 in that, in switch 200, only heating elements 109a, 109b and 109d are controlled to achieve the on, reflective off and absorbent off states.

[0057] Although not illustrated in [Fig.3C], electrode 107d of switch 200 may be connected to control circuit 115d previously described in relation to [Fig.1C].

[0058] An advantage of the switch 200 is that it has a structure comprising fewer elements than the switch 100. This makes it possible to simplify the production and control of the switch 200 compared to the switch 100.

[0059] [Fig.4A] is a schematic and partial top view of an example of a switch 300 based on a phase change material according to one embodiment. [Fig.4B] is a sectional view, along plane BB of [Fig.4A], of the switch 300. The switch 300 has, in sectional view along plane CC of [Fig.4A], a structure similar or identical to that of the switch 200 illustrated in [Fig.3C].

[0060] The switch 300 of Figures 4A and 4B includes elements in common with the switch 200 of Figures 3A and 3C. These common elements will not be detailed again below. The switch 300 of Figures 4A and 4B differs from the switch 200 of Figures 3A and 3C in that the heating element 109a of the switch 300 is not intended to modify the state of the phase change material in the zone 113a of the region 103, the material remaining for example in the crystalline phase within this zone regardless of the state of the switch 300. For example, the control circuit 115a and / or the conductive region 111a may be omitted.

[0061] The operation of the switch 300 is for example analogous to that of the switch 100 previously explained in relation to FIGS. 1A to 1C. The operation of the switch 300 differs from that of the switch 100 in that, in the switch 300, the heating element 109a is not subjected to any control potential intended to modify the phase of the zone 113a. Although this has not been illustrated in [Fig. 4B], the electrode 107b of the switch 300 can be connected to the control circuit 115b previously described in relation to [Fig. 1B].

[0062] An advantage of the switch 300 is that it has a structure comprising fewer elements than the switch 100. This makes it possible to simplify the production and control of the switch 300 compared to the switch 100.

[0063] [Fig. 5] is a schematic and partial top view of an example of a switch 400 based on a phase change material according to one embodiment. The switch 400 has, in sectional view along planes BB and CC of [Fig. 5], a structure similar to that of the switch 100 illustrated in Figures 1B and 1C, respectively.

[0064] The switch 400 of [Fig. 5] comprises elements in common with the switch 100 of Figures 1A to 1C. These common elements will not be detailed again below. The switch 400 of [Fig. 5] differs from the switch 100 of Figures 1A to 1C in that the zones 113a, 113b, 113c and 113d of the switch 400 are disjoint. In the example shown, each zone 113a, 113b, 113c, 113d is separated from the other zones by parts of the region 103 which remain in the crystalline phase regardless of the state of the switch 400, the region 103 being for example in the crystalline phase at the end of the manufacture of the switch 400. The switch 400 corresponds for example to a case in which the heating elements 109 are further apart from each other than in the case of the switch 100, for example due to manufacturing dispersions.

[0065] Although [Fig. 5] illustrates an example in which all of the zones 113a, 113b, 113c and 113d are disjointed, the switch 400 could, alternatively, comprise at least two contiguous, or interpenetrating, zones among the zones 113a, 113b, 113c and 113d.

[0066] The operation of the switch 400 is for example identical to that of the switch 100 explained previously in relation to figures 1A to 1C.

[0067] [Fig. 6] is a schematic and partial top view of an example of a switch 500 based on a phase change material according to one embodiment.

[0068] The switch 500 of [Fig. 6] includes elements in common with the switch 100 of Figures 1A to 1C. These common elements will not be detailed again below. The switch 500 of [Fig. 6] differs from the switch 100 of Figures 1A to 1C in that the switch 500 includes several heating elements 109c connected to the electrode 107c, and several heating elements 109d connected to the electrode 107d. The heating elements 109c and 109d have not been shown in [Fig. 6] in order not to overload the drawing. The heating elements 109c and 109d of the switch 500 are capable of forming, in the region 103 of phase change material, several contiguous zones 113c and several contiguous zones 113d, each zone 113c, 113d being substantially centered on the location where the heating element 109c, 109d is in mechanical contact with the region 103.The heating elements 109c and 109d are for example connected to the region 103, on the one hand, and to the electrode 107c or 107d, on the other hand. The operation of the switch 500 is for example identical to that of the switch 100 previously explained in relation to the figures 1A to 1C. The switching of the zones 113c and 113d of the switch 500 between the crystalline and amorphous phases is for example controlled simultaneously.

