Laminated Barista

The multilayer varistor design addresses stray capacitance and crosstalk issues by optimizing electrode configurations, enhancing performance and consistency.

JP7843470B2Active Publication Date: 2026-04-10PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
View PDF 6 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
Filing Date
2021-12-17
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Conventional multilayer varistors experience stray capacitance between internal and external electrodes, leading to crosstalk and signal disturbances as the signal leaks from one external electrode to another.

Method used

A multilayer varistor design with specific internal and external electrode configurations, including overlapping and protruding portions, reduces stray capacitance by positioning electrodes to minimize overlap and distance, thereby suppressing crosstalk.

Benefits of technology

The design effectively reduces stray capacitance and crosstalk, ensuring stable performance and consistent characteristics across varistors, improving communication quality.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007843470000003
    Figure 0007843470000003
  • Figure 0007843470000004
    Figure 0007843470000004
  • Figure 0007843470000005
    Figure 0007843470000005
Patent Text Reader

Abstract

The present disclosure addresses the problem of obtaining a multilayer varistor that suppresses crosstalk generated between external terminals. A multilayer varistor 1 has a aminated structure in which a plurality of layers are laminated in a third direction. The multilayer varistor 1 includes: a first inner electrode 13 that is electrically connected to first outer electrodes 12; a second inner electrode 17 that is electrically connected to second outer electrodes 16; and a third inner electrode 21 that is electrically connected to third outer electrodes 20. In the third direction, the first inner electrode 13 is disposed between the second inner electrode 17 and the third inner electrode 21.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to a multilayer varistor used in various electronic devices.

Background Art

[0002] In recent years, miniaturization has been progressing in home appliances and in-vehicle electronic devices, and miniaturization is also required for varistors, which are components thereof. In addition, as the frequency increases, the capacitance affects the performance, so there is a need for a varistor with a small capacitance and a small variation in capacitance while ensuring a predetermined varistor voltage. Also, when using varistors in pairs, in order to reduce the difference in capacitance between the pairs, a device in which two varistors are formed in one element has been proposed. As prior art document information related to the invention of this application, for example, Patent Document 1 is known.

[0003] However, in conventional multilayer varistors, stray capacitance occurs not only between internal electrodes that exhibit varistor performance but also between two external electrodes. Therefore, crosstalk may occur where a signal leaks from one of the two external electrodes to the other external electrode, and there is a possibility that the signal waveform will be disturbed.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

[0005] A multilayer varistor according to one aspect of the present disclosure comprises a sintered body, a first internal electrode, a second internal electrode, a third internal electrode, a first external electrode, a second external electrode, and a third external electrode. The sintered body has a first end face and a second end face facing each other in a first direction, a first side face and a second side face facing each other in a second direction, and a first main face and a second main face facing each other in a third direction. The sintered body has a laminated structure in which a plurality of layers are stacked in the third direction, and is formed in the shape of a rectangular parallelepiped with the first direction as its longer side. The first internal electrode is provided on a first laminated surface inside the sintered body, the second internal electrode is provided on a second laminated surface different from the first laminated surface inside the sintered body, and the third internal electrode is provided on a third laminated surface different from the first and second laminated surfaces inside the sintered body. The first external electrode is electrically connected to the first internal electrode, the second external electrode is electrically connected to the second internal electrode, and the third external electrode is electrically connected to the third internal electrode. The first internal electrode comprises a first opposing portion and a first extraction portion that is narrower than the first opposing portion. The second internal electrode has a second opposing portion and a second leading portion which is narrower than the second opposing portion. The third internal electrode has a third opposing portion and a third leading portion which is narrower than the third opposing portion. The first opposing portion is located between the second opposing portion and the third opposing portion. In the first direction, the length of the first opposing portion is longer than the length of the second opposing portion, and the length of the first opposing portion is longer than the length of the third opposing portion. In the second direction, the length of the first opposing portion is longer than the length of the second opposing portion, and the length of the first opposing portion is longer than the length of the third opposing portion. When viewed from the third direction, the first opposing portion covers the outer circumference of the second opposing portion and the third opposing portion, respectively. A multilayer varistor according to one aspect of this disclosure comprises a sintered body, a first internal electrode, a second internal electrode, a third internal electrode, Two electrically connected via the first internal electrode First external electrode and, Two electrically connected via the second internal electrode The second external electrode and Two electrically connected via the third internal electrode The sintered body comprises a third external electrode. The sintered body has a first end face and a second end face that face each other in a first direction, a first side face and a second side face that face each other in a second direction, and a first main face and a second main face that face each other in a third direction. The sintered body has a laminated structure in which a plurality of layers are stacked in a third direction, and is formed in the shape of a rectangular parallelepiped with the first direction as the longer side. The first internal electrode is provided on a first laminated surface inside the sintered body, the second internal electrode is provided on a second laminated surface different from the first laminated surface inside the sintered body, and the third internal electrode is provided on a third laminated surface different from the first and second laminated surfaces inside the sintered body. One of the two first external electrodes is provided on the first side surface, and the other of the two first external electrodes is provided on the second side surface, and each is electrically connected to the first internal electrode. One of the two second external electrodes is provided on the first side surface, and the other of the two second external electrodes is provided on the second side surface, and each is electrically connected to the second internal electrode. One of the two third external electrodes is provided on the first side surface, and the other of the two third external electrodes is provided on the second side surface, and each is electrically connected to the third internal electrode. The first internal electrode has an overlapping region that overlaps with the second internal electrode and the third internal electrode in the third direction. The second internal electrode has a second opposing portion and a second leading portion. The second leading portion includes a first connecting portion that connects the two second external electrodes, and a first protruding portion that protrudes from the second opposing portion along the first direction and is connected to the first connecting portion. The third internal electrode has a third opposing portion and a third leading portion. The third extension portion includes a second connecting portion that connects the two third external electrodes, and a second protruding portion that protrudes from the third opposing portion along the first direction and connects to the second connecting portion. In the first direction, one of the two first external electrodes lies between one of the two second external electrodes and one of the two third external electrodes. In the first direction, the other of the two first external electrodes lies between the other of the two second external electrodes and the other of the two third external electrodes. [Brief explanation of the drawing]

