Multilayer inductors

By configuring external electrodes with specific edge alignments and additional electrode layers, the peeling issue in laminated inductors is effectively addressed, enhancing the structural integrity and electrical connectivity of the device.

JP7808451B2Active Publication Date: 2026-01-29TDK CORP
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Patent Information

Application Number
JP2021168734
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-14
Publication Date
2026-01-29
Estimated Expiration
2041-10-14

AI Technical Summary

Technical Problem

Existing laminated inductors face issues with peeling of external electrodes from the element body.

Method used

The external electrodes are configured such that they have electrode portions that sandwich the element body, with specific edges coinciding with imaginary planes perpendicular to the main surface, and additional electrode layers are formed on these edges to enhance anchoring, increasing contact area and preventing peeling.

Benefits of technology

This configuration significantly reduces the peeling of external electrodes from the element body, ensuring reliable electrical connectivity and structural integrity.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a laminated inductor in which peeling of an external electrode from an element assembly is further suppressed.SOLUTION: A laminated inductor MD1 comprises: an element assembly 1 that has a principal surface 1a and a side surface adjacent to the principal surface 1a and positioned on a virtual plane orthogonal to the principal surface 1a; a coil 10 that is arranged in the element assembly 1; and an external electrode 20 that is arranged in the element assembly 1 and is electrically connected to the coil 10. The external electrode 20 comprises: a first electrode portion 21 that is exposed from the principal surface 1a; a second electrode portion 22 that is continuous with the first electrode portion 21, is exposed from the principal surface 1a, and has an outer edge coinciding with a virtual plane when viewed from a direction orthogonal to the principal surface 1a; and a third electrode portion 23 that is continuous with the first electrode portion 21, is apart from the second electrode portion 22 in a direction orthogonal to the principal surface, and has an outer edge coinciding with the virtual plane when viewed from a direction orthogonal to the principal surface 1a. The second electrode portion 22 and the third electrode portion 23 sandwich a part of the element assembly 1.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a laminated inductor. [Background technology]

[0002] Known laminated inductors include an element body having a mounting surface, a coil disposed within the element body, and external electrodes electrically connected to the coil and disposed on the element body (see, for example, Patent Documents 1 and 2). The external electrodes have portions that sandwich a part of the element body. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 2020-61409 [Patent Document 2] Japanese Patent Application Laid-Open No. 2005-209881 Summary of the Invention [Problem to be solved by the invention]

[0004] An object of one aspect of the present invention is to provide a laminated inductor that further suppresses peeling of external electrodes from the element body. [Means for solving the problem]

[0005] The present inventors have conducted extensive research into a multilayer inductor that further suppresses peeling of external electrodes from the element body, and as a result, have obtained the following new findings, which have led to the present invention.

[0006] According to the new findings of the inventors, peeling of the external electrodes from the element body is further suppressed when the external electrodes have the following configuration: the element body has a main surface that forms the mounting surface, and a side surface that is adjacent to the main surface and is located on an imaginary plane that is perpendicular to the main surface. The external electrodes have an electrode portion exposed from the main surface and an electrode portion located within the element body so that the external electrodes sandwich part of the element body between the electrode portion and the exposed electrode portion. The electrode portion located within the element body has an outer edge that coincides with the imaginary plane when viewed from a direction perpendicular to the main surface. Patent Documents 1 and 2 do not disclose a multilayer inductor having the above configuration.

[0007] A laminated inductor according to one embodiment includes an element body having a main surface constituting a mounting surface and a side surface adjacent to the main surface and located on an imaginary plane perpendicular to the main surface, a coil disposed within the element body, and an external electrode disposed on the element body and electrically connected to the coil. The external electrode includes a first electrode portion exposed from the main surface, a second electrode portion continuous with the first electrode portion and exposed from the main surface, positioned so as to extend from the first electrode portion toward the imaginary plane when viewed in a direction perpendicular to the main surface, and a third electrode portion continuous with the first electrode portion and spaced apart from the second electrode portion in the direction perpendicular to the main surface, and having an outer edge that coincides with the imaginary plane when viewed in the direction perpendicular to the main surface. The second electrode portion and the third electrode portion sandwich a portion of the element body.

[0008] According to the one aspect above, the external electrode includes a second electrode portion and a third electrode portion that are continuous with the first electrode portion. The second electrode portion and the third electrode portion have outer edges that coincide with an imaginary plane. The side of the element body that is adjacent to the mounting surface is located on the imaginary plane. Of the sandwiched electrode portions, the third electrode portion that is located within the element body has an outer edge that coincides with the imaginary plane. Therefore, the one aspect above further prevents the external electrode from peeling off from the element body.

[0009] In the above aspect, the external electrode may further include an electrode layer formed on the third electrode portion and exposed from the side surface, and a first width of the electrode layer in a direction perpendicular to the main surface may be greater than a second width of an outer edge of the third electrode portion in the direction perpendicular to the main surface of the third electrode portion. In a configuration in which the first width is larger than the second width, the electrode layer exposed from the side surface can produce an anchor effect, thereby further reliably suppressing peeling of the external electrodes from the element body.

[0010] In one of the above aspects, the second electrode portion has an outer edge that coincides with an imaginary plane when viewed from a direction perpendicular to the main surface, and the electrode layer may be further formed on the second electrode portion at the outer edge of the second electrode portion. In a configuration in which an electrode layer is further formed on the second electrode portion at the outer edge of the second electrode portion, the anchoring effect is further improved, and therefore, this configuration more reliably achieves suppression of peeling of the external electrode from the element body.