[0069] [Fig.6] illustrates an example in which the switch 500 comprises two rows of zones 113c and two rows of zones 113d, for example each associated to a row of heating elements 109c or 109d. This example is not, however, limiting, the switch 500 being able to comprise any number, greater than or equal to one, for example between one and five, of rows of zones 113c and rows of zones 113d. The zones 113c and 113d may, alternatively, be organised in a manner other than in the form of rows. Furthermore, although [Fig. 6] illustrates an example in which the rows comprise identical numbers of zones 113c or 113d, this example is not limiting, the switch 500 being able, alternatively, to have any number, greater than or equal to one, of zones 113c or 113d per row.In other words, the switch 500 may comprise any number, greater than or equal to one, of heating elements 109c and any number, greater than or equal to one, of heating elements 109d, these heating elements being able to be organized in the form of any number of rows each comprising any number, greater than or equal to one, of heating elements.

[0070] An advantage of the switch 500 is that the paralleling of the zones 113c and 113d makes it possible to reduce a series resistance of the connections to ground and to increase the isolation when the switch is in the reflective blocked state.

[0071] [Fig.7] is a schematic and partial top view of an example of a switch 600 based on a phase change material according to one embodiment.

[0072] The switch 600 of [Fig. 7] includes elements in common with the switch 500 of [Fig. 6]. These common elements will not be detailed again below. The switch 600 of [Fig. 7] differs from the switch 500 of [Fig. 6] in that the switch 600 includes several heating elements 109a and several heating elements 109b. The heating elements 109a and 109b have not been shown in [Fig. 7] in order not to overload the drawing. The heating elements 109a and 109b of the switch 600 are capable of forming, in the region 103 of phase change material, several pairs of contiguous zones 113a 113b, each zone 113a, 113b being substantially centered on the location where the heating element 109a, 109b is in mechanical contact with the region 103.

[0073] In the example shown, the heating elements 109a, 109b, 109c and 109d of the switch 600 are capable of forming several assemblies 601 each comprising zones 113a and 113b interposed laterally between a row of zones 113c and a row of zones 113d. More precisely, in the example shown, the switch 600 comprises three assemblies 601-1, 601-2 and 601-3 interposed laterally between the electrodes 107c and 107d. In the example shown, the zones 113c of the set 601-1 and the adjacent zones 113d of the set 601-2 interpenetrate, and the zones 113c of the set 601-2 and the adjacent zones 113d of the set 601-3 interpenetrate.

[0074] In the example illustrated in [Fig.7], the electrodes 107a of the assemblies 601-1, 601-2 and 601-3 are connected to the same electrode 607a, and the electrodes 107b of the assemblies 601-1, 601-2 and 601-3 are connected to the same electrode 607b. Furthermore, although this has not been detailed in [Fig.7], the zones 113c of the assemblies 601-1, 601-2 and 601-3 are for example connected to the electrode 107c, and the zones 113d of the assemblies 601-1, 601-2 and 601-3 are for example connected to the electrode 107d.

[0075] Although [Fig. 7] illustrates an example in which the switch 600 comprises three sets 601 each comprising a row of zones 113c and a row of zones 113d, the switch 600 may alternatively comprise any number, greater than or equal to one, of sets 601, each set 601 may further comprise any number, greater than or equal to zero, of rows of zones 113c and rows of zones 113d. Each row of zones 113c and each row of zones 113d may further comprise any number, greater than or equal to zero, of zones 113c and 113d, respectively. In other words, the switch 600 may comprise any number, greater than or equal to one, of heating elements 109a and any number, greater than or equal to one, of heating elements 109b, the switch 600 may further comprise any number of heating elements 109c and / or 109d.

[0076] The switch 600 has an operation and advantages similar or identical to those of the switch 500. The switch 600 also has the advantage, due to the paralleling of several zones 113a and 113b, of reducing the resistance between the electrodes 607a and 607b. This reduces the insertion losses when the switch is in the on state, i.e. the transmission in the on state is improved.