[0006] [Figure 1]This is a perspective view of a multilayer varistor in Embodiment 1 of the present disclosure. [Figure 2] This is a perspective top view of a multilayer varistor in Embodiment 1 of the present disclosure. [Figure 3] This is a cross-sectional view of a multilayer varistor in Embodiment 1 of this disclosure. [Figure 4] This is a perspective view of the appearance of a multilayer varistor in Embodiment 1 of this disclosure. [Figure 5] This is a circuit diagram showing an example of the use of a multilayer varistor in Embodiment 1 of this disclosure. [Figure 6] This is a perspective view of a stacked varistor in Embodiment 2 of the present disclosure. [Figure 7] This is a perspective view of the appearance of a multilayer varistor in Embodiment 2 of this disclosure. [Figure 8] This is a perspective view of a multilayer varistor in Embodiment 3 of the present disclosure. [Figure 9] This is a perspective top view of a multilayer varistor in Embodiment 3 of the present disclosure. [Figure 10] This is a cross-sectional view of a multilayer varistor in Embodiment 3 of the present disclosure. [Figure 11] This is a cross-sectional view of a modified example of a multilayer varistor in this disclosure. [Modes for carrying out the invention]

[0007] (1) Embodiment 1 The multilayer varistor in Embodiment 1 of this disclosure will be described below with reference to the drawings.

[0008] Figure 1 is a perspective view of the laminated varistor 1 of Embodiment 1, Figure 2 is a perspective view of the laminated varistor 1 from above, and Figure 3 is a cross-sectional view of the laminated varistor 1. The laminated varistor 1 comprises a sintered body 11, a first external electrode 12, a second external electrode 16, a third external electrode 20, a first internal electrode 13, a second internal electrode 17, and a third internal electrode 21. The sintered body 11 of the laminated varistor 1, excluding the external electrodes, is, for example, a rectangular parallelepiped with a length of 1.6 mm, a width of 0.8 mm, and a height of 0.8 mm. In the external perspective views such as Figure 3, the outer shape of the sintered body 11 is shown as a rectangular parallelepiped, but the corners of the sintered body 11 may be chamfered as appropriate, and the corners of the sintered body 11 may be rounded.

[0009] In the following explanation, as shown in Figure 1, the X-axis direction parallel to the long side of the sintered body 11 is defined as the left-right direction, the Y-axis direction as the front-back direction (depth direction), and the Z-axis direction as the up-down direction. Furthermore, the positive direction in the X-axis direction is defined as the right side, the positive direction in the Y-axis direction as the front side, and the positive direction in the Z-axis direction as the top side. However, these directions are merely examples and are not intended to limit the direction in which the laminated varistor 1 can be used. Also, the arrows indicating each direction in the drawings are for illustrative purposes only and do not represent actual objects.

[0010] As shown in Figures 2 and 3, the sintered body 11 has a first end face S11 and a second end face S12 facing each other in the first direction, a first side face S21 and a second side face S22 facing each other in the second direction, and a first main surface S31 and a second main surface S32 facing each other in the third direction. The sintered body 11 has a laminated structure in which a plurality of layers LY11 to LY14 (see Figure 3) are stacked in the third direction, and is formed in the shape of a rectangular parallelepiped with the first direction as the longer side.

[0011] The sintered body 11 is composed of semiconductor ceramic components having nonlinear resistance characteristics. This sintered body 11 may, for example, have ZnO as its main component and may contain at least one of Bi2O3, Co2O3, MnO2, and Sb2O3 as a secondary component, and Pr6O 11It may also contain at least one of Co2O3, CaCO3, and Cr2O3. The sintered body 11 is formed when ZnO is sintered and other by-components are precipitated at its grain boundaries, forming internal electrodes between the layers. The grain boundary barriers formed between the ZnO particles result in nonlinear resistance characteristics. The sintered body 11 is formed, for example, by stacking four layers LY11 to LY14 (see Figure 3) mainly composed of ZnO and then sintering them.

[0012] A first external electrode 12 is provided in the center of the long side surface of the sintered body 11. The first external electrode 12 is electrically connected to a first internal electrode 13. In this embodiment, the sintered body 11 is provided with two first external electrodes 12, one of which is provided on the first side surface S21, and the other of which is provided on the second side surface S22. The two first external electrodes 12 are electrically connected via the first internal electrode 13.

[0013] A second external electrode 16 and a third external electrode 20 are provided on both sides of the first external electrode 12. In this embodiment, the second external electrode 16 and the third external electrode 20 are provided on both sides of each of the two first external electrodes 12. That is, the second external electrode 16 and the third external electrode 20 are provided on both sides of the first external electrode 12 on the first side surface S21, and the second external electrode 16 and the third external electrode 20 are provided on both sides of the first external electrode 12 on the second side surface S22. In other words, the sintered body 11 is provided with two second external electrodes 16, one of which is provided on the first side surface S21, and the other of which is provided on the second side surface S22. Similarly, the sintered body 11 is provided with two third external electrodes 20, one of which is provided on the first side surface S21, and the other of which is provided on the second side surface S22.

[0014] Inside the sintered body 11, a second internal electrode 17 electrically connected to the second external electrode 16 and a third internal electrode 21 electrically connected to the third external electrode 20 are provided. The second external electrode 16 is electrically connected to the second internal electrode 17, and the third external electrode 20 is electrically connected to the third internal electrode 21. That is, the two second external electrodes 16 provided on the sintered body 11 are electrically connected via the second internal electrode 17, and the two third external electrodes 20 provided on the sintered body 11 are electrically connected via the third internal electrode 21.

