Isolator

The isolator design with aligned coils and magnets enhances magnetic flux coupling, addressing the low coupling coefficient issue in existing isolators, thereby improving signal transmission efficiency.

JP7788976B2Active Publication Date: 2025-12-19KK TOSHIBA +1
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Patent Information

Application Number
JP2022149173
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-20
Publication Date
2025-12-19
Estimated Expiration
2042-09-20

AI Technical Summary

Technical Problem

Existing isolators have a low coupling coefficient, which affects their efficiency in signal transmission.

Method used

The isolator design includes a first and a second coil with a specific spiral shape, aligned along a common axis, and two magnets with opposing poles and openings, sealed by an insulator, to enhance magnetic flux coupling.

Benefits of technology

This configuration results in a high coupling coefficient, improving the efficiency of signal transmission between the transmitting and receiving circuits.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an isolator with high coupling coefficient.SOLUTION: An isolator according to an embodiment includes a first coil, a second coil that arranged along the first coil and the first axis and faces the first coil, a plate-shaped first magnet that is provided on the opposite side of the second coil to the side where the first coil is located, faces the second coil, and extends along a first surface that intersects with the first axis, and a first insulator that seals the first coil, the second coil, and the first magnet.SELECTED DRAWING: Figure 7
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Description

[Technical Field]

[0001] FIELD OF THE INVENTION An embodiment of the present invention relates to an isolator. [Background technology]

[0002] 2. Description of the Related Art An isolator is known that includes a transmitting circuit and a receiving circuit that are isolated from each other and that can transmit a signal from the transmitting circuit to the receiving circuit. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 11-54336 Summary of the Invention [Problem to be solved by the invention]

[0004] To provide an isolator having a high coupling coefficient. [Means for solving the problem]

[0005] In one embodiment, the isolator includes a first coil and , th 2 coils and , th 1 magnet, A second magnet; a first insulator. The first coil has a spiral shape along a first surface. The second coil is aligned with the first coil along a first axis intersecting the first surface, faces the first coil, and has a spiral shape along the first surface. The first magnet is provided on the side of the second coil opposite to the side on which the first coil is located, faces the second coil, extends along the first surface, and includes a first surface and a second surface located farther from the first surface along the first axis than the second coil. The first surface is a south pole, and the second surface is a north pole. The first magnet is plate-shaped and has a first opening extending between the first surface and the second surface. The second magnet is provided on the side of the first coil opposite to the side on which the second coil is located, faces the first coil, extends along the first surface, and includes a third surface and a fourth surface located farther from the first coil along the first axis than the third surface. The third surface is a north pole and the fourth surface is a south pole. The second magnet is plate-shaped and has a second opening extending from the third surface to the fourth surface. The first insulator seals the first coil, the second coil, the first magnet, and the second magnet. [Brief explanation of the drawings]

[0006] [Figure 1] FIG. 2 is a diagram showing an example of the planar structure of the isolator according to the first embodiment. [Figure 2] 2A and 2B are diagrams showing an example of a cross-sectional structure of the isolator according to the first embodiment. [Figure 3] FIG. 2 is a perspective view showing an example of the structure of an isolator module of the isolator according to the first embodiment. [Figure 4] FIG. 2 is a perspective view showing an example of the structure of an isolator module of the isolator according to the first embodiment. [Figure 5]FIG. 2 is a perspective view showing an example of the structure of a portion of a wiring board of the isolator according to the first embodiment. [Figure 6] FIG. 2 is a perspective view showing an example of the structure of a portion of a wiring board of the isolator according to the first embodiment. [Figure 7] 2A and 2B are diagrams showing an example of a cross-sectional structure of an isolator module of the isolator according to the first embodiment. [Figure 8] 3A and 3B are diagrams showing an example of the structure of the isolator module of the isolator according to the first embodiment along the xy plane. [Figure 9] 3A and 3B are diagrams showing an example of the structure of the isolator module of the isolator according to the first embodiment along the xy plane. [Figure 10] FIG. 3 is a diagram showing an example of magnetic flux generated in the isolator module of the first embodiment. [Figure 11] FIG. 10 is a perspective view of a magnet of an isolator according to a modified example of the first embodiment. [Figure 12] FIG. 10 is a perspective view of a magnet of an isolator according to a modified example of the first embodiment. [Figure 13] FIG. 10 is a perspective view of a magnet of an isolator according to a modified example of the first embodiment. [Figure 14] FIG. 10 is a perspective view showing an example of the structure of a wiring board of an isolator according to a modified example of the first embodiment. [Figure 15] FIG. 10 is a perspective view showing an example of the structure of a wiring board of an isolator according to a modified example of the first embodiment. [Figure 16] FIG. 2 is a perspective view showing an example of the structure of an isolator module of the isolator according to the first embodiment. [Figure 17] FIG. 2 is a perspective view showing an example of the structure of an isolator module of the isolator according to the first embodiment. [Figure 18] FIG. 10 is a diagram showing an example of the structure of a part of an isolator according to a modified example of the first embodiment, taken along the xy plane. [Figure 19] FIG. 10 is a diagram showing an example of a cross-sectional structure of an isolator module of the isolator according to the second embodiment. [Figure 20] FIG. 10 is a diagram showing an example of a cross-sectional structure of an isolator module of the isolator according to the third embodiment. [Figure 21] FIG. 10 is a diagram showing an example of a cross-sectional structure of an isolator module of the isolator according to the third embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0007] Hereinafter, embodiments will be described with reference to the drawings. All descriptions of certain embodiments and modifications also apply to descriptions of other embodiments and modifications, unless explicitly or obviously excluded. The dimensions and proportions of components in the drawings may differ from those in reality. Furthermore, the dimensional relationships and proportions of parts may differ between drawings.

