Power supply device
The variable capacitor with independently setable electrode distances and anisotropic ferroelectric dielectric layer addresses the limitations of conventional capacitors by allowing for reduced control voltages and enhanced capacitance variability.
Patent Information
- Application Number
- JP2023014374
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-02-02
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2043-02-02
AI Technical Summary
Conventional capacitors with variable capacitance require the distances between electrodes to be set in conjunction, limiting the ability to independently adjust the electric field and capacitance, necessitating larger control voltages.
The design of a variable capacitor with independently setable distances between control and extraction electrodes, utilizing a ferroelectric dielectric layer with anisotropic properties, allowing for increased electric fields and reduced control voltages by intersecting electric field directions.
Enables reduced control voltages and variable capacitance adjustments, enhancing capacitance variability and reducing the size of the capacitor while maintaining electric field resistance.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a variable capacitor and a power supply device. [Background technology]
[0002] Conventionally, there is a capacitor with variable capacitance in which a dielectric layer is disposed between a pair of electrodes for applying a DC bias (for example, Patent Document 1). In the conventional capacitor, a dielectric layer is disposed between an earth electrode and a DC bias electrode, and a capacitance acquisition electrode is disposed between the earth electrode and the DC bias electrode via the dielectric layer. When a DC bias is applied between the earth electrode and the DC bias electrode, the dielectric properties of the dielectric layer change, and the capacitance of the capacitor changes. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-344845 Summary of the Invention [Problem to be solved by the invention]
[0004] In the capacitor described in Patent Document 1, the earth electrode, the DC bias electrode, and the capacitance acquisition electrode are stacked in the same direction with a dielectric layer interposed between them, which makes it necessary to set the distance between the earth electrode and the DC bias electrode and the distance between the earth electrode and the capacitance acquisition electrode in conjunction with each other. [Means for solving the problem]
[0005] The present disclosure can be realized in the following forms.
[0006] According to one aspect of the present disclosure, A power supply device (70) having a variable capacitance capacitor is provided. Variable capacitors (1, 201, 301) and a resonant circuit (72) configured with a primary coil (L1), and a control voltage application circuit (76) that applies a control voltage to the variable capacitor,The device comprises a first control electrode (21), a second control electrode (22) facing the first control electrode, a dielectric layer (32) disposed at least between the first control electrode and the second control electrode, and a first extraction electrode (11) and a second extraction electrode (12) facing each other across the dielectric layer, and the first extraction electrode and the second extraction electrode are disposed between the first control electrode and the second control electrode. The aforementioned When a control voltage is applied, the control electrode is disposed at a position where an electric field is generated along a direction intersecting an electric field vector generated between the first control electrode and the second control electrode. the control voltage application circuit applies the control voltage between the first control electrode and the second control electrode, the dielectric layer includes a ferroelectric and has a dielectric characteristic in which the relative permittivity of a polarization inversion region when the control voltage including a voltage value of a coercive field is applied is greater than the relative permittivity when the control voltage is not applied, and the control voltage application circuit applies the control voltage of the polarization inversion region when the power supply device is in a power supplying state and does not apply the control voltage when the power supply device is in a standby state.
[0007] According to this embodiment, the distance between the first control electrode and the second control electrode and the distance between the first extraction electrode and the second extraction electrode can be set independently, and therefore, by shortening the distance between the first control electrode and the second control electrode, the electric field applied to the dielectric layer can be increased even with the same control voltage, thereby enabling a reduction in the control voltage. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. [Figure 2] 2 is a cross-sectional view of the variable capacitor shown in FIG. 1 taken along line II-II. [Figure 3] A diagram explaining PVDF. [Figure 4] FIG. 10 is a diagram showing the relationship between a control electric field and a relative dielectric constant. [Figure 5] FIG. 10 is a perspective view of a variable capacitor according to a second embodiment. [Figure 6] FIG. 10 is a diagram showing the results of a study on the number of placements. [Figure 7] FIG. 10 is a cross-sectional view of a variable capacitor according to a third embodiment. [Figure 8] FIG. 10 is a diagram showing the results of a study on the inter-electrode distance and the electrode length. [Figure 9] FIG. 10 is a circuit diagram of a contactless power supply system according to a fourth embodiment. [Figure 10] FIG. [Figure 11] Diagram comparing relaxors and ferroelectrics. DETAILED DESCRIPTION OF THE INVENTION
[0009] A. First embodiment: As shown in FIG. 1, the variable capacitor 1 has a first extraction electrode layer 11 as a first extraction electrode, a second extraction electrode layer 12 as a second extraction electrode, a first control electrode layer 21 as a first control electrode, a second control electrode layer 22 as a second control electrode, a first dielectric layer 31, a second dielectric layer 32 as a dielectric layer, a first extraction electrode common layer 41, and a second extraction electrode common layer 42.
[0010] Figure 1 depicts three mutually orthogonal spatial axes, the X, Y, and Z axes. The directions of the X, Y, and Z arrows indicate the positive directions along the X, Y, and Z axes, respectively. The positive directions along the X, Y, and Z axes are the +X direction, +Y direction, and +Z direction, respectively. The directions opposite to the directions of the X, Y, and Z arrows are the negative directions along the X, Y, and Z axes, respectively. The negative directions along the X, Y, and Z axes are the -X direction, -Y direction, and -Z direction, respectively. The directions along the X, Y, and Z axes, regardless of whether they are positive or negative, are called the X direction, Y direction, and Z direction, respectively. This also applies to the following figures and explanations.
[0011] 2, the first control electrode layer 21 and the second control electrode layer 22 are electrode layers for adjusting the capacitance of the variable capacitor 1. The first extraction electrode layer 11 and the second extraction electrode layer 12 are electrode layers for utilizing the capacitance of the variable capacitor 1. Typically, the variable capacitor 1 is used by applying a control voltage, which is a DC voltage, to the first control electrode layer 21 and the second control electrode layer 22, and applying AC power between the first extraction electrode layer 11 and the second extraction electrode layer 12.