[0015] In this embodiment, the sintered body 11 is formed by laminating, for example, four layers LY11 to LY14 in the third direction (see FIG. 3). The first internal electrode 13 is provided by printing on the upper surface of, for example, layer LY12 among the four layers LY11 to LY14 (hereinafter also referred to as the first lamination surface SF1). The second internal electrode 17 is provided by printing on the upper surface of, for example, layer LY13 laminated above layer LY12 (hereinafter also referred to as the second lamination surface SF2). The third internal electrode 21 is provided by printing on the upper surface of, for example, layer LY11 laminated below layer LY12 (hereinafter also referred to as the third lamination surface SF3). In other words, the first internal electrode 13 is provided on the first lamination surface SF1 inside the sintered body 11. The second internal electrode 17 is provided on a second lamination surface SF2 different from the first lamination surface SF1 inside the sintered body 11. The third internal electrode 21 is provided on a third lamination surface SF3 different from the first lamination surface SF1 and the second lamination surface SF2 inside the sintered body 11. Thereby, in the third direction (vertical direction), the first internal electrode 13 is disposed between the second internal electrode 17 and the third internal electrode 21.

[0016] The first internal electrode 13 has a first opposing portion 14 and a first lead-out portion 15. The width of the first lead-out portion 15 is narrower than that of the first opposing portion 14. The first lead-out portion 15 protrudes from the first opposing portion 14 along the second direction. In the present embodiment, two first lead-out portions 15 protrude from the first opposing portion 14 toward the front side and the rear side. One of the two first lead-out portions 15 is electrically connected to the first external electrode 12 provided on the first side surface S21, and the other of the two first lead-out portions 15 is electrically connected to the first external electrode 12 provided on the second side surface S22.

[0017] The second internal electrode 17 has a second opposing portion 18 and a second lead-out portion 19. The width of the second lead-out portion 19 is narrower than that of the second opposing portion 18. The second lead-out portion 19 protrudes from the second opposing portion 18 along the first direction. In the present embodiment, as shown in FIG. 2, the second lead-out portion 19 has a first connecting portion 19B that connects between the two second external electrodes 16, and a first protruding portion 19A that protrudes from the second opposing portion 18 along the first direction and is connected to the first connecting portion 19B. Here, the first protruding portion 19A protrudes from the second opposing portion 18, for example, toward the left. The first connecting portion 19B protrudes from the left end portion of the first protruding portion 19A toward the front side and the rear side, respectively, and connects between the two second external electrodes 16.

[0018] The third internal electrode 21 has a third opposing portion 22 and a third lead-out portion 23. The width of the third lead-out portion 23 is narrower than that of the third opposing portion 22. The third lead-out portion 23 protrudes from the third opposing portion 22 along the first direction. In the present embodiment, the third lead-out portion 23 protrudes in the opposite direction to the second lead-out portion 19, for example, toward the right. As shown in FIG. 2, the third lead-out portion 23 has a second connecting portion 23B that connects between the two third external electrodes 20, and a second protruding portion 23A that protrudes from the third opposing portion 22 along the first direction and is connected to the second connecting portion 23B. Here, the second protruding portion 23A protrudes from the third opposing portion 22, for example, toward the right. The second connecting portion 23B protrudes from the right end portion of the second protruding portion 23A toward the front side and the rear side, respectively, and connects between the two third external electrodes 20.

[0019] Here, the first internal electrode 13 is formed on the first laminated surface SF1, the second internal electrode 17 is formed on the second laminated surface SF2, and the third internal electrode 21 is formed on the third laminated surface SF3, and the first internal electrode 13, the second internal electrode 17, and the third internal electrode 21 are all arranged along the second direction.

[0020] In this configuration, in the first direction, the length of the first opposing portion 14 is longer than the lengths of the second opposing portion 18 and the third opposing portion 22. Also, in the second direction, the length of the first opposing portion 14 is longer than the lengths of the second opposing portion 18 and the third opposing portion 22. Therefore, the area of ​​the first opposing portion 14 is larger than the area of ​​the second opposing portion 18 and the third opposing portion 22. Since the first opposing portion 14 is positioned between the second opposing portion 18 and the third opposing portion 22, the stray capacitance generated between the second opposing portion 18 and the third opposing portion 22 can be reduced, thereby suppressing crosstalk.

[0021] As described above, in this embodiment, the two first external electrodes 12, the two second external electrodes 16, and the two third external electrodes 20 are provided on both sides (first side S21 and second side S22) that are the long sides when the sintered body 11 is viewed from the stacking direction. In the first direction, the first external electrode 12 is located between the second external electrode 16 and the third external electrode 20, so that the stray capacitance between the second external electrode 16 and the third external electrode 20 can be reduced. Furthermore, the two first external electrodes 12, the two second external electrodes 16, and the two third external electrodes 20 are connected by a first extraction portion 15, a second extraction portion 19, and a third extraction portion 23, respectively. With this configuration, the first external electrodes 12, the second external electrodes 16, and the third external electrodes 20 can be formed simultaneously, simplifying the process and allowing for stable shape formation, resulting in a stacked varistor 1 with less variation in characteristics.

[0022] Furthermore, the first internal electrode 13 is positioned between the second internal electrode 17 and the third internal electrode 21 in the stacking direction of the sintered body 11. In other words, the first internal electrode 13 exists between the second internal electrode 17 and the third internal electrode 21 in the third direction. Specifically, the first opposing portion 14 exists between the second internal electrode 17 and the third internal electrode 21. In other words, the second opposing portion 18 and the third opposing portion 22 face each other, and the first internal electrode 13 exists between the second opposing portion 18 and the third opposing portion 22. Therefore, the first opposing portion 14 exists between the second opposing portion 18 and the third opposing portion 22. The second opposing portion 18 and the first opposing portion 14, and the first opposing portion 14 and the third opposing portion 22, each face each other to form a varistor region.