[0008] Hereinafter, embodiments will be described using an xyz Cartesian coordinate system. In the following description, the term "bottom" and its derivatives and related terms refer to a position with a smaller coordinate on the z axis, and the term "top" and its derivatives and related terms refer to a position with a larger coordinate on the z axis.

[0009] 1. First embodiment Fig. 1 shows a planar structure of the isolator of the first embodiment. Fig. 2 shows an example of the cross-sectional structure of the isolator of the first embodiment, showing a cross section taken along line II-II in Fig. 1.

[0010] 1 and 2, the isolator 1 includes a frame 10, semiconductor chips 20 and 30, an isolator module 40, adhesive members 11, 12, and 13, bonding wires 22a, 22b, 23, 32a, 32b, and 33, external connection terminals 24 and 34, and an insulator 50. The insulator 50 is not depicted in FIG.

[0011] The frame 10 is a metal plate and supports the semiconductor chips 20 and 30 and the isolator module 40. The frame 10 extends along the xy plane.

[0012] The semiconductor chip 20 is an IC (Integrated Circuit) chip formed on a semiconductor. The semiconductor chip 20 is disposed on the upper surface of the frame 10 via an adhesive member 11. The semiconductor chip 20 includes a circuit 21 therein. The circuit 21 includes a signal transmission / reception circuit and a modulation / demodulation circuit.

[0013] The semiconductor chip 30 is an IC chip formed on a semiconductor. It is placed on the upper surface of the frame 10 via an adhesive member 12. The semiconductor chip 30 is aligned with the semiconductor chip 20 along the x-axis. The semiconductor chip 30 includes a circuit 31 therein. The circuit 31 includes a signal transmission / reception circuit and a modulation / demodulation circuit.

[0014] The isolator module 40 is a module that functions as a digital isolator. The isolator module 40 is disposed on the upper surface of the frame via an adhesive member 13. The isolator module 40 is located between the semiconductor chip 20 and the semiconductor chip 30 along the x-axis. The isolator module 40 includes a transformer. The isolator module 40 is configured to transmit signals between a transmitting circuit (primary circuit) and a receiving circuit (secondary circuit) while isolating the transmitting circuit and the receiving circuit using the transformer. The isolator module 40 will be described in detail later.

[0015] The bonding wires 22 a and 22 b electrically connect the semiconductor chip 20 and the isolator module 40 .

[0016] The bonding wires 32 a and 32 b electrically connect the semiconductor chip 30 and the isolator module 40 .

[0017] The external connection terminals 24 are aligned along the x-axis with the frame 10. The external connection terminals 24 are electrically connected to the semiconductor chip 20 by bonding wires 23.

[0018] The external connection terminals 34 are aligned along the x-axis with the frame 10. The external connection terminals 34 are electrically connected to the semiconductor chip 30 by bonding wires 33.

[0019] The insulator 50 includes, for example, a resin. The insulator 50 encapsulates the frame 10, the semiconductor chips 20 and 30, the isolator module 40, and the bonding wires 22a, 22b, 23, 32a, 32b, and 33. The external connection terminals 24 and 34 are fixed by the insulator 50 and are partially exposed to the outside of the insulator 50.

[0020] Fig. 3 is a perspective view showing an example of the structure of the isolator module of the isolator of the first embodiment. Fig. 3 shows some conductors in the isolator module 40 in a transparent manner. Fig. 3 shows the top surface of the isolator module 40 on the upper side.