[0011] In one of the above aspects, the second electrode portion has a first portion that is continuous with the first electrode portion and exposed from the main surface, and a second portion that is located closer to the imaginary plane than the first portion, and the second portion may be located within the element body. In a configuration in which the second portion is located inside the element body, the contact area between the second electrode portion and the element body can be increased, and therefore, this configuration can more reliably achieve suppression of peeling of the external electrode from the element body.

[0012] In one aspect, the side surface may include a first side surface located on a first imaginary plane orthogonal to the main surface, a second side surface facing the first side surface and located on a second imaginary plane orthogonal to the main surface and facing the first imaginary plane, and a third side surface adjacent to the first side surface and the second side surface and located on a third imaginary plane orthogonal to the main surface, the first imaginary plane, and the second imaginary plane. The second electrode portion may include a first side surface portion having an outer edge coinciding with the first imaginary plane when viewed from a direction orthogonal to the main surface, a second side surface portion having an outer edge coinciding with the second imaginary plane when viewed from a direction orthogonal to the main surface, and a third side surface portion having an outer edge coinciding with the third imaginary plane when viewed from a direction orthogonal to the main surface. The third electrode portion may include a first side surface portion having an outer edge coinciding with the first imaginary plane when viewed from a direction orthogonal to the main surface, a second side surface portion having an outer edge coinciding with the second imaginary plane when viewed from a direction orthogonal to the main surface, and a third side surface portion having an outer edge coinciding with the third imaginary plane when viewed from a direction orthogonal to the main surface. The external electrode may further include a fourth electrode portion that is continuous with the first and second side surface portions of the first and second electrode portions and is exposed from the main surface and is spaced apart from the third side surface when viewed in a direction perpendicular to the main surface, and a fifth electrode portion that is continuous with the first electrode portion and is spaced apart from the fourth electrode portion in the direction perpendicular to the main surface. The fourth electrode portion and the fifth electrode portion may sandwich a part of the element body. In this case, the second electrode portion and the third electrode portion have outer edges that coincide with three imaginary planes that are perpendicular to each other. The side surfaces of the element body adjacent to the main surface are located on the three imaginary planes. The second electrode portion and the third electrode portion have outer edges that coincide with the imaginary planes. The fourth electrode portion and the fifth electrode portion sandwich a portion of the element body. Therefore, the above one aspect more reliably achieves suppression of peeling of the external electrode from the element body.

[0013] In one aspect, the side surface may include a first side surface located on a first imaginary plane orthogonal to the main surface, a second side surface facing the first side surface and located on a second imaginary plane orthogonal to the main surface and facing the first imaginary plane, and a third side surface adjacent to the first side surface and the second side surface and located on a third imaginary plane orthogonal to the main surface, the first imaginary plane, and the second imaginary plane. The second electrode portion may include a first side surface portion having an outer edge coinciding with the first imaginary plane when viewed from a direction orthogonal to the main surface, a second side surface portion having an outer edge coinciding with the second imaginary plane when viewed from a direction orthogonal to the main surface, and a third side surface portion having an outer edge coinciding with the third imaginary plane when viewed from a direction orthogonal to the main surface. The third electrode portion may include a first side surface portion having an outer edge coinciding with the first imaginary plane when viewed from a direction orthogonal to the main surface, and a second side surface portion having an outer edge coinciding with the second imaginary plane when viewed from a direction orthogonal to the main surface. The external electrode may further include a fourth electrode portion that is continuous with the first and second side surface portions of the first and second electrode portions and is exposed from the main surface and is spaced apart from the third side surface when viewed in a direction perpendicular to the main surface, and a fifth electrode portion that is continuous with the first electrode portion and is spaced apart from the fourth electrode portion in the direction perpendicular to the main surface. The fourth electrode portion and the fifth electrode portion may sandwich a part of the element body. In this case, the second electrode portion and the third electrode portion have outer edges that coincide with two imaginary planes that are perpendicular to each other. The side surfaces of the element body that are adjacent to the main surface are located on the two imaginary planes. The second electrode portion and the third electrode portion have outer edges that coincide with the imaginary planes. The fourth electrode portion and the fifth electrode portion sandwich a portion of the element body. Therefore, in the above one aspect, peeling of the external electrode from the element body is more reliably suppressed. [Effects of the Invention]

[0014] One aspect of the present invention provides a laminated inductor that further suppresses peeling of external electrodes from the element body. [Brief explanation of the drawings]

[0015] [Figure 1] FIG. 1 is a perspective view showing a laminated inductor according to one embodiment. [Figure 2] FIG. 2 is a side view showing the laminated inductor according to this embodiment. [Figure 3] FIG. 3 is a side view showing the laminated inductor according to this embodiment. [Figure 4] Fig. 4(a) is a plan view showing the first electrode portion, the third electrode portion, and the fifth electrode portion of the external electrode, and Fig. 4(b) is a plan view showing the second electrode portion and the fourth electrode portion of the external electrode. [Figure 5] FIG. 5 is an exploded perspective view showing the laminated inductor according to this embodiment. [Figure 6] FIG. 6 is a cross-sectional view of an external electrode. [Figure 7] FIG. 7 is a cross-sectional view of an external electrode. [Figure 8] FIG. 8 is a cross-sectional view of an external electrode. [Figure 9] FIG. 9 is a side view showing a laminated inductor according to a modified example of this embodiment. [Figure 10] FIG. 10 is an exploded perspective view showing the external electrodes. [Figure 11] Fig. 11(a) is a plan view showing the first electrode portion, the third electrode portion, and the fifth electrode portion of the external electrode, and Fig. 11(b) is a plan view showing the second electrode portion and the fourth electrode portion of the external electrode. DETAILED DESCRIPTION OF THE INVENTION

[0016] Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. In the description, the same elements or elements having the same functions will be denoted by the same reference numerals, and redundant description will be omitted. The configuration of a multilayer inductor MD1 will be described with reference to FIGS. 1 to 8. FIG. 1 is a perspective view showing a multilayer inductor according to one embodiment. FIG. 2 is a side view showing a multilayer inductor according to this embodiment. FIG. 3 is a side view showing a multilayer inductor according to this embodiment. FIG. 4(a) is a plan view showing a first electrode portion, a third electrode portion, and a fifth electrode portion of an external electrode. FIG. 4(b) is a plan view showing a second electrode portion and a fourth electrode portion of an external electrode. FIG. 5 is an exploded perspective view showing a multilayer inductor according to this embodiment. FIG. 6 is a cross-sectional view of an external electrode. FIG. 7 is a cross-sectional view of an external electrode. FIG. 8 is a cross-sectional view of an external electrode.