[0077] Various embodiments and variations have been described. Those skilled in the art will understand that certain features of these various embodiments and variations could be combined, and other variations will occur to those skilled in the art. In particular, those skilled in the art are able to combine: - the embodiment of the switch 300 with that of the switch 100, for example so as to obtain a structure similar to that of the switch 100 but in which the heating element 109a is not controlled so as to modify the phase of the zone 113a; - the embodiment of the switch 400 with that of the switch 200 or 300, for example so as to obtain a structure similar to that of the switch 200 or 300 but in which at least one of the zones 113a, 113b, 113c and 113d is disjointed from at least one of the other zones adjacent to the zone considered; - the embodiment of the switch 200 with that of the switch 500 or 600, for example so as to obtain a structure similar to that of the switch 500 or 600 but devoid of the electrode 107c and the zones 113c; and - the embodiment of the switch 300 with that of the switch 500 or 600, for example so as to obtain a structure similar to that of the switch 500 or 600 but in which the heating element 109a is not controlled so as to modify the phase of the zone(s) 113a.

[0078] Finally, the practical implementation of the described embodiments and variants is within the reach of the person skilled in the art from the functional indications given above. In particular, the person skilled in the art is capable of integrating the switches 100, 200, 300, 400, 500 and 600 previously described in various radiofrequency devices such as a microstrip line, a coplanar waveguide (CPW), etc.

[0079] Furthermore, the described embodiments are not limited to the particular examples of materials and dimensions mentioned in the present description.

Claims

Claims

1. Switch (100; 200; 300; 400; 500; 600) comprising: - first, second and third electrodes (107a, 107b, 107d; 607a, 607b, 107d); - a region (103) of a phase change material connecting the first, second and third electrodes; and - first, second and third heating elements (109a, 109b, 109d) connected between a first face of the phase change material region and the first, second and third electrodes, respectively, the second and third heating elements (109b, 109d) being intended to modify the state of the phase change material in first and second zones (113b, 113d) within said region, wherein the first and second electrodes (107a, 107b; 607a, 607b) are intended to be connected to a radio frequency communication circuit and the third electrode (107d) is intended to be brought to a reference potential.

2. The switch (100; 200; 400; 500; 600) of claim 1, wherein the first heating element (109a) is for changing the state of the phase change material in a third area (113a), different from the first and second areas (113b, 113d), within the phase change material region (103).

3. Switch (100; 400; 500; 600) according to claim 1 or 2, further comprising a fourth electrode (107c) and a fourth heating element (109c) connected between the first face of the region (103) of phase change material and the fourth electrode, the fourth heating element being intended to modify the state of the phase change material in a fourth zone (113c), different from the first and second zones (113b, 113d), within said region.

4. A switch (100; 200; 300; 400; 500; 600) according to any one of claims 1 to 3, wherein the first, second and third electrodes (107a, 107b, 107d; 607a, 607b, 107d) are respectively connected to first, second and third conductive regions (111a, 111b, 111d) each corresponding to a conduction electrode of a MOS transistor formed in a substrate (101).

5. Switch (100; 200; 300; 400; 500; 600) according to any one of claims 1 to 4, wherein the first, second and third electrodes (107a, 107b, 107d; 607a, 607b, 107d) are respectively connected to first, second and third control circuits (115a, 115b, 115c) each comprising a node (121) for applying a control potential.

6. A switch (100; 200; 300; 500; 600) according to any one of claims 1 to 5, wherein the first and second zones (113b, 113d) interpenetrate.

7. A switch (400) according to any one of claims 1 to 5, wherein the first and second zones (113b, 113d) are disjoint.

8. Switch (500; 600) according to any one of claims 1 to 7, further comprising at least one third additional heating element (109d) connected between the first face of the region (103) of phase change material and the third electrode (107d), each third additional heating element being intended to modify the state of the phase change material in a second additional zone (113d) within said region.

9. A switch (600) according to any one of claims 1 to 8, further comprising at least one second additional heating element (109b) connected between the first face of the phase change material region (103) and the second electrode (607b), each second additional heating element being adapted to modify the state of the phase change material in a first additional zone (113b) within said region.

10. A switch according to any one of claims 1 to 9, wherein a second face of the region (103) of phase change material, opposite the first face, is coated with a conductive layer (105).

11. A switch according to any one of claims 1 to 10, wherein the phase change material region (103) is a chalcogenide material.