[0021] The isolator module 40 includes, for example, wiring boards 41 and 42 , an insulator 43 , and a magnet 45 .

[0022] The wiring board 41 is an insulator containing wiring therein. The wiring board 41 has a plate-like shape, for example, a rectangular shape along the xy plane. The wiring board 41 is, for example, a flexible printed circuit (FPC). The wiring board 41 includes a transmission circuit of the isolator module 40. The wiring board 41 includes conductive pads 411a and 411b. The pads 411a and 411b are arranged along one side of the isolator module 40 (one side of the wiring board 41). The pads 411a and 411b contact the bonding wires 22a and 22b, respectively. The wiring board 41 will be described further below.

[0023] Insulator 43 is located on the top surface of wiring board 41 .

[0024] The wiring board 42 is an insulator containing wiring therein. The wiring board 42 is located on the upper surface of the insulator 43. The wiring board 42 has a plate-like shape, e.g., a rectangular shape along the xy plane. The wiring board 42 is, for example, a flexible printed wiring board. The wiring board 42 includes a receiving circuit of the isolator module 40. The wiring board 42 includes conductive pads 421a and 421b. The pads 421a and 421b are arranged along the side opposite to the side along which the pads 411a and 411b of the isolator module 40 are arranged. The pads 421a and 421b contact the bonding wires 32a and 32b, respectively. The area of ​​the wiring board 42 along the xy plane is smaller than the area of ​​the wiring board 41 along the xy plane. Therefore, the upper surface of the wiring board 41 is partially exposed. Pads 411a and 411b of wiring board 41 are located in areas of wiring board 41 that are exposed from wiring board 42. Wiring board 42 will be described further below.

[0025] The magnet 45 is a permanent magnet. Examples of the magnet 45 include a magnet containing iron and platinum, a magnet containing cobalt and iron, a magnet containing samarium and cobalt, and a magnet containing neodymium, iron, and boron. The magnet 45 is located on the upper surface of the circuit board 42. The magnet 45 has, for example, a circular ring shape.

[0026] The isolator module 40 can be formed, for example, by joining the separately formed wiring boards 41 and 42 together by the insulator 43, where the insulator 43 is an adhesive insulator.

[0027] FIG. 4 is a perspective view showing an example of the structure of an isolator module of the isolator of the first embodiment. FIG. 4 shows some conductors in the isolator module 40 in a transparent manner. FIG. 4 shows the bottom surface of the isolator module 40 from the top. As shown in FIG. 4, the isolator module 40 further includes a magnet 46. The magnet 46 is a permanent magnet. Examples of the magnet 46 include a magnet containing iron and platinum, a magnet containing cobalt and iron, a magnet containing samarium and cobalt, and a magnet containing neodymium, iron, and boron. The magnet 46 is located on the bottom surface of the wiring board 41. The magnet 46 has, for example, a circular ring shape.

[0028] 5 is a perspective view showing an example of the structure of wiring board 41 of the isolator of the first embodiment. Fig. 5 shows some conductors in wiring board 41 in a transparent manner. As shown in Fig. 5, wiring board 41 further includes conductors 412a and 412b, conductive plugs 413a and 413b, and a coil 414.

[0029] Coil 414 is a linear conductor having a spiral shape along the xy plane. That is, the locus of the linear conductor constituting coil 414 forms a spiral shape along the xy plane. The spiral may be, for example, a curved line, and the outer shape along the xy plane may be a circular shape. The spiral may have any shape. The spiral may include a straight line. The outer shape of the spiral along the xy plane may be a polygonal shape. Coil 414 includes, for example, copper. The end located in the center of coil 414 (central end) is connected to plug 413a. The end opposite to the central end of coil 414 (outer peripheral end) is connected to plug 413b.

[0030] The conductor 412a contacts the pad 411a and the plug 413a, and the conductor 412b contacts the pad 411b and the plug 413b.

[0031] A current path is formed between the bonding wires 22a and 22b by electrically connecting the conductors 412a and 412b, the plugs 413a and 413b, and the coil 414. The coil 414 is also called a primary coil.

[0032] Fig. 6 is a perspective view showing an example of the structure of wiring board 42 of the isolator of the first embodiment. Fig. 6 shows some conductors in wiring board 42 through a transparent view. As shown in Fig. 6, wiring board 42 further includes conductors 422a and 422b, conductive plugs 423a and 423b, and a coil 424.