[0017] The configuration of the multilayer inductor MD1 will be described with reference to Figures 1 to 5. The multilayer inductor MD1 has an element body 1, a coil 10, and a pair of external electrodes 20, 30. The coil 10 is disposed within the element body 1. The external electrodes 20, 30 are disposed on the element body 1 and are electrically connected to the coil 10.

[0018] The element body 1 has, for example, a rectangular parallelepiped shape. The element body 1 has a pair of principal surfaces 1a and 1b facing each other, a pair of side surfaces 1c and 1d facing each other, and a pair of side surfaces 1e and 1f facing each other. The principal surfaces 1a and 1b and the side surfaces 1c, 1d, 1e, and 1f form the outer surface of the element body 1. The principal surfaces 1a and 1b extend in a direction intersecting the first direction D1. In this embodiment, the principal surface 1a extends in a direction perpendicular to the first direction D1. The principal surface 1a forms a mounting surface. When the laminated inductor MD1 is mounted on another electronic device, for example, a circuit board or a laminated electronic component, the principal surface 1a faces the other electronic device.

[0019] The principal surfaces 1a and 1b face each other in the first direction D1. The principal surfaces 1a and 1b define both ends of the element body 1 in the first direction D1. The side surfaces 1c and 1d are adjacent to the principal surfaces 1a and 1b and extend in a second direction D2 that intersects the first direction D1. The side surfaces 1c and 1d face each other in the second direction D2. The side surfaces 1c and 1d define both ends of the element body 1 in the second direction D2. The side surfaces 1e and 1f are adjacent to the principal surfaces 1a and 1b and extend in the second direction D2. The side surfaces 1e and 1f face each other in the third direction D3. The side surfaces 1e and 1f define both ends of the element body 1 in the third direction D3. In this embodiment, the first direction D1, the second direction D2, and the third direction D3 are perpendicular to each other. In this specification, the term "rectangular parallelepiped shape" includes a rectangular parallelepiped shape with chamfered corners and ridges, and a rectangular parallelepiped shape with rounded corners and ridges.

[0020] The main surface 1a and the main surface 1b extend in the second direction D2 to connect the side surface 1c and the side surface 1d. The main surface 1a and the main surface 1b extend in the third direction D3 to connect the side surface 1e and the side surface 1f. The side surface 1c and the side surface 1d extend in the first direction D1 to connect the main surface 1a and the main surface 1b. The side surface 1c and the side surface 1d extend in the third direction D3 to connect the side surface 1e and the side surface 1f. The side surface 1e and the side surface 1f extend in the first direction D1 to connect the main surface 1a and the main surface 1b. The side surface 1e and the side surface 1f extend in the second direction D2 to connect the side surface 1c and the side surface 1d. The side surface 1c is adjacent to the side surface 1e and the side surface 1f. The side surface 1d is adjacent to the side surface 1e and the side surface 1f.

[0021] In this embodiment, the side surfaces 1c, 1d, 1e, and 1f are located on imaginary planes. The imaginary planes include, for example, imaginary planes VP11, VP12, VP13, and VP14. The side surface 1e is located on imaginary plane VP11, which is perpendicular to the main surface 1a. The side surface 1f faces the side surface 1e and faces the imaginary plane VP12, which is perpendicular to the main surface 1a and faces the imaginary plane VP11. The side surface 1c is adjacent to the side surfaces 1e and 1f and is located on imaginary plane VP13, which is perpendicular to the main surface 1a, the imaginary plane VP11, and the imaginary plane VP12. The side surface 1d is adjacent to the side surfaces 1e and 1f and is located on imaginary plane VP14, which is perpendicular to the main surface 1a, the imaginary plane VP11, and the imaginary plane VP12. For example, when side surface 1e constitutes the first side surface, side surface 1f constitutes the second side surface, and side surface 1c constitutes the third side surface. For example, when imaginary plane VP11 constitutes the first imaginary plane, imaginary plane VP12 constitutes the second imaginary plane, imaginary plane VP13 constitutes the third imaginary plane, and imaginary plane VP14 constitutes the fourth imaginary plane.

[0022] The length of the element body 1 in the first direction D1 is, for example, about 0.2 mm. The length of the element body 1 in the second direction D2 is, for example, about 0.4 mm. The length of the element body 1 in the third direction D3 is, for example, about 0.2 mm. In this embodiment, the second direction D2 is, for example, the longitudinal direction of the element body 1.

[0023] The element body 1 is formed, for example, by stacking multiple layers 2a to 2k. In this embodiment, the stacking direction of the multiple layers 2a to 2k is the first direction D1. The multiple layers 2a to 2k are integrated to the extent that their boundaries are practically invisible. The layers 2a to 2k have, for example, insulator layers 3a to 3k. The insulator layers 3a to 3k include a magnetic material. The magnetic material of the insulator layers 3a to 3k includes, for example, a Ni-Cu-Zn ferrite material, a Ni-Cu-Zn-Mg ferrite material, or a Ni-Cu ferrite material. The magnetic material of the insulator layers may include, for example, an Fe alloy. The insulator layers 3a to 3k may include, for example, a non-magnetic material. The non-magnetic material of the insulator layers 3a to 3k includes, for example, a glass ceramic material or a dielectric material.