[0023] Figure 5 is a schematic circuit diagram showing an example of the use of the multilayer varistor 1 of this embodiment. The multilayer varistor 1 of this embodiment has a first varistor 1A, which is formed between a first external electrode 12 and a second external electrode 16, and a second varistor 1B, which is formed between a first external electrode 12 and a third external electrode 20. The circuit diagram in Figure 5 shows the state in which the multilayer varistor 1 is placed near a communication IC 2 that communicates using a two-wire differential voltage transmission method. The land of signal lines 3 and 4 and the land of ground line 5 are connected to the communication IC 2. The pair of first external electrodes 12 on the first side surface S21 and the second side surface S22 are each connected to the land of ground line 5, the pair of second external electrodes 16 on the first side surface S21 and the second side surface S22 are each connected to the land of signal line 3, and the pair of third external electrodes 20 on the first side surface S21 and the second side surface S22 are each connected to the land of signal line 4. In such a circuit, for example, if static electricity is superimposed on signal line 3 and a voltage exceeding a predetermined threshold voltage is applied to the first varistor 1A, the electrical resistance of the first varistor 1A decreases sharply, and current flows through the first varistor 1A, thereby protecting the communication IC 2. Note that the circuit shown in Figure 5 is an example of a circuit to which the multilayer varistor 1 is applied, and can be modified as appropriate.

[0024] In the stacked varistor 1 of this embodiment, the first opposing portion 14 is, for example, a rectangle of 0.46 mm × 0.20 mm, and the second opposing portion 18 and the third opposing portion 22 are, for example, rectangles of 0.40 mm × 0.14 mm. The first opposing portion 14 and the second opposing portion 18 are separated by, for example, 0.035 mm. Similarly, the first opposing portion 14 and the third opposing portion 22 are separated by, for example, 0.035 mm. Here, the centers of each are in the same position when viewed from the stacking direction. That is, when viewed from the stacking direction, the first opposing portion 14 protrudes 0.03 mm beyond the second opposing portion 18 and the third opposing portion 22, covering the entire periphery of the second opposing portion 18 and the third opposing portion 22. In other words, when viewed from the third direction, the first opposing portion 14 covers the outer periphery of the second opposing portion 18 and the third opposing portion 22. By doing so, it is possible to prevent the generation of stray capacitance between the second opposing part 18 and the third opposing part 22, thereby suppressing crosstalk. Note that the above dimensions are examples and can be changed as appropriate.

[0025] A second lead-out section 19, for example, with a width of 0.1 mm, extends from the second opposing section 18 and is connected to the second external electrode 16. Similarly, a third lead-out section 23, for example, with a width of 0.1 mm, extends from the third opposing section 22 and is connected to the third external electrode 20. In addition, a first lead-out section 15, for example, with a width of 0.1 mm, extends from the first opposing section 14 and is connected to the first external electrode 12. Because the external electrodes are connected by lead-out sections that are narrower than the opposing sections, the stray capacitance between the second external electrode 16 and the third external electrode 20 can be reduced, and the impact on crosstalk can be minimized.

[0026] Here, in the second direction, it is desirable that the width of the second extraction portion 19 be 90% or less of the width of the second opposing portion 18. More specifically, it is even more desirable that the width of the second extraction portion 19 be 70% or less of the width of the second opposing portion 18 in the second direction. Similarly, in the second direction, it is desirable that the width of the third extraction portion 23 be 90% or less of the width of the third opposing portion 22. More specifically, it is even more desirable that the width of the second extraction portion 19 be 70% or less of the width of the second opposing portion 18 in the second direction. Conversely, if the widths of the second extraction portion 19 and the third extraction portion 23 are larger than 90% of the widths of the second opposing portion 18 and the third opposing portion 22, respectively, it is undesirable because it increases the stray capacitance that affects crosstalk. Also, by setting the width of the second extraction portion 19 to 90% or less of the width of the second opposing portion 18 in the second direction, the stray capacitance generated in the first varistor 1A can be reduced, thereby suppressing the occurrence of crosstalk. Furthermore, by making the width of the third extraction portion 23 less than or equal to 90% of the width of the third opposing portion 22 in the second direction, the stray capacitance generated in the second varistor 1B can be reduced, thereby suppressing the occurrence of crosstalk. In addition, the absolute value of the difference between the stray capacitance of the first varistor 1A and the stray capacitance of the second varistor 1B can be reduced, thereby suppressing crosstalk.

[0027] Furthermore, in the second direction, the width of the second extension portion 19 is preferably 0.08 mm or more, and more preferably 0.1 mm or more. Similarly, in the second direction, the width of the third extension portion 23 is preferably 0.08 mm or more, and more preferably 0.1 mm or more. If the widths of the second extension portion 19 and the third extension portion 23 are smaller than 0.08 mm, the shape of the second extension portion 19 and the third extension portion 23 tends to become unstable, and the connection with the second external electrode 16 and the third external electrode 20 tends to become unstable. Setting the widths of the second extension portion 19 and the third extension portion 23 to 0.08 mm or more has the advantage of making it easier to maintain the shape of the second extension portion 19 and the third extension portion 23.