[0033] Coil 424 is a linear conductor having a spiral shape along the xy plane. That is, the trajectory of the linear conductor constituting coil 424 forms a spiral shape along the xy plane. The spiral may be, for example, a curved line, and the outer shape along the xy plane may be a circular shape. The spiral may have any shape. The spiral may include a straight line. The outer shape of the spiral along the xy plane may be a polygonal shape. Coil 424 includes, for example, copper. Coil 424 has, for example, the same outer shape as coil 414.

[0034] Coil 424 faces coil 414. That is, when viewed in the positive direction of the z axis (+z direction), coil 424 at least partially overlaps coil 414, for example, a spiral portion of coil 424 overlaps a spiral portion of coil 414. For example, when viewed in the +z direction, the trajectory of coil 424 (the trajectory of the conductors that make up coil 424) overlaps the trajectory of coil 414.

[0035] The region enclosed by the innermost curve of the locus of coil 424 at least partially overlaps with the region enclosed by the innermost curve of the locus of coil 414. Therefore, for example, when viewed in the +z direction, there are regions in the central region of coil 414 and the central region of coil 414 where neither the locus of coil 414 nor the locus of coil 424 is located.

[0036] The central end of coil 424 is connected to plug 423a, and the outer peripheral end of coil 424 is connected to plug 423b.

[0037] The conductor 422a contacts the pad 421a and the plug 423a, and the conductor 422b contacts the pad 421b and the plug 423b.

[0038] Electrical connections between the conductors 422a and 422b, the plugs 423a and 423b, and the coil 424 form a current path between the bonding wires 32a and 32b. The coil 414 is also referred to as a secondary coil.

[0039] FIG. 7 shows an example of the cross-sectional structure of the isolator module of the isolator of the first embodiment, showing a cross section taken along line VII-VII in FIGS. 3 and 4. As shown in FIG. 7, wiring board 41 includes insulators 415, 416, 417, 418, and 419. Insulators 415, 416, 417, 418, and 419 are stacked in this order in the +z direction. Insulators 415 and 419 form the lower and upper surfaces of wiring board 41, respectively.

[0040] The conductor 412a is located in the insulator 416. A conductor 412b (not shown) is also located in the insulator 416. The insulators 417, 418, and 419 are partially open, and a pad 411a is located below the opening. The pad 411a is integral with the conductor 412a, and a portion of the conductor that functions as the pad 411a and the conductor 412a functions as the pad 411a, and another portion functions as the conductor 412a. Similarly, the insulators 417, 418, and 419 are partially open in a region not shown, and a pad 411b is located below the opening. The pad 411b is integral with the conductor 412b, and a portion of the conductor that functions as the pad 411b and the conductor 412b functions as the pad 411b, and another portion functions as the conductor 412b.

[0041] The plug 413a is located in the insulator 417 and penetrates the insulator 417 along the z-axis. The lower surface of the plug 413a contacts the upper surface of the conductor 412a. The insulator 417 also contains a plug 413b (not shown) that penetrates the insulator 417 along the z-axis. The plug 413b contacts the upper surface of the conductor 412b (not shown).

[0042] Coil 414 is located in insulator 418. The lower surface of coil 414 contacts the upper surface of plug 413a and the upper surface of plug 413b.

[0043] Wiring board 42 includes insulators 425, 426, 427, 428, and 429. Insulators 425, 426, 427, 428, and 429 are stacked in this order in the +z direction. Insulators 425 and 429 form the lower and upper surfaces of wiring board 42, respectively.

[0044] The coil 424 is located in an insulator 426 .

[0045] Plug 423a is located in insulator 427 and penetrates insulator 427 along the z-axis. Plug 423a has a lower surface that contacts the upper surface of coil 424. Plug 423b (not shown) that penetrates insulator 427 along the z-axis is also located in insulator 427. For example, plug 423a is located directly above plug 423.

[0046] The conductor 422a is located in the insulator 428. The insulator 429 has a partial opening, and the pad 421a is located below the opening. The pad 421a is integral with the conductor 422a, and a portion of the conductor that functions as the pad 421a and the conductor 422a functions as the pad 421a, and another portion functions as the conductor 422a. The lower surface of the conductor 422a contacts the upper surface of the plug 423a.

[0047] A conductor 422b (not shown) is also located in the insulator 428. The insulator 429 has a partial opening in a region (not shown), and a pad 421b is located below the opening. The pad 421b is integrated with the conductor 422b, and a portion of the conductor that functions as the pad 421b and the conductor 422b functions as the pad 421b, and another portion functions as the conductor 422b.