[0024] The coil 10 is disposed within the element body 1. The coil 10 has, for example, a spiral shape and is formed by a plurality of coil conductor layers 10b-10h and a plurality of through-hole conductors 15a-15h. The plurality of coil conductor layers 10b-10h are connected to one another by the through-hole conductors 15a-15h. In this embodiment, the axial direction of the coil 10 is the first direction D1. The coil conductor layers 10b-10h are disposed so that at least a portion of them overlap one another when viewed from the first direction D1. The coil conductor layers 10b-10h are spaced apart from the main surfaces 1a and 1b and the side surfaces 1c, 1d, 1e, and 1f.

[0025] The coil 10 includes a first coil portion 11 and a second coil portion 12. The first coil portion 11 and the second coil portion 12 are connected to each other. In this embodiment, the first coil portion 11 is formed by a plurality of coil conductor layers 10b to 10d, and the second coil portion 12 is formed by a plurality of coil conductor layers 10e to 10h. For example, the first coil portion 11 is disposed closer to the main surface 1b, and the second coil portion 12 is disposed closer to the main surface 1a.

[0026] A first connecting conductor 13 and a second connecting conductor 14 are arranged within the element body 1. The first connecting conductor 13 electrically connects the coil 10 and the external electrode 20. The second connecting conductor 14 electrically connects the coil 10 and the external electrode 30.

[0027] The first connecting conductor 13 is a through-hole conductor extending in the first direction D1 and is formed by a plurality of first through-hole conductor layers 13i, 13j. An end of the first connecting conductor 13 closer to the principal surface 1b is connected to one end of the coil 10 closer to the principal surface 1b. The first connecting conductor 13 is arranged closer to the outer surface of the element body 1 than the coil 10 when viewed from the first direction D1. The first connecting conductor 13 is arranged, for example, near the corner formed by the side surface 1c and the side surface 1f. An end of the first connecting conductor 13 closer to the principal surface 1a is connected to the external electrode 20.

[0028] The second connecting conductor 14 is a through-hole conductor extending in the first direction D1 and is formed by a plurality of second through-hole conductor layers 14c to 14j. An end of the second connecting conductor 14 closer to the principal surface 1b is connected to one end of the coil 10 closer to the principal surface 1b. When viewed from the first direction D1, the second connecting conductor 14 is arranged closer to a corner formed by the outer surface of the element body 1 than the coil 10. The second connecting conductor 14 is arranged, for example, near the corner formed by the side surface 1d and the side surface 1e. An end of the second connecting conductor 14 closer to the principal surface 1a is connected to the external electrode 30.

[0029] The first connecting conductor 13 and the second connecting conductor 14 have, for example, a cylindrical shape. The cross section of the cylindrical shape may be a perfect circle or an ellipse. The first connecting conductor 13 and the second connecting conductor 14 may have a triangular prism shape or a quadrangular prism shape.

[0030] The external electrodes 20 and 30 are arranged on the element body 1. The external electrode 20 is arranged, for example, closer to the side surface 1c, and the external electrode 30 is arranged, for example, closer to the side surface 1d. The external electrodes 20 and 30 are spaced apart, for example, in the second direction D2. The external electrodes 20 and 30 have, for example, a rectangular shape when viewed from the first direction D1. In this specification, "rectangular" includes, for example, a shape with chamfered corners and a shape with rounded corners.

[0031] The external electrode 20 has a first electrode portion 21 and a second electrode portion 22. The second electrode portion 22 is continuous with the first electrode portion 21 in the first direction D1. The first electrode portion 21 is closer to the principal surface 1b than the second electrode portion 22. The first electrode portion 21 is exposed from the principal surface 1a. The second electrode portion 22 is exposed from the principal surface 1a. When viewed from the first direction D1, the second electrode portion 22 is positioned so as to extend from the first electrode portion 21 toward the imaginary planes VP11, VP12, and VP13. The second electrode portion 22 has an outer edge 22p. When viewed from the first direction D1, the outer edge 22p coincides with the imaginary plane VP13.

[0032] The second electrode portion 22 includes a first side surface portion 22e, a second side surface portion 22f, and a third side surface portion 22c. The first side surface portion 22e has an outer edge 22q that coincides with the imaginary plane VP11 when viewed from the first direction D1. The second side surface portion 22f has an outer edge 22r that coincides with the imaginary plane VP12 when viewed from the first direction D1. The third side surface portion 22c has an outer edge 22p that coincides with the imaginary plane VP13 when viewed from the first direction D1. In this specification, the phrase "the outer edge coincides with the imaginary plane" also includes the outer edge unintentionally not coinciding with the imaginary plane. For example, a configuration in which the outer edge unintentionally does not coincide with the imaginary plane due to manufacturing error or tolerance is included in the configuration in which the outer edge coincides with the imaginary plane.

[0033] The external electrode 20 has a third electrode portion 23. The third electrode portion 23 is continuous with the first electrode portion 21 and is spaced apart from the second electrode portion 22 in the first direction D1. The third electrode portion 23 has an outer edge 23p. When viewed from the first direction D1, the outer edge 23p coincides with the imaginary plane VP13. The third electrode portion 23 has an upper edge 23b and a lower edge 23a that face each other in the first direction D1. The upper edge 23b and the lower edge 23a define both end portions of the third electrode portion 23 in the first direction D1.