[0012] The second control electrode layer 22 faces the first control electrode layer 21. The second dielectric layer 32 is disposed at least between the first control electrode layer 21 and the second control electrode layer 22. The first extraction electrode layer 11 and the second extraction electrode layer 12 face each other with the second dielectric layer 32 interposed therebetween. The first extraction electrode layer 11 and the second extraction electrode layer 12 are disposed at positions that generate an electric field along a direction intersecting with the electric field vector generated between the first control electrode layer 21 and the second control electrode layer 22 when a control voltage is applied between the first control electrode layer 21 and the second control electrode layer 22. In this embodiment, the first control electrode layer 21 and the second control electrode layer 22 face each other in the X direction, which is a first direction. Furthermore, the first extraction electrode layer 11 and the second extraction electrode layer 12 face each other in the Z direction, which is a second direction.
[0013] As shown in Fig. 2, the variable capacitor 1 has a layered structure. Specifically, a first dielectric layer 31 is disposed on a first extraction electrode layer 11. A first control electrode layer 21, a second control electrode layer 22, and a second dielectric layer 32 are disposed on the first dielectric layer 31. The second dielectric layer 32 covers the first control electrode layer 21 and the second control electrode layer 22. A second extraction electrode layer 12 is disposed on the second dielectric layer 32. The film surface direction of each layer is the XY direction. The stacking direction of each layer is the Z direction.
[0014] 1, the first control electrode layer 21 and the second control electrode layer 22 each have a flat plate shape with the long axis in the Y direction. The first control electrode layers 21 and the second control electrode layers 22 are alternately arranged at intervals in the X direction. The -Y direction end of each first control electrode layer 21 is electrically connected to the first extraction electrode common layer 41. The +Y direction end of each second control electrode layer 22 is electrically connected to the second extraction electrode common layer 42.
[0015] An arrangement formed by alternately arranging the first control electrode layers 21 and the second control electrode layers 22 with the second dielectric layer 32 sandwiched between them in the X direction is also referred to as a first arrangement ST1. By alternately arranging the first control electrode layers 21 and the second control electrode layers 22, the capacitors formed between adjacent first control electrode layers 21 and second control electrode layers 22 are connected in parallel with each other, and therefore the capacitance value of the variable capacitor 1 can be increased.
[0016] 2, the second dielectric layer 32 is disposed at least between the first control electrode layer 21 and the second control electrode layer 22. Specifically, the second dielectric layer 32 is disposed in a control region RG1 sandwiched between the first control electrode layer 21 and the second control electrode layer 22 in the X direction. As a result, when a control voltage that is a DC voltage is applied between the first control electrode layer 21 and the second control electrode layer 22, an electric field vector that is approximately parallel to the X direction is generated in the control region RG1.
[0017] The first extraction electrode layer 11 and the second extraction electrode layer 12 face each other in the Z direction, with the second dielectric layer 32 sandwiched between them. As a result, an electric field vector generated in the control region RG1 when an AC voltage is applied between the first extraction electrode layer 11 and the second extraction electrode layer 12 intersects with a voltage vector generated in the control region RG1 when a control voltage is applied between the first control electrode layer 21 and the second control electrode layer 22. In this embodiment, the first extraction electrode layer 11 and the second extraction electrode layer 12 face each other in the Z direction. The first control electrode layer 21 and the second control electrode layer 22 face each other in the X direction. As a result, an electric field vector generated in the control region RG1 when an AC voltage is applied between the first extraction electrode layer 11 and the second extraction electrode layer 12 is approximately perpendicular to a voltage vector generated in the control region RG1 when a control voltage is applied between the first control electrode layer 21 and the second control electrode layer 22.
[0018] The direction in which the first extraction electrode layer 11 and the second extraction electrode layer 12 face each other is different from the direction in which the first control electrode layer 21 and the second control electrode layer 22 face each other. This allows the distance between the first extraction electrode layer 11 and the second extraction electrode layer 12 and the distance between the first control electrode layer 21 and the second control electrode layer 22 to be set independently. The distance between the first control electrode layer 21 and the second control electrode layer 22 can be shortened without shortening the distance between the first extraction electrode layer 11 and the second extraction electrode layer 12. Therefore, by shortening the distance between the first extraction electrode layer 11 and the second extraction electrode layer 12 while maintaining a distance between the first extraction electrode layer 11 and the second extraction electrode layer 12 that can withstand the voltage applied between them, the electric field applied between the first control electrode layer 21 and the second control electrode layer 22 can be increased. This allows the control voltage to be reduced.
[0019] If the facing direction of the first extraction electrode layer 11 and the second extraction electrode layer 12 is the same as the facing direction of the first control electrode layer 21 and the second control electrode layer 22, the control voltage needs to be made larger than the voltage applied between the first extraction electrode layer 11 and the second extraction electrode layer 12 in order to adjust the relative permittivity of the dielectric. In this regard, according to this embodiment, the distance between the first extraction electrode layer 11 and the second extraction electrode layer 12 and the distance between the first control electrode layer 21 and the second control electrode layer 22 can be set independently. Therefore, by shortening the distance between the first extraction electrode layer 11 and the second extraction electrode layer 12, the control voltage can be reduced.
[0020] Furthermore, for the above reasons, the voltage applied to the second dielectric layer 32 can be lowered compared to when the facing direction between the first extraction electrode layer 11 and the second extraction electrode layer 12 is the same as the facing direction between the first control electrode layer 21 and the second control electrode layer 22. Therefore, the distance between the first extraction electrode layer 11 and the second extraction electrode layer 12 can be shortened to a degree that allows the second dielectric layer 32 to withstand the applied voltage. This allows the size of the variable capacitor 1 to be reduced. Furthermore, because the first control electrode layer 21 and the second control electrode layer 22 face each other in the X direction, an electric field can also be applied to the second dielectric layer 32 in an area outside the control region RG1. This allows the area of the second dielectric layer 32 in which the relative dielectric constant εr changes to be expanded.