[0048] Magnet 45 is located on the upper surface of insulator 429. Magnet 45 is located directly above coils 414 and 424. Magnet 45 has an opening 45A in a region including the center along the xy plane. Opening 45A extends, for example, from the upper surface to the lower surface of magnet 45. Magnet 45 is oriented to generate a magnetic field that is the same as the magnetic field generated by current flowing through the primary circuit. For example, when current flows from bonding wire 22a to bonding wire 22b, a downward magnetic field (negative direction of the z-axis (-z direction)) is generated in coil 414. In this case, magnet 45 has its north pole on the upper side and its south pole on the lower side.

[0049] Magnet 46 is located on the lower surface of insulator 415. Magnet 46 is located directly below coils 414 and 424. Magnet 46 has opening 46A in a region including the center along the xy plane. Opening 46A reaches, for example, from the upper surface to the lower surface of magnet 46. Magnet 46 is oriented to generate a magnetic field that is the same as the magnetic field generated by the current flowing through the primary circuit, and is oriented in the same direction as magnet 45. For example, if magnet 45 has a north pole on the upper side and a south pole on the lower side, magnet 46 has a north pole on the upper side and a south pole on the lower side.

[0050] FIG. 8 shows an example of the structure of the isolator module of the isolator according to the first embodiment along the xy plane. FIG. 8 shows only the coil 414 and magnet 45 of the isolator module 40. As shown in FIG. 8, the opening 45A is located inside the innermost curved locus of the conductors (shown by dashed lines) that make up the coil 414. The opening 45A does not have to be located inside the innermost curved locus of the conductors of the coil 414. When viewed in the +z direction, it is most desirable that the center of the opening 45A overlaps with the center of the coil 414.

[0051] FIG. 9 shows an example of the structure of the isolator module of the isolator according to the first embodiment along the xy plane. FIG. 9 shows only the coil 424 and magnet 45 of the isolator module 40. As shown in FIG. 9, the opening 46A is located inside the innermost curved locus of the conductors (shown by dashed lines) that make up the coil 424. The opening 46A does not have to be located inside the innermost curved locus of the conductors of the coil 424. When viewed in the +z direction, it is most desirable that the center of the opening 46A overlaps with the center of the coil 424.

[0052] According to the first embodiment, isolator module 40 includes coils 414 and 424 facing each other, magnet 45 facing coil 414, and magnet 46 facing coil 424. This provides isolator module 40 with a high coupling coefficient, as described below.

[0053] FIG. 10 shows an example of magnetic flux generated in the isolator module of the first embodiment. As shown in FIG. 10, magnetic flux (thin arrows) is generated around magnet 45, from the north pole of magnet 45 toward the south pole of magnet 45. Only a portion of the magnetic flux generated by magnet 45 is shown, and magnetic flux not shown is also generated in the inner region (central region) of the innermost locus of the conductor of coil 414 and the inner region (central region) of the innermost locus of the conductor of coil 424. Similarly, magnetic flux generated by magnet 46 generates magnetic flux from the north pole of magnet 46 toward the south pole of magnet 46, as shown by the thin arrows. Magnetic flux MFM is generated by the magnetic flux components of magnets 45 and 46. The magnetic flux MFM passes through the central region of coil 414 and the central region of coil 424.

[0054] While isolator module 40 is operating, i.e., transmitting a signal from a transmitting circuit to a receiving circuit, a current flows through coil 414 in the direction depicted by the symbols in each cross-section of coil 414. This current generates a magnetic flux MFI. Magnetic flux MFI spans the central region of coil 414 and the central region of coil 424. Electromagnetic induction due to magnetic flux MFI generates a current in coil 424.

[0055] The magnetic flux MFM is generated so as to overlap with the magnetic flux MFI that causes electromagnetic induction in the coil 424. Therefore, the magnetic flux MFM assists the electromagnetic induction when the magnetic flux MFI is generated. In other words, the magnetic flux MFM effectively increases the coupling coefficient between the coil 414 and the coil 424. Therefore, the isolator module 40 has a high coupling coefficient.

[0056] (Modification of the first embodiment) 8 and 9 show an example in which the magnets 45 and 46 have approximately the same outer shapes as the coils 414 and 424, respectively, and overlap with the coils 414 and 424. However, the magnets 45 and 46 may have the same outer shapes as the coils 414 and 424, respectively. That is, the magnet 45 may have an outer shape that is slightly larger or slightly smaller than the outer shape of the coil 424, and / or the magnet 46 may have an outer shape that is slightly larger or slightly smaller than the outer shape of the coil 414. Furthermore, the magnet 45 may only partially overlap with the coil 424 along the xy plane, and / or the magnet 46 may only partially overlap with the coil 414 along the xy plane.