[0034] The third electrode portion 23 includes a first side surface portion 23e, a second side surface portion 23f, and a third side surface portion 23c. The first side surface portion 23e has an outer edge 23q that coincides with the imaginary plane VP11 when viewed from the first direction D1. The second side surface portion 23f has an outer edge 23r that coincides with the imaginary plane VP12 when viewed from the first direction D1. The third side surface portion 22c has an outer edge 23p that coincides with the imaginary plane VP13 when viewed from the first direction D1. The outer edge 23q is exposed on, for example, the side surface 1c. In this case, the third electrode portion 23 is embedded in the element body 1 except for the outer edge 23q. The upper edge 23b and the lower edge 23a are also embedded in the element body 1.

[0035] The external electrode 20 has a fourth electrode portion 24 and a fifth electrode portion 25. The fourth electrode portion 24 is continuous with the first side surface portion 22e and the second side surface portion 22f of the second electrode portion 22. The fourth electrode portion 24 is exposed from the main surface 1a. The fourth electrode portion 24 is spaced apart from the side surface 1c when viewed from the first direction D1. The fifth electrode portion 25 is continuous with the first electrode portion 21. The fifth electrode portion 25 is spaced apart from the fourth electrode portion 24 in the first direction D1. The fourth electrode portion 24 and the fifth electrode portion 25 sandwich a portion of the element body 1 in the first direction D1.

[0036] The external electrode 30 has a first electrode portion 31 and a second electrode portion 32. The second electrode portion 32 is continuous with the first electrode portion 31 in the first direction D1. The first electrode portion 31 is closer to the principal surface 1b than the second electrode portion 32. The first electrode portion 31 is exposed from the principal surface 1a. The second electrode portion 32 is exposed from the principal surface 1a. When viewed from the first direction D1, the second electrode portion 32 is positioned so as to extend from the first electrode portion 21 toward the imaginary planes VP11, VP12, and VP13. The second electrode portion 32 has an outer edge 32p. When viewed from the first direction D1, the outer edge 32p coincides with the imaginary plane VP14. The outer edge 32p is exposed on, for example, the side surface 1d. The imaginary plane VP14 with respect to the external electrode 30 has the same positional relationship as the imaginary plane VP13 with respect to the external electrode 20.

[0037] The second electrode portion 32 includes a first side surface portion 32e, a second side surface portion 32f, and a third side surface portion 32d. The first side surface portion 32e has an outer edge 32q that coincides with the imaginary plane VP11 when viewed from the first direction D1. The second side surface portion 32f has an outer edge 32r that coincides with the imaginary plane VP12 when viewed from the first direction D1. The third side surface portion 32d has an outer edge 32p that coincides with the imaginary plane VP14 when viewed from the first direction D1.

[0038] The external electrode 30 has a third electrode portion 33. The third electrode portion 33 is continuous with the first electrode portion 31 and is spaced apart from the second electrode portion 32 in the first direction D1. The third electrode portion 33 has an outer edge 33p. When viewed from the first direction D1, the outer edge 33p coincides with the imaginary plane VP14. The third electrode portion 33 has an upper edge 33b and a lower edge 33a that face each other in the first direction D1. The upper edge 33b and the lower edge 33a define both end portions of the third electrode portion 33 in the first direction D1.

[0039] The third electrode portion 33 includes a first side surface portion 33e, a second side surface portion 33f, and a third side surface portion 33c. The first side surface portion 33e has an outer edge 33q that coincides with the imaginary plane VP11 when viewed from the first direction D1. The second side surface portion 33f has an outer edge 33r that coincides with the imaginary plane VP12 when viewed from the first direction D1. The third side surface portion 32c has an outer edge 33p that coincides with the imaginary plane VP14 when viewed from the first direction D1. The outer edge 33p is exposed on, for example, the side surface 1d. In this case, the third electrode portion 33 is embedded in the element body 1 except for the outer edge 33p. The upper edge 33b and the lower edge 33a are also embedded in the element body 1.

[0040] The external electrode 30 has a fourth electrode portion 34 and a fifth electrode portion 35. The fourth electrode portion 34 is continuous with the first side surface side portion and the second side surface side portion of the second electrode portion 32. The fourth electrode portion 34 is exposed from the main surface 1a. The fourth electrode portion 34 is spaced apart from the side surface 1c when viewed from the first direction D1. The fifth electrode portion 35 is continuous with the first electrode portion 31. The fifth electrode portion 35 is spaced apart from the fourth electrode portion 34 in the first direction D1. The fourth electrode portion 34 and the fifth electrode portion 35 sandwich a part of the element body 1 therebetween.

[0041] In this embodiment, the thickness of the third electrode portions 23, 33 is, for example, 5 to 25 μm. The thickness of the element body 1 sandwiched between the third electrode portions 23, 33 and the second electrode portions 22, 32 is, for example, 5 to 25 μm. The thickness of the second electrode portions 22, 32 is, for example, 5 to 25 μm. The thickness of the fourth electrode portions 24, 34 is, for example, 5 to 25 μm. The thickness of the element body 1 sandwiched between the fourth electrode portions 24, 34 and the fifth electrode portions 25, 35 is, for example, 5 to 25 μm. The thickness of the fifth electrode portions 25, 35 is, for example, 5 to 25 μm.

[0042] As shown in FIG. 2 , when viewed from the third direction D3, the distance L1 in the second direction D2 between the second connecting conductor 14 and the second coil portion 12 is greater than the distance L2 in the second direction D2 between the second connecting conductor 14 and the first coil portion 11. When viewed from the third direction D3, the second coil portion 12 is farther away from the second connecting conductor 14 than the first coil portion 11 is. In this embodiment, the distance L1 is the shortest distance between the second connecting conductor 14 and the second coil portion 12. The distance L2 is the shortest distance between the second connecting conductor 14 and the first coil portion 11. In FIG. 2 , the distances L1 and L2 are shown as examples for convenience and may differ from the actual shortest distances.

