Electronic component
The electronic component's innovative design with facing connecting and capacitor conductors addresses miniaturization and performance enhancement by reducing conductor count and enabling efficient inductor-capacitor integration.
Patent Information
- Application Number
- JP2024057851
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-29
- Publication Date
- 2025-10-10
AI Technical Summary
Existing electronic components are not adequately miniaturized and lack improved characteristics.
The electronic component is designed with a base body formed by stacking insulating layers, incorporating an inductor conductor and a capacitor conductor, where the first connecting conductor and the first capacitor conductor face each other in the stacking direction, reducing the number of conductors and allowing them to serve both as inductor and capacitor components, enabling efficient arrangement and adjustment of inductance and capacitance.
This configuration achieves miniaturization and enhances the component's characteristics by reducing conductor count and allowing for efficient inductor and capacitor formation, while providing flexibility in conductor arrangement for improved performance.
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Figure 2025154705000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to electronic components. [Background technology]
[0002] The electronic component includes an element body formed by laminating multiple insulating layers, and a resonator disposed within the element body (see, for example, Patent Documents). The resonator includes an inductor conductor and a capacitor conductor. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] International Publication No. 2016 / 157928 Summary of the Invention [Problem to be solved by the invention]
[0004] An object of one aspect of the present invention is to provide an electronic component that can be miniaturized and has improved characteristics. [Means for solving the problem]
[0005] (1) An electronic component according to one aspect of the present invention comprises a base body formed by stacking a plurality of insulating layers, and an inductor conductor and a capacitor conductor arranged within the base body, wherein the inductor conductor includes a first conductor, a second conductor, a third conductor, a first connecting conductor connecting the first conductor and the second conductor, and a second connecting conductor connecting the second conductor and the third conductor, and the capacitor conductor includes a first capacitor conductor, and at least a portion of the first connecting conductor and the first capacitor conductor face each other in the stacking direction of the plurality of insulating layers.
[0006] In an electronic component according to one aspect of the present invention, at least a portion of the first connecting conductor and the first capacitor conductor opposes each other in the stacking direction of the multiple insulating layers. This allows the first connecting conductor and the first capacitor conductor to form a capacitor in the electronic component. In this way, the capacitor is formed by the first connecting conductor that forms the inductor in the electronic component, and the first connecting conductor serves both as a component of the inductor and a component of the capacitor. This allows the number of conductors (members) forming the capacitor to be reduced in the electronic component. This allows the electronic component to be miniaturized. Furthermore, the electronic component can ensure inductance by the first conductor, second conductor, third conductor, first connecting conductor, and second connecting conductor. This allows the electronic component to have improved characteristics.
[0007] (2) In the electronic component described in (1) above, the first connecting conductor and the second connecting conductor may be arranged at different positions in the stacking direction. This configuration increases the degree of freedom in arranging the first conductor, the second conductor, and the third conductor. This allows the inductance of the inductor formed by the first conductor, the second conductor, and the third conductor to be adjusted in the electronic component. Furthermore, the electronic component allows the first conductor, the second conductor, and the third conductor to be efficiently arranged within the body.
[0008] (3) In the electronic component of (1) or (2), the first connecting conductor may be disposed closer to the first capacitor conductor than the second connecting conductor, and in this configuration, the first connecting conductor and the first capacitor conductor can form a capacitor.
[0009] (4) In any one of the electronic components (1) to (3), the second connecting conductor may be longer than the first connecting conductor. By increasing the length of the second connecting conductor in this way, inductance can be ensured.
[0010] (5) In any one of the electronic components (1) to (4) above, the width of the first connecting conductor and the width of the second connecting conductor may be different when viewed in the stacking direction. This configuration allows adjustment of inductance and capacitance.
[0011] (6) In the electronic component of any one of (1) to (5) above, the capacitor conductor may include a second capacitor conductor. In this configuration, a capacitor separate from the capacitor formed by the first connecting conductor and the first capacitor conductor can be formed.
[0012] (7) In the electronic component of (6), the first connecting conductor and the second capacitor conductor may be disposed at different positions in the stacking direction. This configuration ensures the length of the first connecting conductor, thereby ensuring the inductance of the inductor formed by the first connecting conductor.
[0013] (8) In the electronic component of (6) or (7), at least a portion of the second connecting conductor and the second capacitor conductor may face each other in the stacking direction. In this configuration, the second connecting conductor and the second capacitor conductor can form a capacitor.