[0021] The dielectric properties of the second dielectric layer 32 are anisotropic. Here, the anisotropy of the dielectric properties means that the relative dielectric constant εr when an AC voltage is applied to the second dielectric layer 32 while a control voltage is applied thereto varies depending on the direction of the electric field vector generated by the application of the AC voltage. Because the dielectric properties of the second dielectric layer 32 are anisotropic, when the direction in which the control voltage is applied differs from the direction in which the AC voltage is applied, the relative dielectric constant εr changes characteristically depending on the magnitude of the control voltage, as will be described in detail later.
[0022] In this embodiment, the first dielectric layer 31 and the second dielectric layer 32 contain the same ferroelectric material. Specifically, the first dielectric layer 31 and the second dielectric layer 32 contain PVDF (polyvinylidene fluoride). Alternatively, the first dielectric layer 31 and the second dielectric layer 32 may contain a ferroelectric polymer such as a fluororesin such as P(VDF-TrFE) (poly(vinylidene fluoride-trifluoroethylene)). By including a ferroelectric in the first dielectric layer 31, the first dielectric layer 31 can also function as a variable capacitance capacitor.
[0023] As another embodiment of the first dielectric layer 31 and the second dielectric layer 32, the first dielectric layer 31 and the second dielectric layer 32 may include dielectrics made of different materials.
[0024] As shown in FIG. 3, a PVDF molecule has hydrogen and fluorine atoms bonded to a carbon chain. Because hydrogen atoms are positively charged and fluorine atoms are negatively charged, the PVDF molecule has an electric dipole moment. When PVDF molecules aggregate due to intermolecular forces, the carbon chains of each PVDF molecule align in the same direction. The hydrogen and fluorine atoms are positioned perpendicular to the carbon chain direction. Therefore, PVDF crystals undergo spontaneous polarization. When an electric field is applied to a PVDF crystal, the polarization direction changes, rotating around the X-axis, which is the carbon chain direction. Therefore, even when a control voltage is applied, the polarization direction changes when an AC voltage is applied between the first extraction electrode layer 11 and the second extraction electrode layer 12. Therefore, by using PVDF for the second dielectric layer 32, a variable capacitor 1 can be provided in which the relative dielectric constant εr changes significantly when the control voltage value is changed.
[0025] 4 is a diagram showing the relationship between the magnitude of the control electric field Ed generated by applying a control voltage between the first control electrode layer 21 and the second control electrode layer 22, and the relative dielectric constant εr when an AC voltage is applied between the first extraction electrode layer 11 and the second extraction electrode layer 12. The variable capacitor 1 has dielectric characteristics in which the relative dielectric constant εr has two peaks.
[0026] Ferroelectrics are spontaneously polarized when the control electric field is 0 V / m. When the control electric field is increased up to the coercive electric field Ec, the polarization becomes zero and the relative dielectric constant εr becomes maximum. Near the coercive electric field Ec, the dipole moment tends to move in a direction corresponding to the AC voltage applied between the first extraction electrode layer 11 and the second extraction electrode layer 12, which is thought to increase the relative dielectric constant εr.
[0027] When the control field Ed is larger than the coercive field Ec, the relative permittivity εr decreases. This is thought to be because the electric dipoles are constrained by the control field Ed and are less likely to move in response to the AC voltage.
[0028] In this embodiment, the direction of the control electric field Ed and the direction of the electric field generated by the application of an AC voltage intersect. Therefore, a peak in the relative permittivity εr appears even in a region where the control electric field Ed is smaller than the coercive electric field Ec. This is thought to be because the application of the control electric field Ed makes it easier for the electric dipoles to move in response to the application of the AC voltage than when the control electric field Ed is not applied.
[0029] The dielectric characteristics of the variable capacitor 1 have an assist region, a polarization inversion region, and a saturation region. When a control voltage in the assist region is applied, the polarization movement of the second dielectric layer 32 is assisted. Specifically, the assist region is a region where the control electric field Ed is smaller than the coercive electric field Ec, and the relative dielectric constant εr is larger than the relative dielectric constant ε1 and smaller than the relative dielectric constant ε2. Here, the relative dielectric constant εr is the relative dielectric constant εr when the control electric field Ed is zero. The relative dielectric constant ε2 is the minimum point between the two peaks of the relative dielectric constant εr.
[0030] When a control voltage for the polarization inversion region including the voltage of the coercive field Ec is applied, the polarization of the second dielectric layer 32 is more likely to be reversed in response to the AC voltage than in the assist region. Specifically, the polarization inversion region is an electric field range in which the control field Ed includes the coercive field Ec, and is a region in which the relative dielectric constant εr is larger than the peak value ε3 of the relative dielectric constant εr in the assist region.
[0031] When a control voltage in the saturation region is applied, the movement of polarization in the second dielectric layer 32 is constrained. Specifically, the saturation region is a region where the control field Ed is greater than the coercive field Ec, and the control field Ed is greater than the coercive field Ec.
[0032] As described above, by applying the control electric field Ed in the assist region, it is possible to make the polarization move more easily than when the control electric field Ed is not applied. Therefore, by applying the control electric field Ed in the assist region to the variable capacitor 1, it is possible to make the capacitance of the variable capacitor 1 larger than the capacitance when the control electric field Ed is not applied.
[0033] Furthermore, by applying a control electric field Ed in the polarization inversion region, the polarization can be made to move more easily than in the assist region. Therefore, by applying a control electric field Ed in the polarization inversion region to the variable capacitor 1, the capacitance of the variable capacitor 1 can be made larger than the capacitance when a control electric field Ed in the assist region is applied.