[0057] Only one of the magnets 45 and 46 may be provided.

[0058] As shown in Figures 11 to 13, the magnets 45 and / or 46 may have a shape other than a circular annular shape. Figures 11 to 13 are perspective views of the magnets 45 and 46 of an isolator according to a modified example of the first embodiment. As shown in Figure 11, the magnets 45 and 46 have grooves 45B and 46B, respectively. The grooves 45B and 46B are connected to the openings 45A and 46A, respectively, and extend linearly to the edges of the magnets 45 and 46.

[0059] 12, magnets 45 and 46 may not have openings 45A and 46A, respectively. In this example, the edges of magnets 45 and 46 along the xy plane are located inside the locus of the innermost curve of the conductors that make up coils 424 and 414, respectively. In other words, the shapes of magnets 45 and 46 along the xy plane are smaller than the areas of the regions enclosed by the locus of the innermost curve of the conductors that make up coils 424 and 414, respectively.

[0060] As shown in Figure 13, the magnets 45 and 46 may have a polygonal shape along the xy plane. Figure 13 shows an example of a quadrangle. Furthermore, the openings 45A and 46A may also have a polygonal shape.

[0061] The coils 414 and 424 may have any shape along the xy plane. For example, the coils 414 and / or 424 may have a shape in which a plurality of spirals are connected, as shown in Figs. 14 to 16. Fig. 14 is a perspective view showing an example of the structure of a wiring board 41 of an isolator according to a modification of the first embodiment. Fig. 15 is a perspective view showing an example of the structure of a wiring board 42 of an isolator according to a modification of the first embodiment.

[0062] 14, the coil 414 includes a first portion 414a and a second portion 414b. The first portion 414a and the second portion 414b are connected to each other, are continuous, and are made of a common conductor. Each of the first portion 414a and the second portion 414b is a conductor having a spiral shape along the xy plane, similar to the coil 414 described above with reference to FIG. 5. That is, the locus of the linear conductor constituting each of the first portion 414a and the second portion 414b forms a spiral shape along the xy plane.

[0063] The central end of the first portion 414a is connected to the plug 413a. The outer peripheral end of the first portion 414a is connected to the outer peripheral end of the second portion 414b. The central end of the second portion 414b is connected to the plug 413b.

[0064] 15, the coil 424 includes a first portion 424a and a second portion 424b. The first portion 424a and the second portion 424b are connected to each other, are continuous, and are made of a common conductor. Each of the first portion 424a and the second portion 424b is a conductor having a spiral shape along the xy plane, similar to the coil 424 described above with reference to FIG. 6. That is, the locus of the linear conductor constituting each of the first portion 424a and the second portion 424b forms a spiral shape along the xy plane.

[0065] The central end of the first portion 424a is connected to the plug 423a. The outer peripheral end of the first portion 424a is connected to the outer peripheral end of the second portion 424b. The central end of the second portion 424b is connected to the plug 423b.

[0066] The area enclosed by the innermost curve of the locus of the first portion 424a of the coil 424 at least partially overlaps with the area enclosed by the innermost curve of the locus of the first portion 414a of the coil 414. The area enclosed by the innermost curve of the locus of the second portion 424b of the coil 424 at least partially overlaps with the area enclosed by the innermost curve of the locus of the second portion 414b of the coil 414.

[0067] Since each of the coils 414 and 424 has a structure in which two spirals are connected as shown in FIGS. 14 and 15 , the isolator module 40 can include additional magnets 45 and 46. FIGS. 16 and 17 are perspective views showing an example of the structure of an isolator module according to a modification of the first embodiment. FIG. 16 shows the conductors in the wiring boards 41 and 42 in a see-through manner. FIG. 16 shows the bottom surface of the isolator module 40 from the top. FIG. 17 shows the bottom surface of the isolator module 40 from the top.

[0068] As shown in FIG. 16, the isolator module 40 includes two magnets 45 (45a and 45b). The magnet 45a is located directly above the first portion 424a of the coil 424. The opening of the magnet 45a is located inside the locus of the innermost curve of the conductor that makes up the first portion 424a of the coil 424. The opening does not have to be located inside the locus of the innermost curve of the conductor of the first portion 424a. When viewed in the +z direction, it is most desirable that the center of the opening overlaps with the center of the first portion 424a. When viewed in the +z direction, the magnet 45a does not overlap with the second portion 424b of the coil 424.