[0014] (9) In the electronic component of any one of (6) to (8), the second capacitor conductor may have a portion where the width of the first connecting conductor and the width of the second connecting conductor are different from each other when viewed in the stacking direction. This configuration allows adjustment of inductance and capacitance. [Effects of the Invention]
[0015] According to one aspect of the present invention, it is possible to achieve miniaturization and improvement in characteristics. [Brief explanation of the drawings]
[0016] [Figure 1] FIG. 1 is a perspective view of an electronic component according to one embodiment. [Figure 2]FIG. 2 is a perspective view of the electronic component shown in FIG. [Figure 3] FIG. 3 is a side view of the electronic component shown in FIG. [Figure 4] FIG. 4 is a view of the electronic component shown in FIG. 1 as seen from one end face side. [Figure 5] FIG. 5 is a view of the electronic component shown in FIG. 1 as seen from the other end face side. [Figure 6] FIG. 6 is an exploded perspective view of the electronic component shown in FIG. [Figure 7] 7(a) and 7(b) are diagrams showing the conductor patterns. [Figure 8] FIG. 8 is an equivalent circuit diagram of the electronic component shown in FIG. DETAILED DESCRIPTION OF THE INVENTION
[0017] Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings. In the description of the drawings, the same or corresponding elements are designated by the same reference numerals, and redundant description will be omitted.
[0018] The configuration of an electronic component according to one embodiment will be described with reference to Figures 1 and 2. Figures 1 and 2 are perspective views of the electronic component. As shown in Figures 1 and 2, the electronic component 1 includes an element body 2, a first terminal electrode 3, a second terminal electrode 4, a third terminal electrode 5, and a fourth terminal electrode 6, and a resonator 7. In Figures 1 and 2, the element body 2 is indicated by a dashed line.
[0019] The element body 2 has a rectangular parallelepiped shape. The rectangular parallelepiped shape includes a rectangular parallelepiped shape with chamfered corners and ridges, and a rectangular parallelepiped shape with rounded corners and ridges. The element body 2 has, as its outer surfaces, a pair of end faces 2a and 2b, a pair of main faces 2c and 2d, and a pair of side faces 2e and 2f. The end faces 2a and 2b face each other. The main faces 2c and 2d face each other. The side faces 2e and 2f face each other. Hereinafter, the facing direction of the end faces 2a and 2b is referred to as a first direction D1, the facing direction of the main faces 2c and 2d is referred to as a second direction D2, and the facing direction of the side faces 2e and 2f is referred to as a third direction D3. The first direction D1, the second direction D2, and the third direction D3 are approximately perpendicular to each other.
[0020] The end faces 2a, 2b extend in the second direction D2 to connect the principal faces 2c, 2d. The end faces 2a, 2b also extend in the third direction D3 to connect the side faces 2e, 2f. The principal faces 2c, 2d extend in the first direction D1 to connect the end faces 2a, 2b. The principal faces 2c, 2d also extend in the third direction D3 to connect the side faces 2e, 2f. The side faces 2e, 2f extend in the first direction D1 to connect the end faces 2a, 2b. The side faces 2e, 2f also extend in the second direction D2 to connect the principal faces 2c, 2d.
[0021] The main surface 2d is a mounting surface that faces another electronic device (not shown) when the electronic component 1 is mounted on the other electronic device (for example, a circuit board or a laminated electronic component). The end surfaces 2a and 2b are surfaces that are continuous with the mounting surface (i.e., the main surface 2d).
[0022] The length of the element body 2 in the first direction D1 is longer than the length of the element body 2 in the second direction D2 and the length of the element body 2 in the third direction D3. The length of the element body 2 in the second direction D2 is shorter than the length of the element body 2 in the third direction D3. That is, in this embodiment, the end faces 2a, 2b, main faces 2c, 2d, and side faces 2e, 2f have a rectangular shape. The length of the element body 2 in the second direction D2 may be equal to the length of the element body 2 in the third direction D3, or may be longer than the length of the element body 2 in the third direction D3.
[0023] In this embodiment, "equivalent" does not only mean equal, but also may mean values that include slight differences or manufacturing errors within a preset range. For example, if multiple values are within a range of ±5% of the average value of the multiple values, the multiple values are defined as equivalent.