[0034] Furthermore, applying a control electric field Ed in the saturation region makes it difficult for polarization to move. Therefore, by applying a control electric field Ed in the saturation region to the variable capacitor 1, the capacitance of the variable capacitor 1 can be made smaller than the capacitance when a control electric field Ed in the assist region is not applied. Therefore, with the variable capacitor 1, the capacitance value of the variable capacitor 1 can be set to a desired capacitance value by adjusting the magnitude of the control electric field Ed.
[0035] As described above, PVDF rotates around the direction of extension of the carbon chain as a central axis. Therefore, as in the present application, polarization is likely to move when an AC voltage is applied from a direction different from the direction of the control electric field Ed. As a result, the dielectric properties of the second dielectric layer 32 are anisotropic. Furthermore, the relative dielectric constant εr of the second dielectric layer 32 changes depending on the magnitude of the control electric field Ed, making it possible to provide a variable capacitor 1 with an excellent variability. Here, the variability refers to the amount of change in the relative dielectric constant relative to the amount of change in the applied electric field.
[0036] According to the first embodiment described above, the first extraction electrode layer 11 and the second extraction electrode layer 12 are arranged at positions that generate an electric field along a direction that intersects with the electric field vector that is generated when a control voltage is applied. This allows the distance between the first extraction electrode layer 11 and the second extraction electrode layer 12 and the distance between the first control electrode layer 21 and the second control electrode layer 22 to be set independently. This allows the control voltage to be reduced.
[0037] Furthermore, the second dielectric layer 32 has a dielectric characteristic in which the relative dielectric constant εr when a control voltage for the assist region is applied is larger than the relative dielectric constant εr when no control voltage is applied. Therefore, by applying a control voltage for the assist region to the second dielectric layer 32, the capacitance value of the variable capacitor 1 can be made larger than when no control voltage is applied.
[0038] Furthermore, the second dielectric layer 32 has a dielectric characteristic in which the relative dielectric constant εr when a control voltage in the saturation region is applied is smaller than the relative dielectric constant εr when no control voltage is applied. Therefore, by applying a control voltage in the saturation region to the second dielectric layer 32, the capacitance value of the variable capacitor 1 can be made smaller than when no control voltage is applied.
[0039] Furthermore, the second dielectric layer 32 has a dielectric characteristic in which the relative dielectric constant εr when a control voltage for the polarization inversion region is applied is greater than the relative dielectric constant εr when no control voltage is applied. Therefore, by applying a control voltage for the polarization inversion region to the second dielectric layer 32, the capacitance value of the variable capacitor 1 can be made larger than when no control voltage is applied.
[0040] The first control electrode layer 21 and the second control electrode layer 22 face each other in the X direction, and the first extraction electrode layer 11 and the second extraction electrode layer 12 face each other in the Z direction perpendicular to the X direction. This allows the control electric field Ed to be applied uniformly to the second dielectric layer 32 regardless of the direction of the electric field generated by the AC voltage applied between the first extraction electrode layer 11 and the second extraction electrode layer 12.
[0041] The second dielectric layer 32 also has anisotropic dielectric properties. This allows for a variable capacitor 1 whose capacitance changes in response to the value of the control voltage when an AC voltage is applied in a direction different from that of the control voltage. The second dielectric layer 32 also contains a ferroelectric polymer. Because it contains a ferroelectric polymer, it allows for a variable capacitor 1 with a good capacitance variability.
[0042] B. Second embodiment: 5, a variable capacitor 201 according to this embodiment has a first arrangement body ST1 and a second arrangement body ST2. The same components as those in the first embodiment are denoted by the same reference numerals, and detailed descriptions thereof will be omitted as appropriate.
[0043] The second arrangement body ST2 is formed by arranging the first arrangement body ST1 in the Z direction. The first extraction electrode layers 11 and the second extraction electrode layers 12 are arranged alternately in the Z direction. The multiple first extraction electrode layers 11 are electrically connected to a first extraction electrode common layer (not shown). The multiple second extraction electrode layers 12 are electrically connected to a second extraction electrode common layer (not shown). By stacking the first arrangement body ST1 in the Z direction, the capacitors formed between adjacent first extraction electrode layers 11 and second extraction electrode layers 12 are connected in parallel with each other, thereby increasing the capacitance value of the variable capacitor 201.
[0044] When the size of the variable capacitor 1 is fixed, there is a trade-off between the capacitance value of the variable capacitor 1 and the electric field resistance of the variable capacitor 1. For example, in the case of the first arranging body ST1 shown in FIG. 6, if the first arrangement number of the first arranging body ST1 is n1 and the applied voltage is V1, the capacitance value C1 is expressed by the following formula (1) using the equation for a parallel plate capacitor. Here, the first arrangement number is the number of pairs of first control electrode layers 21 and second control electrode layers 22. In other words, when the number of first control electrode layers 21 and the number of second control electrode layers 22 are the same, the first arrangement number is equal to (2×n-1) where n is the number of layers. C1=ε0·ε r ·S1 / (D / n1)·n1 =ε0 ε r ·S1·n1 2 / D ···(1) The parameters in equation (1) are as follows: ε0: Dielectric constant of vacuum ε r : relative permittivity of the dielectric S1: Area of the capacitor formed by the first control electrode layer and the second control electrode layer D: Length in the stacking direction The inter-electrode distance d1, which is the distance between the first control electrode layer 21 and the second control electrode layer 22, is d1=W / n1 Moreover, the electric field E1 applied to the dielectric in the first arrangement body ST1 is expressed by the following formula (2). E1=V1 / (W / n1) =V1 n1 / W (2) From equations (1) and (2), it can be seen that increasing the first arrangement number n1 increases the capacitance value, but also the applied electric field. The magnitude of the applied electric field is limited by the electric field resistance, which is the electric field that can be applied to the dielectric. Therefore, the first arrangement number n1 is determined by the electric field resistance of the dielectric.