[0043] The diameter of the first coil portion 11 is different from the diameter of the second coil portion 12. The diameter of the first coil portion 11 is, for example, larger than the diameter of the second coil portion 12. When viewed from the first direction D1, the coil axis of the first coil portion 11 and the coil axis of the second coil portion 12 do not coincide with each other. When viewed from the first direction D1, the coil axis of the second coil portion 12 is, for example, closer to the side surface 1c than the coil axis of the first coil portion 11. When viewed from the first direction D1, the outer edge of the first coil portion 11 closer to the side surface 1c coincides with, for example, the outer edge of the second coil portion 12 closer to the side surface 1c. Therefore, when viewed from the first direction D1, portions of the coil conductor layers 10b and 10d constituting the first coil portion 11 overlap with, for example, portions of the coil conductor layers 10e and 10h constituting the second coil portion 12.

[0044] When viewed from the first direction D1, the second coil portion 12 does not overlap, for example, the external electrode 30. Therefore, when viewed from the first direction D1, the second coil portion 12 is disposed, for example, at a different location from the external electrode 30. When viewed from the first direction D1, the coil conductor layers 10e to 10h do not overlap, for example, the external electrode 30.

[0045] In this embodiment, the coil 10, the first connecting conductor 13 and the second connecting conductor 14, and the external electrodes 20 and 30 contain conductive materials. The conductive material includes, for example, Ag, Pd, Au, Pt, Cu, Ni, Al, Mo, or W. The conductive material may include, for example, an Ag-Pd alloy, an Ag-Cu alloy, an Ag-Au alloy, or an Ag-Pt alloy. The coil 10, the first connecting conductor 13, and the second connecting conductor 14 may contain the same conductive material as the external electrodes 20 and 30. The coil 10, the first connecting conductor 13 and the second connecting conductor 14, and the external electrodes 20 and 30 may contain the same conductive material. The coil 10, the first connecting conductor 13 and the second connecting conductor 14, and the external electrodes 20 and 30 may contain different conductive materials.

[0046] 5, the multilayer inductor MD1 includes, for example, a plurality of layers 2a to 2k. For example, the layers 2a to 2k are stacked in this order to form the multilayer inductor MD1.

[0047] The layer 2a includes an insulator layer 3a. The layer 2a constitutes the uppermost layer of the element body 1, and the principal surface 2p of the layer 2a corresponds to the principal surface 1b of the element body 1. The layer 2b includes an insulator layer 3b and a coil conductor layer 10b arranged on the insulator layer 3b. The coil conductor layer 10b constitutes part of the first coil portion 11. The layer 2c includes an insulator layer 3c and a coil conductor layer 10c and a second through-hole conductor layer 14c arranged on the insulator layer 3c. The coil conductor layer 10c constitutes part of the first coil portion 11, and the second through-hole conductor layer 14c constitutes part of the second connecting conductor 14. The through-hole conductor 15a and the through-hole conductor 15b are arranged between the layer 2b and the layer 2c. The through-hole conductor 15a connects one end of the coil conductor layer 10b to one end of the coil conductor layer 10c. The through-hole conductor 15b connects the other end of the coil conductor layer 10b to the second through-hole conductor layer 14c.

[0048] Layer 2d includes an insulator layer 3d, and a coil conductor layer 10d and a second through-hole conductor layer 14d arranged on the insulator layer 3d. The coil conductor layer 10d constitutes a part of the first coil portion 11, and the second through-hole conductor layer 14d constitutes a part of the second connecting conductor 14. A through-hole conductor 15c is arranged between layers 2c and 2d. The through-hole conductor 15c connects the other end of the coil conductor layer 10c to one end of the coil conductor layer 10d.

[0049] Layer 2e includes an insulator layer 3e, and a coil conductor layer 10e and a second through-hole conductor layer 14e disposed on the insulator layer 3e. The coil conductor layer 10e constitutes a part of the second coil portion 12, and the second through-hole conductor layer 14e constitutes a part of the second connecting conductor 14. A through-hole conductor 15d is disposed between layers 2d and 2e. The through-hole conductor 15d connects the other end of the coil conductor layer 10d to one end of the coil conductor layer 10e.

[0050] The layer 2f includes an insulator layer 3f, and a coil conductor layer 10f and a second through-hole conductor layer 14f disposed on the insulator layer 3f. The coil conductor layer 10f constitutes a part of the second coil portion 12, and the second through-hole conductor layer 14f constitutes a part of the second connecting conductor 14. A through-hole conductor 15e is disposed between the layer 2e and the layer 2f. The through-hole conductor 15e connects the other end of the coil conductor layer 10e to one end of the coil conductor layer 10f.

[0051] The layer 2g includes an insulator layer 3g, and a coil conductor layer 10g and a second through-hole conductor layer 14g disposed on the insulator layer 3g. The coil conductor layer 10g constitutes a part of the second coil portion 12, and the second through-hole conductor layer 14g constitutes a part of the second connecting conductor 14. A through-hole conductor 15f is disposed between the layer 2f and the layer 2g. The through-hole conductor 15f connects the other end of the coil conductor layer 10f to one end of the coil conductor layer 10g.

[0052] The layer 2h includes an insulator layer 3h, and a coil conductor layer 10h and a second through-hole conductor layer 14h disposed on the insulator layer 3h. The coil conductor layer 10h constitutes a part of the second coil portion 12, and the second through-hole conductor layer 14h constitutes a part of the second connecting conductor 14. A through-hole conductor 15g is disposed between the layer 2g and the layer 2h. The through-hole conductor 15g connects the other end of the coil conductor layer 10g to one end of the coil conductor layer 10h.