[0024] The element body 2 is formed by stacking multiple insulator layers 8 in the second direction D2. That is, the stacking direction of the element body 2 is the second direction D2. In an actual element body 2, the multiple insulator layers 8 may be integrated to the extent that the boundaries between the layers are not visible, or may be integrated so that the boundaries between the layers are visible.
[0025] The insulating layer 8 is made of, for example, a sintered ceramic green sheet containing a dielectric material, such as at least one selected from a BaTiO3-based material, a Ba(Ti,Zr)O3-based material, a (Ba,Ca)TiO3-based material, a glass material, or an alumina material.
[0026] The first terminal electrode 3, the second terminal electrode 4, the third terminal electrode 5, and the fourth terminal electrode 6 are each provided on the element body 2. The first terminal electrode 3, the second terminal electrode 4, the third terminal electrode 5, and the fourth terminal electrode 6 are each arranged on the main surface 2d of the element body 2. The first terminal electrode 3 is arranged near the end face 2a and near the side face 2e. The second terminal electrode 4 is arranged near the end face 2b and near the side face 2e. The third terminal electrode 5 is arranged near the end face 2a and near the side face 2f. The fourth terminal electrode 6 is arranged near the end face 2b and near the side face 2f. The first terminal electrode 3, the second terminal electrode 4, the third terminal electrode 5, and the fourth terminal electrode 6 are each arranged at a corner of the main surface 2d.
[0027] The first terminal electrode 3 and the second terminal electrode 4 are arranged opposite each other in the first direction D1. The third terminal electrode 5 and the fourth terminal electrode 6 are arranged opposite each other in the first direction D1. The first terminal electrode 3 and the third terminal electrode 5 are arranged opposite each other in the third direction D3. The second terminal electrode 4 and the fourth terminal electrode 6 are arranged opposite each other in the third direction D3.
[0028] The first terminal electrode 3, the second terminal electrode 4, the third terminal electrode 5, and the fourth terminal electrode 6 each have a rectangular shape (rectangular shape). The first terminal electrode 3, the second terminal electrode 4, the third terminal electrode 5, and the fourth terminal electrode 6 each are arranged so that each side extends along the first direction D1 or the third direction D3. The first terminal electrode 3, the second terminal electrode 4, the third terminal electrode 5, and the fourth terminal electrode 6 protrude from the main surface 2d. That is, in this embodiment, the surfaces of the first terminal electrode 3, the second terminal electrode 4, the third terminal electrode 5, and the fourth terminal electrode 6 are not flush with the main surface 2d. The first terminal electrode 3, the second terminal electrode 4, the third terminal electrode 5, and the fourth terminal electrode 6 are made of a conductive material (for example, Cu).
[0029] A plating layer (not shown) containing, for example, Ni, Sn, Au, etc. may be provided on each of the first terminal electrode 3, the second terminal electrode 4, the third terminal electrode 5, and the fourth terminal electrode 6 by electrolytic plating or electroless plating. The plating layer may have, for example, a Ni plating film containing Ni and covering the first terminal electrode 3, the second terminal electrode 4, the third terminal electrode 5, and the fourth terminal electrode 6, and an Au plating film containing Au and covering the Ni plating film.
[0030] Fig. 3 is a side view of the electronic component 1 shown in Fig. 1. Fig. 4 is a side view of the electronic component 1 shown in Fig. 1. Fig. 5 is a side view of the electronic component 1 shown in Fig. 1. Fig. 6 is an exploded perspective view of the electronic component 1 shown in Fig. 1. In Figs. 3, 4, and 5, the element body 2 is indicated by a dashed line.
[0031] 1 to 5, the resonator 7 is disposed within the element body 2. As shown in FIGS. 1 to 6, the resonator 7 includes an inductor conductor 10, an inductor conductor 11, a capacitor conductor (second capacitor conductor) 12, an inductor conductor (first connecting conductor) 13, an inductor conductor (second connecting conductor) 14, an inductor conductor 15, a capacitor conductor (first capacitor conductor) 16, a capacitor conductor 17, a capacitor conductor 18, a connecting conductor 19, a connecting conductor 20, a connecting conductor 21, a connecting conductor 22, a via conductor 23, a via conductor 24, a via conductor 25, a via conductor 26, a via conductor 27, a via conductor 28, a via conductor 29, a via conductor 30, a via conductor 31, a via conductor 32, a via conductor 33, a via conductor 34, and a via conductor 35. Each conductor is made of a conductive material (e.g., Cu).