[0045] Similarly, for the second arranging body ST2, when the second arrangement number of the second arranging body ST2 is n2 and the applied voltage is V2, the capacitance value C2 is expressed by the following formula (3). C2=ε0·ε r ·S2 / H·n2 2 ···(3) The parameters in equation (3) are as follows: S2: Area of the capacitor formed by the first extraction electrode layer and the second extraction electrode layer H: Length in the stacking direction Moreover, the electric field E2 applied to the dielectric in the second arrangement body ST2 is expressed by the following formula (4). E2=V2 n2 / H (4)
[0046] The inventors have studied the optimum values of the first arrangement number n1 and the second arrangement number n2 when the size of the variable capacitor 1 is fixed. The values used in the study are as follows: Variable capacitor width (W: length in the Y direction): 20 mm Depth of variable capacitor (D: length in X direction): 20 mm Variable capacitor height (H: length in Z direction): 2 mm First capacitance value (large capacitance value): 300nF Second capacitance value (smaller capacitance): 60 nF Control voltage (V1): 10V AC voltage (V2): 200V (effective value) As a result of the investigation, it was found that the electric field resistance condition is met and the target capacitance value can be obtained when the first arrangement number n1 is 20,000 or more and the second arrangement number n2 is 100 or more. Figure 6 shows the electric field E1 when the first arrangement number n1 is 20,000 and the electric field E2 when the second arrangement number n2 is 100. "H = ε0 ε" obtained by transforming equation (3) r ·S2·n2 2 By substituting " / C2" for "H" in equation (4), the electric field E2 is expressed by the following equation (5). E2=C2·V2 / (ε0·ε r ·S2·n2) ···(5) Therefore, as shown in FIG. 6, when the capacitance value C2, the voltage V2, the area S2, and the second arrangement number n2 are set to fixed values, the relative dielectric constant ε r The larger the value, the smaller the electric field E2.
[0047] Here, when P(VDF-TrFE) is used as the dielectric, the relative dielectric constant εr that satisfies the target capacitance value is 20. Point PO in Fig. 6 indicates the electric field withstand strength of P(VDF-TrFE) when the relative dielectric constant εr is 20. As shown in Fig. 6, when the first arrangement number n1 is 20,000 and the second arrangement number n2 is 100, both the electric field E1 and the electric field E2 are smaller than the electric field withstand strength of the dielectric, and therefore the electric field withstand strength condition of the dielectric can be satisfied.
[0048] According to the second embodiment described above, the variable capacitor 201 has the first arrangement body ST1 and the second arrangement body ST2, and therefore the capacitance value of the variable capacitor 201 can be increased compared to a capacitor that does not have a structure in which the electrodes are alternately arranged. Furthermore, the direction in which the first control electrode layer 21 and the second control electrode layer 22 of the first arrangement body ST1 are arranged is different from the direction in which the first extraction electrode layer 11 and the second extraction electrode layer 12 of the second arrangement body ST2 are arranged, so it is possible to provide a variable capacitor 201 that satisfies both the electric field resistance and capacitance value requirements. Furthermore, by setting the first arrangement number n1 to 20,000 or more and the second arrangement number n2 to 100 or more, it is possible to provide a variable capacitor 201 with a desired capacitance value.
[0049] C. Third embodiment: 7, the variable capacitor 301 according to the third embodiment differs from the first embodiment in the opposing direction of the first extraction electrode layer 11 and the second extraction electrode layer 12, and the opposing direction of the first control electrode layer 21 and the second control electrode layer 22. The same components as those in the above embodiments are denoted by the same reference numerals, and detailed explanations will be omitted where appropriate.
[0050] As shown in FIG. 7 , the variable capacitor 301 has a first extraction electrode layer 11, a second extraction electrode layer 12, a first control electrode layer 21, a second control electrode layer 22, and a second dielectric layer 32, as well as a first insulating layer 51 and a second insulating layer 52. The first insulating layer 51 is disposed on the first control electrode layer 21. The first extraction electrode layer 11, the second extraction electrode layer 12, and the second dielectric layer 32 are disposed on the first insulating layer 51. The first extraction electrode layer 11 and the second extraction electrode layer 12 face each other in the X direction, with the second dielectric layer 32 sandwiched between them. The second insulating layer 52 is disposed on the second dielectric layer 32. The second insulating layer 52 covers the first extraction electrode layer 11, the second dielectric layer 32, and the second extraction electrode layer 12. The second control electrode layer 22 is disposed on the second insulating layer 52. The first control electrode layer 21 and the second control electrode layer 22 face each other in the Z direction, with the second dielectric layer 32 sandwiched therebetween.
[0051] In this embodiment, the first insulating layer 51 and the second insulating layer 52 contain the same material. For example, an oxide film such as aluminum oxide (Al2O3) or silicon dioxide (SiO2) can be used as the first insulating layer 51 and the second insulating layer 52. In another embodiment, the first insulating layer 51 and the second insulating layer 52 may contain different materials.
[0052] By disposing the first insulating layer 51 between the second dielectric layer 32 and the first control electrode layer 21 and the second insulating layer 52 between the second dielectric layer 32 and the second control electrode layer 22, the electric field generated when a control voltage is applied can be applied evenly to the second dielectric layer 32. This is because the disposition of the first insulating layer 51 and the second insulating layer 52 makes it possible to suppress the influence of the electric field generated when an AC voltage is applied between the first control electrode layer 21 and the second control electrode layer 22.