[0028] Furthermore, in the first direction, it is desirable that the width of the first extension portion 15 be 90% or less of the width of the first opposing portion 14. More specifically, in the first direction, it is even more desirable that the width of the first extension portion 15 be 70% or less of the width of the first opposing portion 14. By setting the width of the first extension portion 15 to 90% or less of the width of the first opposing portion 14 in the first direction, the stray volume can be reduced and the occurrence of crosstalk can be suppressed. In addition, in the first direction, it is desirable that the width of the first extension portion 15 be 0.08 mm or more, and more preferably 0.1 mm or more. This has the advantage of making it easier to maintain the shape of the first extension portion 15.

[0029] Furthermore, when viewed from above, it is desirable that the amount by which the first opposing portion 14 protrudes from the outer circumference of the second opposing portion 18 and the third opposing portion 22 in the first direction be 7.5% or more and 15% or less of the long side of the second opposing portion 18 and the third opposing portion 22. In other words, it is preferable that the length of the first opposing portion 14 in the first direction be 107.5% or more and 115% or less of the length of the second opposing portion 18 or the third opposing portion 22. This is because if the amount of protrusion of the first opposing portion 14 is less than 7.5% of the long side of the second opposing portion 18 and the third opposing portion 22, crosstalk increases sharply, and if it is greater than 15%, manufacturing deviations cannot be mitigated, and the capacity difference between the first varistor 1A and the second varistor 1B becomes large. In the first direction, it is more preferable that the length of the first opposing portion 14 is 9% or more and 13.5% or less of the length of the second opposing portion 18 or the third opposing portion 22, which can further reduce crosstalk and mitigate manufacturing deviations.

[0030] Furthermore, in the second direction, the length of the first opposing portion 14 is preferably 107.5% or more and 115% or less of the length of the second opposing portion 18 or the third opposing portion 22. This is because if the amount of overhang of the first opposing portion 14 is less than 7.5% of the long side of the second opposing portion 18 and the third opposing portion 22, crosstalk increases sharply, and if it is greater than 15%, manufacturing deviations cannot be mitigated, and the capacity difference between the first varistor 1A and the second varistor 1B becomes large.

[0031] Furthermore, in the sintered body 11, the volume of the region sandwiched between the first opposing portion 14 and the second opposing portion 18 is preferably 5% or less of the total volume of the sintered body 11, and more preferably 1% or less. If it is greater than 1%, the entire varistor region will be in close proximity to the external electrode, increasing the capacitance that affects crosstalk.

[0032] Furthermore, it is preferable that the area of ​​the first opposing portion 14 is larger than the area of ​​the second opposing portion 18 or the third opposing portion 22. In this embodiment, the first to third internal electrodes 13, 17, and 21 are formed such that the area of ​​the first opposing portion 14 is larger than the area of ​​the second opposing portion 18 and also larger than the area of ​​the third opposing portion 22.

[0033] Incidentally, the first opposing portion 14 of the first internal electrode 13 is positioned within the sintered body 11 so as to overlap with the second opposing portion 18 of the second internal electrode 17 and the third opposing portion 22 of the third internal electrode 21 in the third direction. In other words, the first internal electrode 13 has an overlapping region A1 (see Figure 2) that overlaps with the second internal electrode 17 and the third internal electrode 21 in the third direction.

[0034] The superimposed region A1 is a rectangular region with its longitudinal direction in the first direction. The length L1 of the superimposed region A1 in the first direction is longer than the length L2 of the superimposed region A1 in the second direction. By making the length L1 in the first direction longer than the length L2 in the second direction, the stray capacitance generated between the second opposing part 18 and the third opposing part 22, which are arranged to sandwich the first opposing part 14, can be reduced, thereby suppressing crosstalk.

[0035] Furthermore, the multilayer varistor 1 of this embodiment includes a first varistor 1A and a second varistor 1B, and it is preferable that the capacitances of the first varistor 1A and the second varistor 1B are each 200 pF or less. Also, it is preferable that the difference between the capacitance of the first varistor 1A and the capacitance of the second varistor 1B is -20% or more and +20% or less of the capacitance of the first varistor 1A. This makes it possible to suppress crosstalk and improve communication quality when the multilayer varistor 1 is connected to a communication IC 2 as shown in Figure 5.

[0036] (2) Embodiment 2 The stacked varistor 1 of Embodiment 2 will be described below with reference to Figures 6 and 7.

[0037] Figure 6 is a perspective view of the stacked varistor 1 of Embodiment 2, and Figure 7 is an external perspective view of the stacked varistor 1 of Embodiment 2.

[0038] In the laminated varistor 1 of Embodiment 1, the second external electrode 16 and the third external electrode 20 are provided on both sides which are the long sides, whereas in the laminated varistor 1 of Embodiment 2, the second external electrode 16 is provided on the first end face S11 of the sintered body 11, and the third external electrode 20 is provided on the second end face S12 of the sintered body 11. Note that the configuration of the first internal electrode 13, the second internal electrode 17, and the third internal electrode 21 is the same as in Embodiment 1, so the same reference numerals are used for common components and their descriptions are omitted.

[0039] In the stacked varistor 1 of Embodiment 2, the first external electrode 12 is provided on a part of the first side surface S21 and a part of the second side surface S22.

[0040] The second external electrode 16 is provided on at least a portion of the first end face S11. In this embodiment, the second external electrode 16 is provided on the entire first end face S11, extending from the first end face S11 to a portion of the first side surface S21 and the second side surface S22, and a portion of the first main surface S31 and the second main surface S32.

[0041] Furthermore, the third external electrode 20 is provided on at least a portion of the second end face S12. In this embodiment, the third external electrode 20 is provided on the entire second end face S12, extending from the second end face S12 to a portion of the first side surface S21 and the second side surface S22, and a portion of the first main surface S31 and the second main surface S32.

[0042] In the stacked varistor 1 of Embodiment 2, the second external electrode 16 is provided extending from the first end face S11 to the first side surface S21, the second side surface S22, the first main surface S31, and a portion of the second main surface S32. Therefore, compared to the stacked varistor 1 of Embodiment 1, the distance between the second external electrode 16 and the first external electrode 12 can be increased, and the stray capacitance between the second external electrode 16 and the first external electrode 12 can be reduced.