[0032] The inductor conductor 10 is electrically connected to the third terminal electrode 5 and the fourth terminal electrode 6. The inductor conductor 10 is electrically connected to the third terminal electrode 5 by a connecting conductor 21. The inductor conductor 10 is electrically connected to the fourth terminal electrode 6 by a connecting conductor 22.
[0033] One end of the inductor conductor 11 is electrically connected to one end of the inductor conductor 10. The other end of the inductor conductor 11 is electrically connected to the capacitor conductor 16. The other end of the inductor conductor 11 is electrically connected to the capacitor conductor 16 through a via conductor 29.
[0034] One end of the capacitor conductor 12 is electrically connected to the second terminal electrode 4. One end of the capacitor conductor 12 is electrically connected to the second terminal electrode 4 by the connection conductor 20, the via conductor 24, the via conductor 26, the via conductor 28, and the via conductor 30. One end of the inductor conductor 13 is electrically connected to one end of the capacitor conductor 12. The other end of the inductor conductor 13 is electrically connected to one end of the inductor conductor 14. The other end of the inductor conductor 13 is electrically connected to one end of the inductor conductor 14 by the via conductors 33 and 35. The inductor conductor 13 extends along a third direction D3.
[0035] One end of the inductor conductor 14 is electrically connected to the other end of the inductor conductor 13. The other end of the inductor conductor 14 is electrically connected to the first terminal electrode 3. The other end of the inductor conductor 14 is electrically connected to the first terminal electrode 3 by the connecting conductor 19, the via conductor 23, the via conductor 25, the via conductor 27, the via conductor 31, the via conductor 32, and the via conductor 34. One end of the inductor conductor 15 is electrically connected to one end of the inductor conductor 14. The other end of the inductor conductor 15 is electrically connected to the other end of the inductor conductor 15.
[0036] The inductor conductors 14 and 15 each extend diagonally when viewed from the second direction D2. Specifically, when viewed from the second direction D2, the inductor conductors 14 and 15 each extend diagonally along the angle between the end face 2a and the side face 2e of the element body 2 and the angle between the end face 2b and the side face 2f. The inductor conductors 14 and 15 are disposed opposite each other in the second direction D2.
[0037] The capacitor conductor 16 and the capacitor conductor 17 are arranged at the same position (layer) in the second direction D2. The inductor conductor 13 and the capacitor conductor 18 are arranged at the same position in the second direction D2.
[0038] The via conductors 24, 26, 28, and 30 constitute a first conductor 36. The first conductor 36 extends along the second direction D2. The first conductor 36 is disposed closer to the end face 2b and closer to the side face 2e. The via conductors 33 and 35 constitute a second conductor 37. The second conductor 37 extends along the second direction D2. The second conductor 37 is disposed closer to the end face 2b and closer to the side face 2f. The via conductors 23, 25, 27, 31, 32, and 34 constitute a third conductor 38. The third conductor 38 extends along the second direction D2. The third conductor 38 is disposed closer to the end face 2a and closer to the side face 2e.
[0039] In this embodiment, when viewed from the second direction D2, the second conductors 37 are not arranged on a straight line (imaginary line) connecting the first conductors 36 and the third conductors 38. When viewed from the second direction D2, the first conductors 36, the second conductors 37, and the third conductors 38 are arranged so that the straight line connecting the first conductors 36 and the second conductors 37, the straight line connecting the first conductors 36 and the third conductors 38, and the straight line connecting the second conductors 37 and the third conductors 38 form a triangle.
[0040] One end of the first conductor 36 (the end on the principal surface 2c side) is electrically connected to one end of the inductor conductor 13. The other end of the first conductor 36 (the end on the principal surface 2d side) is electrically connected to the connecting conductor 20. One end of the second conductor 37 is electrically connected to one end of the inductor conductor 14. The other end of the second conductor 37 is electrically connected to the other end of the inductor conductor 13. The inductor conductor 13 electrically connects the first conductor 36 and the second conductor 37. One end of the third conductor 38 is electrically connected to the other end of the inductor conductor 14. The other end of the third conductor 38 is electrically connected to the connecting conductor 19. The inductor conductor 14 electrically connects the second conductor 37 and the third conductor 38.