[0053] The inventors investigated the optimal values of the inter-electrode distance Lc between the first extraction electrode layer 11 and the second control electrode layer 22 of the variable capacitance capacitor 301 and the electrode length Le, which is the length of the second control electrode layer 22. The variable capacitance region Rcv shown in FIG. 8 is a region where the relative dielectric constant εr changes depending on the control voltage applied between the first control electrode layer 21 and the second control electrode layer 22, thereby varying the capacitance value. The fixed capacitance region Rcf is a region where the relative dielectric constant εr does not change, i.e., where the capacitance value is fixed, because an electric field is unlikely to be applied even when a control voltage is applied. The capacitor formed in the variable capacitance region Rcv is referred to as the variable capacitance capacitor Cv, and the capacitor formed in the fixed capacitance region Rcf is referred to as the fixed capacitance capacitor Cf. A capacitor is formed between the first extraction electrode layer 11 and the second extraction electrode layer 12, where the fixed capacitance capacitor Cf, the variable capacitance capacitor Cv, and the fixed capacitance capacitor Cf are connected in series. The capacitance value of the capacitor formed between the first extraction electrode layer 11 and the second extraction electrode layer 12, that is, the combined capacitance Cs, is given by the following formula (6). Cs=1 / (1 / Cf+1 / Cv+1 / Cf) ···(6) In equation (6), "Cf" represents the capacitance value of the fixed capacitor Cf, and "Cv" represents the capacitance value of the variable capacitor Cv.
[0054] The horizontal axis of the graph shown in FIG. 8 represents the variability of the variable capacitor Cv, and the vertical axis represents the variability of the combined capacitance Cs. The variability is the amount of change in capacitance relative to the amount of change in the electric field, i.e., (ΔC / ΔE). FIG. 8 is a graph plotting the variability calculated by setting the distance between the first extraction electrode layer 11 and the second extraction electrode layer 12, i.e., (Lc+Le+Lc), to a fixed value and changing the ratio of the inter-electrode distance Lc to the electrode length Le. As shown in FIG. 8, the variability of the combined capacitance Cs can be increased by decreasing the ratio of the inter-electrode distance Lc to the electrode length Le.
[0055] D. Fourth embodiment: The variable capacitor 1 according to the fourth embodiment shown in Fig. 9 is used in a power supply device 70 included in a contactless power supply system 400. The same components as those in the above embodiments are denoted by the same reference numerals, and detailed description thereof will be omitted as appropriate.
[0056] As shown in FIG. 9 , the contactless power supply system 400 includes a power supply device 70 and a power receiving device 80. In this embodiment, the power supply device 70 is buried under a road. The power receiving device 80 is mounted on a vehicle that is a mobile object that travels on the road. While the vehicle is traveling, power is supplied to the power receiving device 80 from the power supply device 70. Here, "while traveling" includes a case where the vehicle VE is moving and a case where the vehicle is stopped, such as waiting at a traffic light.
[0057] The moving body on which the power receiving device 80 is mounted is not limited to a vehicle that travels on a road, but may be, for example, an AGV (automated guided vehicle) or a traveling robot.
[0058] The power supply device 70 includes an AC power supply 71, a plurality of primary-side resonant circuits 72, and a plurality of control voltage application circuits 76. The AC power supply 71 supplies power to the plurality of primary-side resonant circuits 72. The primary-side resonant circuit 72 is a series resonant circuit having a primary coil L1 and a variable capacitor 1. The plurality of primary coils L1 are arranged along the direction in which the road extends. The control voltage application circuit 76 changes the voltage value of the control voltage applied to the variable capacitor 1, thereby changing the capacitance value of the variable capacitor 1.
[0059] The power receiving device 80 includes a secondary-side resonant circuit 81 and a power receiving-side circuit 83. The secondary-side resonant circuit 81 is a series resonant circuit having a secondary-side coil L2 and a capacitor 82. The power receiving-side circuit 83 is a circuit that uses the received power. The power receiving-side circuit 83 includes a rectifier circuit and a battery, not shown.
[0060] The AC power supply 71 applies AC power of a predetermined operating frequency to the primary-side resonant circuit 72. In this embodiment, the operating frequency is 85 kHz. The variable capacitor 1 has the function of placing the primary-side resonant circuit 72 in a resonant state at the operating frequency and in a non-resonant state at the operating frequency. In this embodiment, the variable capacitor 1 is configured to be switchable between a first capacitance value and a second capacitance value smaller than the first capacitance value. The capacitance value of the variable capacitor 1 is switched between the first capacitance value and the second capacitance value by a control voltage output from a control voltage application circuit 76. When the primary-side coil L1 and the secondary-side coil L2 are magnetically coupled and the variable capacitor 1 has the first capacitance value, the primary-side resonant circuit 72 is in a resonant state at the operating frequency. In other words, the first capacitance value of the variable capacitor 1 is set to a value that makes the resonant frequency of the primary-side resonant circuit 72 match the operating frequency. On the other hand, when the variable capacitor 1 has the second capacitance value, the resonant frequency of the primary-side resonant circuit 72 deviates from the operating frequency, causing the primary-side resonant circuit 72 to enter a non-resonant state at the operating frequency. Because the second capacitance value is smaller than the first capacitance value, when the variable capacitor 1 is set to the second capacitance value, the impedance of the primary-side resonant circuit 72 increases and the current flowing through the primary-side coil L1 decreases.
[0061] The state in which the variable capacitor 1 is set to a first capacitance value, a transmission current flows through the primary coil L1, and power is being supplied is called the power supply state.The state in which the variable capacitor 1 is set to a second capacitance value, a standby current smaller than the transmission current flows through the primary coil L1, and power is not being supplied is called the standby state.
[0062] When the primary coil L1 and the secondary coil L2 are magnetically coupled, the resonant frequency of the primary resonant circuit 72 and the resonant frequency of the secondary resonant circuit 81 are set to be substantially the same. This allows contactless power supply to the power receiving device 80 by magnetic field resonance between the primary coil L1 and the secondary coil L2.