[0043] Furthermore, in the stacked varistor 1 of Embodiment 2, the third external electrode 20 is provided extending from the second end face S12 to the first side face S21, the second side face S22, the first main face S31, and a portion of the second main face S32. Therefore, compared to the stacked varistor 1 of Embodiment 1, the distance between the third external electrode 20 and the first external electrode 12 can be increased, and the stray capacitance between the third external electrode 20 and the first external electrode 12 can be reduced.

[0044] Furthermore, by providing the second external electrode 16 on the first end face S11 of the sintered body 11 and the third external electrode 20 on the second end face S12 of the sintered body 11, the distance between the second external electrode 16 and the third external electrode 20 can be increased compared to the laminated varistor 1 of Embodiment 1, thereby further reducing the impact on crosstalk.

[0045] (3) Embodiment 3 The stacked varistor 1 of Embodiment 3 will be described below with reference to Figures 8 to 10.

[0046] Figure 8 is a perspective view of the stacked varistor 1 of Embodiment 3, Figure 9 is a perspective top view of the stacked varistor 1 of Embodiment 3, and Figure 10 is a cross-sectional view of the stacked varistor 1 of Embodiment 3.

[0047] In the stacked varistor 1 of Embodiment 2, the first opposing portion 14 covers the outer circumference of the second opposing portion 18 and the third opposing portion 22, whereas in Embodiment 3, as shown in Figures 9 and 10, parts of the second opposing portion 18 and the third opposing portion 22 protrude to the outside of the first opposing portion 14. Note that, except for the first internal electrode 13, the second internal electrode 17, and the third internal electrode 21, the configuration is the same as that of the stacked varistor 1 of Embodiment 2. Therefore, components common to Embodiment 2 are given the same reference numerals, and their descriptions are omitted.

[0048] The second opposing portion 18 is formed in a rectangular shape with the first direction as its longitudinal direction. The length of the second opposing portion 18 in the first direction is longer than the length of the first opposing portion 14 in the first direction, and the length of the second opposing portion 18 in the second direction is shorter than the length of the first opposing portion 14 in the second direction.

[0049] Similarly, the third opposing portion 22 is formed in a rectangular shape with the first direction as its longitudinal direction. The length of the third opposing portion 22 in the first direction is longer than the length of the first opposing portion 14 in the first direction, and the length of the third opposing portion 22 in the second direction is shorter than the length of the first opposing portion 14 in the second direction.

[0050] The first opposing portion 14 and the second opposing portion 18 face each other at a predetermined distance, and the first opposing portion 14 and the third opposing portion 22 face each other at a predetermined distance. The centers of the first opposing portion 14, the second opposing portion 18, and the third opposing portion 22 are in the same position when viewed from the stacking direction, and the second opposing portion 18 and the third opposing portion 22 are almost overlapping when viewed from the stacking direction. Also, when viewed from the stacking direction, in the first direction, the right and left ends of the second opposing portion 18 protrude from the first opposing portion 14, and the right and left ends of the third opposing portion 22 protrude from the first opposing portion 14. The second opposing portion 18 is covered by the first opposing portion 14 except for the protruding portions at the right and left ends. Similarly, the third opposing portion 22 is covered by the first opposing portion 14 except for the protruding portions at the right and left ends.

[0051] Here, due to misalignment of the internal electrodes that occurs in each process such as printing, lamination, cutting of the internal electrodes, and formation of the external electrodes, the position of the first internal electrode 13 may shift in the first direction relative to the second internal electrode 17 and the third internal electrode 21. If the position of the first internal electrode 13 shifts in the first direction relative to the second internal electrode 17 and the third internal electrode 21, the capacitance difference between the capacitance generated between the first external electrode 12 and the second external electrode 16 and the capacitance generated between the first external electrode 12 and the third external electrode 20 may increase. In the laminated varistor 1 of this embodiment, since the second opposing portion 18 and the third opposing portion 22 are provided extending outwards on both sides of the first opposing portion 14 in the first direction, even if the position of the first internal electrode 13 shifts in the first direction relative to the second internal electrode 17 and the third internal electrode 21, the capacitance difference between the capacitance generated between the first external electrode 12 and the second external electrode 16 and the capacitance generated between the first external electrode 12 and the third external electrode 20 can be reduced. Therefore, it has the advantage of being able to suppress crosstalk caused by the difference in capacity between the first varistor 1A and the second varistor 1B.

[0052] Table 1 below shows the relationship between the ratio of the horizontal dimension (length L1) to the vertical dimension (length L2) of the superimposed region A1 and the capacitance difference caused by dimensional variations. Dimensional variations refer to variations in dimensions between internal electrodes, or between internal and external electrodes, that occur during each process such as printing, lamination, and cutting of internal electrodes, and formation of external electrodes. The capacitance difference is the absolute value of the difference between the stray capacitance generated between the first internal electrode 13 and the second internal electrode 17 and the stray capacitance generated between the first internal electrode 13 and the third internal electrode 21. In Table 1, the capacitance difference of Example 2 is set to 1, and the capacitance differences of Examples 1, 3, and 4 and Comparative Examples 1 and 2 are evaluated. Here, the sintered body 11 is a rectangular parallelepiped with a length of 1.6 mm, a width of 0.8 mm, and a height of 0.8 mm, the first opposing part 14 is rectangular with a length of 0.44 mm and a width of 0.22 mm, and the second opposing part 18 and the third opposing part 22 are rectangular with a length of 0.54 mm and a width of 0.12 mm.