[0041] 1, in the electronic component 1, a portion of the inductor conductor 13 and a portion of the capacitor conductor 16 are arranged to face each other in the second direction D2. That is, when viewed from the second direction D2, a portion of the inductor conductor 13 and a portion of the capacitor conductor 16 overlap. In the electronic component 1, the inductor conductor 14 and the capacitor conductor 12 are arranged to face each other in the second direction D2. That is, when viewed from the second direction D2, a portion of the inductor conductor 14 and a portion of the capacitor conductor 12 overlap.
[0042] 1 and 6, the inductor conductor 13 and the inductor conductor 14 are arranged at different positions in the second direction D2. The inductor conductor 14 is arranged closer to the main surface 2c than the inductor conductor 13. The inductor conductor 13 is arranged closer to the capacitor conductor 16 than the inductor conductor 14. In other words, the distance between the inductor conductor 13 and the capacitor conductor 16 in the second direction D2 is shorter than the distance between the inductor conductor 14 and the capacitor conductor 16 in the second direction D2.
[0043] A portion of the capacitor conductor 12 is disposed between the capacitor conductor 17 and the capacitor conductor 18 in the second direction D2. The capacitor conductor 12 and the inductor conductor 13 are disposed at different positions in the second direction D2. The inductor conductor 14 and the capacitor conductor 18 are disposed at different positions in the second direction D2. The inductor conductor 14 is disposed at a position closer to the main surface 2c than the capacitor conductor 18.
[0044] 7(a) and 7(b) are diagrams showing conductor patterns. As shown in FIGS. 7(a) and 7(b), the length N1 of the inductor conductor 13 may be different from the length N2 of the inductor conductor 14. In this embodiment, the length N1 of the inductor conductor 13 is shorter than the length N2 of the inductor conductor 14. In other words, the length N2 of the inductor conductor 14 is longer than the length N1 of the inductor conductor 13.
[0045] The width W1 of the inductor conductor 13 and the width W2 of the inductor conductor 14 may be different. In this embodiment, the width W1 of the inductor conductor 13 is larger (wider) than the width W2 of the inductor conductor 14. In other words, the width W2 of the inductor conductor 14 is smaller (narrower) than the width W1 of the inductor conductor 13. The width W1 of the inductor conductor 13 and the width W2 of the inductor conductor 14 may have portions which are different from the width W3 of the capacitor conductor 12 (see FIG. 6).
[0046] Fig. 8 is an equivalent circuit diagram of the electronic component 1 shown in Fig. 1. As shown in Fig. 8, the electronic component 1 includes an input port P1, an output port P2, a ground Gnd, an inductor L1, an inductor L2, a capacitor C1, a capacitor C2, and a capacitor C3.
[0047] The input port P1 is formed by a first terminal electrode 3. The output port P2 is formed by a second terminal electrode 4. The ground Gnd is formed by a third terminal electrode 5 and a fourth terminal electrode 6.
[0048] The inductor L1 is composed of an inductor conductor 13, an inductor conductor 14, and an inductor conductor 15. The inductor L2 is composed of an inductor conductor 10 and an inductor conductor 11.
[0049] The capacitor C1 is composed of a capacitor conductor 12, a capacitor conductor 17, and a capacitor conductor 18. The capacitor C2 is composed of an inductor conductor 13 and a capacitor conductor 17. The capacitor C3 is composed of an inductor conductor 10 and a capacitor conductor 17.
[0050] As described above, in the electronic component 1 according to this embodiment, at least a portion of the inductor conductor 13 and the capacitor conductor 16 face each other in the second direction D2. This allows the inductor conductor 13 and the capacitor conductor 16 to form the capacitor C3 in the electronic component 1. In this manner, in the electronic component 1, the inductor conductor 13 that forms the inductor L1 forms the capacitor C3, and the inductor conductor 13 serves both as the component of the inductor L1 and the component of the capacitor C3. This allows the number of conductors (members) used to form the capacitor in the electronic component 1 to be reduced. This also allows the electronic component 1 to be more compact. Furthermore, in the electronic component 1, the first conductor 36, the second conductor 37, the third conductor 38, the inductor conductor 13, and the inductor conductor 14 ensure inductance. This allows the electronic component 1 to have improved characteristics.
[0051] In the electronic component 1 according to this embodiment, the inductor conductor 13 and the inductor conductor 14 are arranged at different positions in the second direction D2. This configuration increases the degree of freedom in arranging the first conductor 36, the second conductor 37, and the third conductor 38. This allows the electronic component 1 to adjust the inductance of the inductor L1 formed by the first conductor 36, the second conductor 37, and the third conductor 38. Furthermore, the electronic component 1 allows the first conductor 36, the second conductor 37, and the third conductor 38 to be efficiently arranged within the element body 2.