[0063] The primary coils L1 are arranged in the direction of the road, and the secondary coils L2 receive contactless power from the nearest primary coil L1. In a standby state, a standby current flows through the primary coil L1, causing the primary coil L1 to generate magnetic flux. The power receiving device 80 includes a magnetic sensor (not shown). When the power receiving device 80 approaches a target primary resonant circuit 72, the magnetic sensor detects the magnetic flux generated by the primary coil L1. Upon detecting the magnetic flux, the power receiving device 80 passes an AC current through the secondary coil L2, generating magnetic flux. The power feeding device 70 also includes a magnetic sensor (not shown). When the magnetic sensor detects the magnetic flux generated by the secondary coil L2, the control voltage application circuit 76 changes the voltage value of the control voltage to switch the variable capacitor 1 to a first capacitance value. This causes the primary resonant circuit 72 to enter a resonant state, and power feeding begins.
[0064] The method by which the power supply device 70 detects the presence of the secondary coil L2 is not limited to the above. As another embodiment, the power supply device 70 may detect a current flowing through the primary coil L1 and detect an increase in the current, or may detect a voltage across the primary coil L1 and detect an increase in the voltage.
[0065] As shown in FIG. 10, in the power supply state, the control voltage application circuit 76 sets the control voltage to 0 V. As a result, the control electric field Ed applied to the second dielectric layer 32 becomes 0 V / m. The capacitance value of the variable capacitor 1 is set to a first capacitance value. The relative dielectric constant εr is represented by the amount of change in polarization relative to the amount of change in the electric field, i.e., the slope of the hysteresis curve. In the standby state, the control voltage application circuit 76 sets the control voltage to a voltage value in the saturation region. As a result, the relative dielectric constant εr becomes smaller than in the power supply state, and the capacitance value of the variable capacitor 1 becomes a second capacitance value that is smaller than the capacitance value in the power supply state. In the standby state, the area of the hysteresis curve becomes smaller, allowing for low loss.
[0066] According to the fourth embodiment described above, the variable capacitor 1 is used in the power supply device 70. When the power supply device 70 is in a standby state, the control voltage application circuit 76 applies a voltage in the saturation region, thereby making the capacitance value of the variable capacitor 1 smaller than the capacitance value in the power supply state. This makes it possible to reduce loss occurring in the variable capacitor 1 in the standby state.
[0067] E. Other Embodiments: (E1) In the first embodiment, the second dielectric layer 32 includes a ferroelectric polymer. In another embodiment, the second dielectric layer 32 may include an inorganic ferroelectric material such as barium titanate (BaTiO). Like ferroelectric polymers, the dielectric constant εr of inorganic ferroelectric materials changes depending on the magnitude of the control voltage. This makes it possible to provide a variable capacitor 1. It is even more preferable if the inorganic ferroelectric material has anisotropic dielectric properties. This is because the dielectric constant changes depending on the magnitude of the control voltage even when the direction in which the control voltage is applied is different from the direction in which the AC voltage is applied, making it possible to provide a variable capacitor 1 with an excellent variability. Note that barium titanate can be polarized along each of the three axes of its crystal structure, and therefore its dielectric properties are anisotropic.
[0068] (E2) In the first embodiment, the second dielectric layer 32 includes a ferroelectric polymer. In another embodiment, the second dielectric layer 32 may include a ferroelectric relaxor. A ferroelectric relaxor is a polymer in which domains in which the polarization of the molecules is aligned are locally formed, as shown in FIG. 11. A ferroelectric relaxor has the property that the polarization direction can be locally changed, and therefore the polarization moves with a small electric field. By using a ferroelectric relaxor as the second dielectric layer 32, the variability of the capacitance of the variable capacitor 1 can be improved. Furthermore, since the area of the hysteresis curve is smaller than that of a ferroelectric, a variable capacitor 1 with low loss can be provided. Specific examples of ferroelectric relaxors include copolymers obtained by copolymerizing P(VDF-TrFE) with a third monomer such as CTFE or CFE, such as P(VDF-TrFE-CTFE) and P(VDF-TrFE-CTE). Alternatively, a ferroelectric relaxor can be fabricated by irradiating a ferroelectric polymer, such as P(VDF-TrFE), with an electron beam to create defects.
[0069] (E3) In the fourth embodiment, the control voltage application circuit 76 applies a control voltage in the saturation region when the power supply device 70 is in a standby state, Power supply In another embodiment, the control voltage application circuit 76 does not apply the control voltage in the power supply device 70. Power supply In this state, a control voltage for the polarization inversion region or the assist region is applied to the power supply device 70. stand-by In this state, no control voltage may be applied.
[0070] (E4) In the first embodiment, the first control electrode layers 21 and the second control electrode layers 22 are alternately arranged in the X direction. In another embodiment, a configuration may be adopted in which there is one first control electrode layer 21 and one second control electrode layer 22. In the first embodiment, the first extraction electrode layer 11 and the second extraction electrode layer 12 face each other in the Z direction, and the first control electrode layer 21 and the second control electrode layer 22 face each other in the X direction. The facing direction is not limited to this. For example, a configuration may be adopted in which the first extraction electrode layer 11 and the second extraction electrode layer 12 face each other in the X direction, and the first control electrode layer 21 and the second control electrode layer 22 face each other in the Z direction.
[0071] The present disclosure is not limited to the above-described embodiments and modifications, and can be realized in various configurations without departing from the spirit thereof. For example, the technical features in the embodiments and modifications corresponding to the technical features in each aspect described in the Summary of the Invention section can be appropriately replaced or combined to solve some or all of the above-described problems or achieve some or all of the above-described effects. Furthermore, if a technical feature is not described as essential in this specification, it can be appropriately deleted.