[0069] Magnet 45b is positioned directly above second portion 424b of coil 424. The opening of magnet 45b is located inside the locus of the innermost curve of the conductor that makes up second portion 424b of coil 424. The opening does not have to be located inside the locus of the innermost curve of the conductor of second portion 424b. When viewed in the +z direction, it is most desirable that the center of the opening overlaps with the center of second portion 424b. When viewed in the +z direction, magnet 45b does not overlap first portion 424a of coil 424.

[0070] As shown in FIG. 17, the isolator module 40 includes two magnets 46 (46a and 46b). The magnet 46a is located directly below the first portion 414a of the coil 414. The opening of the magnet 46a is located inside the locus of the innermost curve of the conductors that make up the first portion 414a of the coil 414. The opening does not have to be located inside the locus of the innermost curve of the conductors of the first portion 414a. When viewed in the +z direction, it is most desirable that the center of the opening overlaps with the center of the first portion 414a. When viewed in the +z direction, the magnet 46a does not overlap with the second portion 414b of the coil 414.

[0071] The magnet 46b is positioned directly below the second portion 414b of the coil 414. The opening of the magnet 46b is located inside the locus of the innermost curve of the conductor that makes up the second portion 414b of the coil 414. The opening does not have to be located inside the locus of the innermost curve of the conductor of the second portion 414b. When viewed in the +z direction, it is most desirable that the center of the opening overlaps with the center of the second portion 414b. When viewed in the +z direction, the magnet 46b does not overlap with the first portion 414a of the coil 414.

[0072] As shown in Fig. 18, the coils 414 and 424 may each have one turn. Fig. 18 shows an example of the structure of a portion of an isolator according to a modification of the first embodiment, taken along the xy plane. Fig. 18 shows only the coil 414 and the magnet 46. As shown in Fig. 18, the area of ​​the shape of the magnet 46 taken along the xy plane is smaller than the area of ​​the region surrounded by the locus of the curves of the conductors that make up the coil 414. Furthermore, the coil 414 fits within the region surrounded by the locus of the curves of the conductors that make up the coil 414.

[0073] The shape of coil 424 along the xy plane is the same as that of coil 414 when inverted with respect to the y axis. The area of ​​the shape of magnet 45 along the xy plane is smaller than the area enclosed by the locus of the curves of the conductors that make up coil 424. Coil 424 also fits within the area enclosed by the locus of the curves of the conductors that make up coil 424.

[0074] 2. Second embodiment The wiring boards 41 and 42 may be formed on a common substrate instead of being formed separately and then joined together as in the first embodiment. The second embodiment relates to such an example.

[0075] Fig. 19 shows an example of the cross-sectional structure of an isolator module of the isolator of the second embodiment. As shown in Fig. 19, the isolator module 40 does not include an insulator 43, but includes a substrate 48. The substrate 48 is located at the position where the insulator 43 is located in the first embodiment.

[0076] Wiring boards 41 and 42 have, for example, similar shapes along the xy plane, and for example, the upper surface of wiring board 41 is covered by wiring board 42. Wiring board 41 does not include insulator 419. Substrate 48 is located on the upper surface of insulator 418. Wiring board 42 does not include insulator 425. Insulator 426 is located on the upper surface of substrate 48.

[0077] Pad 411a and pad 411b (not shown) are located in wiring board 42. That is, insulator 428 has two more openings, and pads 411a and 411b are located in these two openings, respectively.

[0078] The bottom surface of the pad 411a contacts the top surface of the plug 410a. The plug 410a passes through the insulators 417 and 418, the substrate 48, and the insulators 426 and 427. The bottom surface of the plug 410a contacts the top surface of the conductor 412a.

[0079] Similarly, the bottom surface of pad 411b (not shown) contacts the top surface of plug 410b (not shown). Plug 410b penetrates insulators 417 and 418, substrate 48, and insulators 426 and 427. The bottom surface of plug 410b contacts the top surface of conductor 412b (not shown).

[0080] The magnet 45 is located in a substrate 48 .

[0081] Even in the structure of isolator module 40 of the second embodiment, magnet 45 can generate magnetic flux MFM that strengthens magnetic flux MFI that causes electromagnetic induction in coil 424. Therefore, a high coupling coefficient can be obtained, similar to the first embodiment.

[0082] 3. Third embodiment The third embodiment differs from the first embodiment in the structure for generating magnetic flux MFM that reinforces magnetic flux MFI that causes electromagnetic induction in coil 424. The third embodiment is applied to the case where coils 414 and 424 each have one turn.