[0052] In the electronic component 1 according to this embodiment, the inductor conductor 13 is disposed closer to the capacitor conductor 16 than the inductor conductor 14. In this configuration, the inductor conductor 13 and the capacitor conductor 16 can form a capacitor C3.
[0053] In the electronic component 1 according to this embodiment, the length N2 of the inductor conductor 14 is longer than the length N1 of the inductor conductor 13. In this way, by increasing the length N2 of the inductor conductor 14, the inductance of the inductor L1 can be ensured.
[0054] In the electronic component 1 according to this embodiment, when viewed from the second direction D2, the width W1 of the inductor conductor 13 is different from the width W2 of the inductor conductor 14. This configuration makes it possible to adjust the inductance and capacitance.
[0055] In the electronic component 1 according to this embodiment, the inductor conductor 13 and the capacitor conductor 12 are arranged at different positions in the second direction D2. In this configuration, the length N2 of the inductor conductor 13 can be ensured, and therefore the inductance of the inductor L1 formed by the inductor conductor 13 can be ensured.
[0056] In the electronic component 1 according to this embodiment, when viewed from the second direction D2, the width W3 of the capacitor conductor 12 may be different from the width W1 of the inductor conductor 13 and the width W2 of the inductor conductor 14. This configuration allows adjustment of the inductance and capacitance.
[0057] Although the embodiments of the present invention have been described above, the present invention is not necessarily limited to the above-described embodiments, and various modifications are possible without departing from the spirit of the present invention.
[0058] In the above embodiment, there are no limitations on the number and configuration of the conductors that make up the resonator 7. In the electronic component, in a configuration in which the inductor conductor includes a first conductor, a second conductor, a third conductor, a first connecting conductor, and a second connecting conductor, and the capacitor conductor includes a first capacitor conductor, it is sufficient that at least a portion of the first connecting conductor and the first capacitor conductor face each other in the second direction D2.
[0059] In the above embodiment, there are no limitations on the arrangement of the first conductor 36, the second conductor 37, and the third conductor 38. The arrangement of the inductor conductor 13 and the inductor conductor 14 (15) can be changed as appropriate depending on the arrangement of the first conductor 36, the second conductor 37, and the third conductor 38. [Explanation of symbols]
[0060] 1...electronic component, 2...element body, 8...insulator layer, 12...capacitor conductor (second capacitor conductor), 13...inductor conductor (first connecting conductor), 14...inductor conductor (second connecting conductor), 16...capacitor conductor (first capacitor conductor), 36...first conductor, 37...second conductor, 38...third conductor.
Claims
1. an element body formed by laminating a plurality of insulating layers; an inductor conductor and a capacitor conductor disposed within the element body; the inductor conductor includes a first conductor, a second conductor, a third conductor, a first connecting conductor connecting the first conductor and the second conductor, and a second connecting conductor connecting the second conductor and the third conductor; the capacitor conductors include a first capacitor conductor; an electronic component, wherein at least a portion of the first connection conductor and the first capacitor conductor face each other in a stacking direction of the plurality of insulating layers;
2. The electronic component according to claim 1 , wherein the first connecting conductor and the second connecting conductor are disposed at different positions in the stacking direction.
3. The electronic component according to claim 1 , wherein the first connecting conductor is disposed closer to the first capacitor conductor than the second connecting conductor.
4. The electronic component according to claim 1 , wherein the second connecting conductor has a length longer than the first connecting conductor.
5. The electronic component according to claim 1 , wherein the first connecting conductor and the second connecting conductor have different widths when viewed in the stacking direction.
6. The electronic component according to claim 1 , wherein the capacitor conductor includes a second capacitor conductor.
7. The electronic component according to claim 6 , wherein the first connection conductor and the second capacitor conductor are disposed at different positions in the stacking direction.
8. The electronic component according to claim 6 , wherein at least a portion of the second connection conductor and the second capacitor conductor oppose each other in the stacking direction.
9. The electronic component according to claim 6 , wherein the second capacitor conductor has a portion where the width of the second capacitor conductor is different from the widths of the first connecting conductor and the second connecting conductor, as viewed in the stacking direction.
Citation Information
Patent Citations
Electronic component
WO2016157928A1