[0072] Other forms: The features of the present disclosure are as follows: (Form 1) A variable capacitor (1, 201, 301), A first control electrode (21), a second control electrode (22) facing the first control electrode; a dielectric layer (32) disposed at least between the first control electrode and the second control electrode; a first extraction electrode (11) and a second extraction electrode (12) facing each other with the dielectric layer interposed therebetween; a variable capacitance capacitor, wherein the first extraction electrode and the second extraction electrode are arranged at positions that generate an electric field along a direction that intersects with an electric field vector generated between the first control electrode and the second control electrode when a control voltage is applied between the first control electrode and the second control electrode. (Form 2) The variable capacitor according to aspect 1, A variable capacitance capacitor, wherein the dielectric layer has a dielectric characteristic in which the relative dielectric constant of an assist region for assisting polarization movement when the control voltage is applied is greater than the relative dielectric constant when the control voltage is not applied. (Form 3) The variable capacitor according to aspect 1 or 2, A variable capacitance capacitor, wherein the dielectric layer has a dielectric characteristic in which the relative dielectric constant when the control voltage in the saturation region for constraining the movement of polarization is applied is smaller than the relative dielectric constant when the control voltage is not applied. (Form 4) The variable capacitor according to any one of aspects 1 to 3, A variable capacitance capacitor, wherein the dielectric layer has a dielectric characteristic in which the relative dielectric constant when the control voltage of the polarization inversion region including the voltage value of the coercive field is applied is greater than the relative dielectric constant when the control voltage is not applied. (Form 5) The variable capacitor according to any one of aspects 1 to 4, The first control electrode and the second control electrode face each other in a first direction, and the first extraction electrode and the second extraction electrode face each other in a second direction perpendicular to the first direction. (Form 6) The variable capacitor according to any one of aspects 1 to 5, a first arrangement body (ST1) in which the first control electrodes and the second control electrodes are alternately arranged with the dielectric layer interposed therebetween; a second arrangement body (ST2) in which the first control electrodes and the second control electrodes are alternately arranged with the first arrangement body interposed therebetween, the variable capacitor having a capacitance of 1000 Ω / s. (Form 7) The variable capacitor according to claim 6, A variable capacitor, wherein the number of arrangements of the first arrangement body is 20,000 or more, and the number of arrangements of the second arrangement body is 100 or more. (Form 8) The variable capacitor according to any one of aspects 1 to 7, A variable capacitor, wherein the dielectric properties of the dielectric layer are anisotropic. (Form 9) The variable capacitor according to any one of aspects 1 to 8, The variable capacitor, wherein the dielectric layer comprises either a ferroelectric polymer or an inorganic ferroelectric. (Form 10) The variable capacitor according to any one of the first to ninth aspects, The variable capacitor, wherein the dielectric layer includes a ferroelectric relaxor. (Form 11) A power supply device (70) having the variable capacitor according to any one of aspects 1 to 10, the dielectric layer includes a ferroelectric material; the power supply device includes a resonant circuit (72) formed of the variable capacitor and a primary coil (L1), and a control voltage application circuit (76) that applies the control voltage between the first control electrode and the second control electrode, The control voltage application circuit applies a voltage in a saturation region for constraining the movement of polarization when the power supply device is in a standby state. [Explanation of symbols]
[0073] 1, 201, 301...variable capacitor, 11...first extraction electrode, 12...second extraction electrode layer, 21...first control electrode layer, 22...second control electrode layer, 31...first dielectric layer, 32...second dielectric layer
Claims
1. A power supply device (70) having a variable capacitance capacitor, a resonant circuit (72) consisting of the variable capacitor (1, 201, 301) and a primary coil (L1); a control voltage application circuit (76) that applies a control voltage to the variable capacitor; The variable capacitor is A first control electrode (21); a second control electrode (22) facing the first control electrode; a dielectric layer (32) disposed at least between the first control electrode and the second control electrode; a first extraction electrode (11) and a second extraction electrode (12) facing each other with the dielectric layer interposed therebetween; the first extraction electrode and the second extraction electrode are disposed at positions that generate an electric field along a direction intersecting an electric field vector generated between the first control electrode and the second control electrode when the control voltage is applied between the first control electrode and the second control electrode; the control voltage application circuit applies the control voltage between the first control electrode and the second control electrode; the dielectric layer includes a ferroelectric material, and has a dielectric characteristic in which the relative dielectric constant of a polarization inversion region when the control voltage including a voltage value of a coercive electric field is applied is larger than the relative dielectric constant when the control voltage is not applied; The power supply device, wherein the control voltage application circuit applies the control voltage to the polarization inversion region when the power supply device is in a power supplying state, and does not apply the control voltage when the power supply device is in a standby state.
2. The power supply device according to claim 1, The dielectric layer has dielectric properties such that the relative permittivity of an assist region for assisting polarization movement when the control voltage is applied is greater than the relative permittivity when the control voltage is not applied.
3. The power supply device according to claim 1, The dielectric layer has dielectric properties in which the relative permittivity when the control voltage in a saturation region for constraining polarization movement is applied is smaller than the relative permittivity when the control voltage is not applied.
4. The power supply device according to claim 1, The power supply device, wherein the first control electrode and the second control electrode face each other in a first direction, and the first extraction electrode and the second extraction electrode face each other in a second direction perpendicular to the first direction.
5. The power supply device according to claim 1, a first arrangement (ST1) in which the first control electrodes and the second control electrodes are alternately arranged with the dielectric layer interposed therebetween; a second arrangement body (ST2) in which the first extraction electrodes and the second extraction electrodes are alternately arranged with the first arrangement body interposed therebetween, the power supply device comprising:
6. The power supply device according to claim 5, A power supply device, wherein the number of the first arrangement bodies is 20,000 or more, and the number of the second arrangement bodies is 100 or more.
7. The power supply device according to claim 1, A power supply device, wherein the dielectric layer has anisotropic dielectric properties.
8. The power supply device according to claim 1, The power supply device, wherein the dielectric layer includes either a ferroelectric polymer or an inorganic ferroelectric.
9. The power supply device according to claim 1, The power supply device, wherein the dielectric layer includes a ferroelectric relaxor.
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