[0053] [Table 1]

[0054] Based on the results in Table 1, it is preferable that the ratio of the length L1 of the superimposed region A1 in the first direction to the length L2 of the superimposed region A1 in the second direction is between 1.3 and 7.5. By reducing the difference in capacitance between the first varistor 1A and the second varistor 1B, communication quality can be improved.

[0055] Table 2 below shows the relationship between the ratio of the area of ​​the superimposed region A1 to the area of ​​the first laminated surface SF1 of the sintered body 11 (area ratio) and the capacitance difference caused by dimensional variations. Dimensional variations, as described above, refer to variations in dimensions between internal electrodes or between internal and external electrodes that occur during processes such as printing, lamination, and cutting of internal electrodes, and formation of external electrodes. The capacitance difference is the absolute value of the difference between the stray capacitance generated between the first internal electrode 13 and the second internal electrode 17 and the stray capacitance generated between the first internal electrode 13 and the third internal electrode 21. In Table 2, the capacitance difference for Example 2 is set to 1, and the capacitance differences for Examples 5 and 6 and Comparative Examples 3 and 4 are evaluated. Here, the sintered body 11 is a rectangular parallelepiped with a length of 1.6 mm, a width of 0.8 mm, and a height of 0.8 mm, the first opposing part 14 is rectangular with a length of 0.44 mm and a width of 0.22 mm, and the second opposing part 18 and the third opposing part 22 are rectangular with a length of 0.54 mm and a width of 0.12 mm.

[0056] [Table 2]

[0057] As shown in Table 2, it is preferable that the ratio of the area of ​​the superimposed region A1 to the cross-sectional area of ​​the sintered body 11 in the first laminated surface SF1 is between 0.024 and 0.161. By reducing the difference in capacitance between the first varistor 1A and the second varistor 1B, communication quality can be improved.

[0058] Furthermore, the stacked varistor 1 of Embodiment 3, like the stacked varistors 1 of Embodiments 1 and 2, has a superposition region A1 in which the first internal electrode 13 overlaps with the second internal electrode 17 and the third internal electrode 21 in the third direction. Here, the superposition region A1 is located in the second region A3 of the first stacked surface SF1, excluding the first region A2 onto which the first external electrode 12, the second external electrode 16, and the third external electrode 20 are projected, respectively. This reduces the stray capacitance generated between the first external electrode 12 and the second and third external electrodes 16 and 20, thereby suppressing crosstalk. In addition, in the stacked varistors 1 of Embodiments 1 and 2, the superposition region A1 is located in the second region A3 of the first stacked surface SF1, excluding the first region A2 onto which the first external electrode 12, the second external electrode 16, and the third external electrode 20 are projected, thereby suppressing the occurrence of crosstalk.

[0059] Furthermore, the first internal electrode 13, second internal electrode 17, and third internal electrode 21 of Embodiment 3 may be applied to the stacked varistor 1 of Embodiment 1, and the same advantages as the stacked varistor 1 of Embodiment 3 are available.

[0060] (4) Variations The following describes some variations of the multilayer varistor described herein.

[0061] In the multilayer varistor 1 shown in Figure 1, there is one layer each between the second internal electrode 17 and the first internal electrode 13, and between the third internal electrode 21 and the first internal electrode 13. However, as shown in Figure 11, there may be multiple layers of opposing layers. In this case, it is preferable to configure the opposing layers to be divided into an upper and lower surface, as shown in Figure 11. This further suppresses crosstalk. In addition, the performance of the varistor can be improved by increasing the opposing area between the second internal electrode 17 and the first internal electrode 13, and between the third internal electrode 21 and the first internal electrode 13.

[0062] In the multilayer varistor 1 of embodiments 2 and 3, the second internal electrode 17 and the first internal electrode 13 may face each other in multiple layers, or the third internal electrode 21 and the first internal electrode 13 may face each other in multiple layers.

[0063] Furthermore, in the stacked varistor 1 of Embodiment 1, the first external electrode 12, the second external electrode 16, and the third external electrode 20 are provided on the first side surface S21 and the second side surface S22, respectively. However, the first external electrode 12, the second external electrode 16, and the third external electrode 20 only need to be provided on at least one of the first side surface S21 and the second side surface S22. In other words, the first external electrode 12, the second external electrode 16, and the third external electrode 20 may be provided on only one of the first side surface S21 and the second side surface S22.

[0064] Furthermore, in the above embodiment, the sintered body 11 is formed by stacking four layers LY11 to LY14, but the sintered body 11 is not limited to having a four-layer stacked structure, and may have a multi-layer stacked structure.

[0065] The multilayer varistor 1 according to this disclosure can be obtained by reducing the stray capacitance generated between the external electrodes, thereby suppressing crosstalk, and is industrially useful. [Explanation of Symbols]

[0066] 1. Stacked varistor 1A First Barista 1B Second Barista 11 Sintered body 12 1st external electrode 13 1st internal electrode 14. First opposing section 15. First drawer section 16 2nd external electrode 17 Second internal electrode 18. Second Opposite Section 19. Second drawer section 19A 1st protrusion 19B 1st connection part 20 Third external electrode 21 3rd internal electrode 22 3rd Target Division 23 Chapter 3 Introduction 23A Second protrusion 23B Second Connecting Section A1 Heavy field A2, First Domain A3, Second Field LY11~LY14 floors S11 First end face S12 Second end face S21 First Side S22 Second Side S31 1st main surface S32 2nd main surface SF1 First layer SF2 second phase SF3 third layer