[0053] The layer 2i includes an insulator layer 3i, and a first through-hole conductor layer 13i and a second through-hole conductor layer 14i arranged on the insulator layer 3i. The first through-hole conductor layer 13i constitutes a part of the first connecting conductor 13, and the second through-hole conductor layer 14i constitutes a part of the second connecting conductor 14. A through-hole conductor 15h is arranged between the layer 2h and the layer 2i. The through-hole conductor 15h connects the other end of the coil conductor layer 10h to the first through-hole conductor layer 13i. The layer 2j includes an insulator layer 3j, and a first through-hole conductor layer 13j and a second through-hole conductor layer 14j arranged on the insulator layer 3j.

[0054] The layer 2k includes an insulator layer 3k and electrode layers 16a, 16b and 17a, 17b arranged on either side of the insulator layer 3k in the first direction D1. The electrode layer 16a constitutes the first electrode portion 21, the third electrode portion 23, and the fifth electrode portion 25, while the electrode layer 16b constitutes the second electrode portion 22 and the fourth electrode portion 24. The electrode layer 17a constitutes the first electrode portion 31, the third electrode portion 33, and the fifth electrode portion 35, while the electrode layer 17b constitutes the second electrode portion 32 and the fourth electrode portion 34. The insulator layer 3k has an opening 18a through which the electrode layer 16a and the electrode layer 16b are bonded to each other. The insulator layer 3k has an opening 18b through which the electrode layer 17a and the electrode layer 17b are bonded to each other.

[0055] The electrode layer 16a is pressed into the insulator layer 3k having the opening 18a formed therein, and is processed into the first electrode portion 21, the third electrode portion 23, and the fifth electrode portion 25. The first electrode portion 21 is continuous with the second electrode portion 22, for example, via the opening 18a. The electrode layer 17a is pressed into the insulator layer 3k having the opening 18b formed therein, and is processed into the first electrode portion 31, the third electrode portion 33, and the fifth electrode portion 35. The first electrode portion 31 is continuous with the second electrode portion 22, for example, via the opening 18b. The layer 2k constitutes the bottom layer of the element body 1, and the principal surface 2q of the layer 2k corresponds to the principal surface 1a of the element body 1.

[0056] The configuration of the external electrodes 20, 30 will be further described with reference to FIGS. 6 to 8. As shown in FIGS. 6 and 7, the external electrode 20 has an electrode layer 26 that is arranged on the outer surface of the element body 1, for example. The electrode layer 26 is formed on the third electrode portion 23. The electrode layer 26 is arranged on the side surface 1c from which the outer edge 23p is exposed, for example. The electrode layer 26 may also be arranged on the side surface 1e from which the outer edge 23q is exposed. The electrode layer 26 may also be arranged on the side surface 1f from which the outer edge 23r is exposed. For example, when the outer edge 23p is exposed on the side surface 1c, the electrode layer 26 is arranged on the side surface 1c. For example, when the outer edges 23q and 23r are exposed on the side surfaces 1e and 1f, respectively, the electrode layer 26 is arranged on the side surfaces 1e and 1f, respectively. The electrode layer 26 is exposed from the side surfaces 1c, 1e, and 1f.

[0057] The electrode layer 26 is, for example, bonded to the outer edges 23p, 23q, and 23r, and is in contact with a region surrounding the outer edges 23p, 23q, and 23r on at least one of the side surfaces 1c, 1e, and 1f on which the outer edges 23p, 23q, and 23r are exposed. For example, when the outer edge 23p is exposed on the side surface 1c, the electrode layer 26 is in contact with a region on the side surface 1c that surrounds the outer edge 23p. The first width of the electrode layer 26 in the first direction D1 is larger than the second width of the third electrode unit 23 in the first direction D1 at the outer edge 23p of the third electrode unit 23. The electrode layer 26 may be formed, for example, to cover the outer edges 23p, 23q, and 23r exposed from the element body 1 of the second electrode unit 22.

[0058] 6 shows an example of an electrode layer 26 disposed on side surface 1c. Electrode layer 26 may extend in third direction D3 between the edge formed by side surface 1c and side surface 1e and the edge formed by side surface 1c and side surface 1f. For example, when outer edges 23p and 23q are exposed on side surfaces 1c and 1e, respectively, electrode layer 26 on side surface 1c may be connected to electrode layer 26 on side surface 1e across the edge formed by side surface 1c and side surface 1e. For example, when outer edges 23p and 23r are exposed on side surfaces 1c and 1f, respectively, electrode layer 26 on side surface 1c may be connected to electrode layer 26 on side surface 1f across the edge formed by side surface 1c and side surface 1f. For example, when the outer edges 23p, 23q, and 23r are exposed on the side surfaces 1c, 1e, and 1f, respectively, the electrode layer 26 on the side surface 1e may be connected to the electrode layer 26 on the side surface 1c across the edge formed by the side surfaces 1e and 1c, and further, the electrode layer 26 on the side surface 1c may be connected to the electrode layer 26 on the side surface 1f across the edge formed by the side surfaces 1c and 1f.

[0059] The external electrode 30 has, for example, another electrode layer arranged on the outer surface of the element body 1. The electrode layer 26 is formed on the third electrode portion 33. The other electrode layer is arranged on at least one of the side surface 1d and the side surfaces 1e and 1f. For example, when the outer edge 33p is exposed on the side surface 1d, the other electrode layer is arranged on the side surface 1d. The other electrode layer is exposed from the side surfaces 1d, 1e, and 1f. The first width of the other electrode layer in the first direction D1 is larger than the second width of the third electrode portion 33 in the first direction D1 at the outer edge 33p of the third electrode portion 33.