[0083] FIG. 20 shows an example of the cross-sectional structure of an isolator module of an isolator according to the third embodiment. As shown in FIG. 20, the isolator module 40 includes a magnetic body 49, instead of the magnets 45 and 46 of the first embodiment, as a structure for generating a magnetic flux MFM that reinforces the magnetic flux MFI that causes electromagnetic induction in the coil 424. The magnetic body 49 has a columnar shape extending along the z-axis, e.g., a cylindrical shape. The magnetic body 49 penetrates the insulators 416, 417, 418, 419, 425, 426, 427, and 428. The edges of the magnetic body 49 along the xy plane are located inside the locus of the innermost curves of the conductors that make up the coils 424 and 414. In other words, the shape of the magnetic body 49 along the xy plane is smaller than the area of ​​the region enclosed by the locus of the innermost curves of the conductors that make up the coils 424 and 414. The magnetic body 49 includes, for example, iron.

[0084] 21, the isolator module of the third embodiment may further include magnets 45 and / or 46. As in the second embodiment, a substrate 48 may be provided instead of the set of insulators 419, 43, and 425.

[0085] According to the third embodiment, the magnetic body 49 can also generate a magnetic flux MFM that strengthens the magnetic flux MFI that causes electromagnetic induction in the coil 424. Therefore, a high coupling coefficient can be obtained, similar to the first embodiment.

[0086] Although several embodiments of the present invention have been described, these embodiments are presented as examples and are not intended to limit the scope of the invention. These embodiments can be implemented in various other forms, and various omissions, substitutions, and modifications can be made without departing from the spirit of the invention. These embodiments and their modifications are included within the scope and spirit of the invention, as well as within the scope of the invention described in the claims and their equivalents. [Explanation of symbols]

[0087] 1...Isolator 10...Frame 20, 30...Semiconductor chips 30...Semiconductor chip 40...Isolator module 41, 42...Wiring board 414, 424... Coil 45, 46...Magnet 411a, 411b, 421a, 421b... Pads 412a, 412b, 422a, 422b...Conductor

Claims

1. A first coil having a spiral shape along a first surface; a second coil aligned with the first coil along a first axis intersecting the first surface, facing the first coil, and having a spiral shape along the first surface; a plate-like first magnet provided on a side of the second coil opposite to a side on which the first coil is located, facing the second coil, extending along the first plane, including a first surface and a second surface located farther from the first surface along the first axis than the second coil, the first surface being a south pole and the second surface being a north pole, and having a first opening extending across the first surface and the second surface; a plate-shaped second magnet provided on a side of the first coil opposite to a side on which the second coil is located, facing the first coil, extending along the first plane, including a third surface and a fourth surface located farther from the first coil along the first axis than the third surface, the third surface being a north pole and the fourth surface being a south pole, and having a second opening extending across the third surface and the fourth surface; a first insulator that seals the first coil, the second coil, the first magnet, and the second magnet; An isolator comprising:

2. the first coil and the second coil each include a conductor having a locus extending along the first surface; The isolator of claim 1 .

3. a first wiring board including the first coil and a second insulator covering the first coil; a second wiring board including the second coil and a third insulator covering the second coil; Further provided with The isolator of claim 2 .

4. the first opening overlaps with an area inside a locus of an innermost curve on the first surface of the conductor of the first coil, the second opening overlaps with an area inside a locus of an innermost curve on the first surface of the conductor of the second coil; The isolator of claim 2 .

5. along the first surface, the first coil overlaps the second magnet; Along the first surface, the second coil overlaps the first magnet. The isolator of claim 1 .

6. a substrate having a first surface and a second surface aligned with the first surface along a first axis; a first coil located on the first surface side of the substrate and having a spiral shape along a first plane intersecting the first axis; a second coil located on the second surface side of the substrate, aligned with the first coil along the first axis, and having a spiral shape along the first surface; a magnet provided inside the substrate, positioned between the first coil and the second coil, facing the first coil and the second coil, including a third surface on the first coil side and a fourth surface on the second coil side, and having an opening extending between the third surface and the fourth surface; a first insulator that seals the first coil, the second coil, and the magnet; An isolator comprising:

7. the first coil and the second coil each include a conductor extending along the first surface; the opening overlaps with an area inside a locus of an innermost curve on the first surface of the conductor of the first coil and an area inside a locus of an innermost curve on the first surface of the conductor of the second coil. The isolator of claim 6.

8. along the first surface, the first coil overlaps the first surface of the magnet; Along the first surface, the second coil overlaps the first surface of the magnet. The isolator of claim 6.

Citation Information

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