Claims

1. It comprises a sintered body, a first internal electrode, a second internal electrode, a third internal electrode, a first external electrode, a second external electrode, and a third external electrode. The sintered body has a first end face and a second end face that face each other in a first direction, a first side surface and a second side surface that face each other in a second direction, and a first main surface and a second main surface that face each other in a third direction. The sintered body has a laminated structure in which multiple layers are stacked in the third direction, and is formed in the shape of a rectangular parallelepiped with the first direction as its longer side. The first internal electrode is provided on the first laminated surface inside the sintered body, The second internal electrode is provided on a second laminated surface different from the first laminated surface inside the sintered body. The third internal electrode is provided on a third laminated surface within the sintered body that is different from the first and second laminated surfaces. The first external electrode is electrically connected to the first internal electrode, The second external electrode is electrically connected to the second internal electrode, The third external electrode is electrically connected to the third internal electrode, The first internal electrode has a first opposing portion and a first extraction portion that is narrower than the first opposing portion. The second internal electrode has a second opposing portion and a second extraction portion that is narrower than the second opposing portion. The third internal electrode has a third opposing portion and a third extraction portion that is narrower than the third opposing portion. The first opposing portion is located between the second opposing portion and the third opposing portion. In the first direction, the length of the first opposing portion is longer than the length of the second opposing portion, and the length of the first opposing portion is longer than the length of the third opposing portion. In the second direction, the length of the first opposing portion is longer than the length of the second opposing portion, and the length of the first opposing portion is longer than the length of the third opposing portion. When viewed from the third direction, the first opposing portion covers the outer circumference of the second opposing portion and the third opposing portion, respectively. Stacked barista.

2. In the second direction, the width of the second pull-out portion is 90% or less of the width of the second opposing portion, In the second direction, the width of the third extension portion is 90% or less of the width of the third opposing portion. The multilayer varistor according to claim 1.

3. In the first direction, the length of the first opposing portion is 107.5% or more and 115% or less of the length of the second opposing portion or the third opposing portion. A multilayer varistor according to claim 1 or 2.

4. In the second direction, the length of the first opposing portion is 107.5% or more and 115% or less of the length of the second opposing portion or the third opposing portion. A multilayer varistor according to any one of claims 1 to 3.

5. In the first direction, the width of the first pull-out portion is 90% or less of the width of the first opposing portion. A multilayer varistor according to any one of claims 1 to 4.

6. The first internal electrode has an overlapping region that overlaps with the second internal electrode and the third internal electrode in the third direction, The length of the superimposed region in the first direction is longer than the length of the superimposed region in the second direction. The multilayer varistor according to claim 1.

7. The ratio of the length of the superimposed region in the first direction to the length of the superimposed region in the second direction is 1.3 or more and 7.5 or less. The multilayer varistor according to claim 6.

8. In the first laminated surface, the ratio of the area of ​​the superimposed region to the cross-sectional area of ​​the sintered body is 0.024 or more and 0.161 or less. The multilayer varistor according to claim 6 or 7.

9. The stacked varistor comprises a plurality of the first external electrodes, The multiple first external electrodes are provided on a portion of the first side surface and a portion of the second side surface, The second external electrode is provided on at least a portion of the first end face, The third external electrode is provided on at least a portion of the second end face, The superimposed region is located in a second region other than the first region on the first stacking surface, where the first external electrode, the second external electrode, and the third external electrode are projected, respectively. A multilayer varistor according to any one of claims 6 to 8.

10. A sintered body comprising: a first internal electrode, a second internal electrode, a third internal electrode, two first external electrodes electrically connected via the first internal electrode, two second external electrodes electrically connected via the second internal electrode, and two third external electrodes electrically connected via the third internal electrode, The sintered body has a first end face and a second end face that face each other in a first direction, a first side surface and a second side surface that face each other in a second direction, and a first main surface and a second main surface that face each other in a third direction. The sintered body has a laminated structure in which multiple layers are stacked in a third direction, and is formed in the shape of a rectangular parallelepiped with the first direction as its longer side. The first internal electrode is provided on the first laminated surface inside the sintered body, The second internal electrode is provided on a second laminated surface different from the first laminated surface inside the sintered body. The third internal electrode is provided on a third laminated surface within the sintered body that is different from the first and second laminated surfaces. One of the two first external electrodes is provided on the first side surface, and the other first external electrode is provided on the second side surface, and each is electrically connected to the first internal electrode. One of the two second external electrodes is provided on the first side surface, and the other of the two second external electrodes is provided on the second side surface, and each is electrically connected to the second internal electrode. One of the two third external electrodes is provided on the first side surface, and the other of the two third external electrodes is provided on the second side surface, and each is electrically connected to the third internal electrode. The first internal electrode has an overlapping region that overlaps with the second internal electrode and the third internal electrode in the third direction. The second internal electrode has a second opposing portion and a second extraction portion, The second extension portion includes a first connecting portion that connects the two second external electrodes, and a first protruding portion that protrudes from the second opposing portion along the first direction and is connected to the first connecting portion. The third internal electrode has a third opposing portion and a third extraction portion, The third extension portion includes a second connecting portion that connects the two third external electrodes, and a second protruding portion that protrudes from the third opposing portion along the first direction and is connected to the second connecting portion. In the first direction, one of the two first external electrodes is located between one of the two second external electrodes and one of the two third external electrodes. In the first direction, the other of the two first external electrodes is located between the other of the two second external electrodes and the other of the two third external electrodes. Stacked barista.

11. A first varistor formed between the first external electrode and the second external electrode, and a second varistor formed between the first external electrode and the third external electrode, The capacitances of the first varistor and the second varistor are each 200 pF or less. The difference between the capacitance of the first varistor and the capacitance of the second varistor is -20% or more and +20% or less of the capacitance of the first varistor. A multilayer varistor according to any one of claims 1 to 10.

Citation Information

Patent Citations

  • surge absorber

    JP1993008905U

  • Chip capacitive varistor

    JP1995235406A

  • Varistor

    JP2007115931A

  • Stacked barrister array

    JP2007266069A

  • Laminated varistor

    JP2017204547A