[0060] The electrode layer 26 and other electrode layers include, for example, a Ni-plated film, a Sn-plated film, a Cu-plated film, or a Au-plated film. The electrode layer 26 and other electrode layers may have a multilayer structure of these plating films, and may include, for example, a Ni-plated film and an Au-plated film formed on the Ni-plated film. The thickness of the electrode layer 26 and other electrode layers is, for example, 5 to 15 μm.

[0061] As shown in FIG. 7 , the electrode layer 26 is further formed on the second electrode portion 22, for example, at the outer edge 22p of the second electrode portion 22. The second electrode portion 22 has, for example, the outer edge 22p that coincides with the imaginary plane VP13 when viewed from the first direction D1. The electrode layer 26 shown in FIG. 7 has a larger first width in the first direction D1 than the example shown in FIG. 6 , and a larger second width in the first direction D1 of the third electrode portion 23 at the outer edge 23p of the third electrode portion 23. FIG. 7 illustrates an example of the electrode layer 26 in which the outer edge 23p is exposed on the side surface 1c. In the external electrode 30, another electrode layer may also be further formed on the second electrode portion 32, at the outer edge 32p of the second electrode portion 32.

[0062] As shown in FIG. 8, the second electrode portion 22 has, for example, a first portion 22a and a second portion 22b. The first portion 22a is continuous with the first electrode portion 21 in the first direction D1. The first portion 22a is continuous with the first electrode portion 21 and, for example, is formed integrally with the first electrode portion 21. The first portion 22a overlaps at least a portion of the first electrode portion 21 when viewed in the first direction D1. The first portion 22a is exposed from the main surface 1a, for example. The second portion 22b is located within the element body 1. The second portion 22b is located, for example, closer to the outer edge 22p than the first portion 22a. The second portion 22b includes the outer edge 22p. The third electrode portion 23 and the second portion 22b are spaced apart from each other in the first direction D1. As shown in FIG. 8, the outer edge 22p may not be exposed to the side surface 1c and may be spaced apart from the side surface 1c. Second portion 22b is located, for example, within element body 1. For example, plating film 27 may be formed on the outer edges of second electrode portion 22 and third electrode portion 23 that are exposed to element body 1. Plating film 27 contains, for example, the same material as electrode layer 26.

[0063] The second electrode portion 32 has, for example, a first portion and a second portion. The first portion is continuous with the first electrode portion 31 in the first direction D1. The first portion of the second electrode portion 32 is, for example, exposed from the main surface 1a. The second portion of the second electrode portion 32 is, for example, located closer to the outer edge 32p than the first portion. The second portion of the second electrode portion 32 is, for example, located within the element body 1.

[0064] An example of a manufacturing method for the laminated inductor MD1 will be described. The order of the steps in the manufacturing method may be reversed. In this example of the manufacturing method, first, a slurry is prepared. The slurry contains, for example, a material obtained by mixing an insulating resin and a solvent. The insulating resin contains, for example, an acrylic resin or a butyral resin. The solvent contains, for example, ethyl carbitol or butyl carbitol.

[0065] Next, the slurry is applied to a substrate by, for example, a doctor blade method to form a green sheet. The substrate includes, for example, PET (polyethylene terephthalate). The green sheet is used to form the insulator layers 3a-3k. Next, for example, the green sheet is irradiated with laser light to form through holes for the through-hole conductors 15a-15h, the first through-hole conductor layers 13i and 13j, and the second through-hole conductor layers 14c-14j.

[0066] Next, the through holes formed in the green sheet are filled with a conductive paste. The conductive paste to be filled in the through holes is prepared by mixing, for example, a metal powder containing Ag particles or Ag-Pd alloy particles with a glass component, an alkali metal, an organic binder, and an organic solvent. After filling the through holes with the conductive paste, conductors for the coil conductor layers 10b-10h are arranged on the green sheet. The conductors for the coil conductor layers 10b-10h are arranged on the green sheet so as to be connected to the conductive paste filled in the through holes.

[0067] Next, a conductive paste for forming the first electrode portions 21, 31, the third electrode portions 23, 33, and the fifth electrode portions 25, 35 is applied to one surface of the green sheet into which the electrode layers 16a, 17a are pressed. The green sheet into which the electrode layers 16a, 17a are pressed contains, for example, the same material as the other green sheets. Next, a conductive paste for forming the second electrode portions 22, 32 and the fourth electrode portions 24, 34 is applied to the other surface of the green sheet into which the electrode layers 16a, 17a are pressed. The conductive paste for forming the external electrodes 20, 30 is prepared, for example, by mixing a metal powder containing Ag particles or Ag-Pd alloy particles with a glass component, an alkali metal, an organic binder, and an organic solvent.

[0068] Next, the green sheets are stacked. For example, the green sheets are stacked after being peeled off from the substrate. The stacked green sheets are pressed in the first direction D1 in which they are stacked. After pressing the stacked green sheets, a laminate is formed in which the conductors for the coil conductor layers 10b to 10h overlap one another when viewed from the first direction D1.

[0069] When the green sheets are pressed, the conductive paste for the electrode layers 16a and 16b is pressed into the green sheet that forms the insulator layer 3k. The green sheet that forms the insulator layer 3k has through holes for the openings 18a and 18b. The conductive paste for the electrode layers 16a and 16b is pressed into only the green sheet that forms the insulator layer 3k, excluding the through holes for the openings 18a and 18b. As a result, the areas of the green sheet that forms the insulator layer 3k that are pressed into the areas surrounding the through holes form the third electrode portions 23 and 33 and the fifth electrode portions 25 and 35. The areas that are not pressed into the areas surrounding the through holes form the first electrode portions 21 and 31.

[0070] 4 and 5, for example, in forming the external electrode 20, the first side surface portion 23e, the second side surface portion 23f, and the third side surface portion 23c of the third electrode portion 23 and the fifth electrode portion 25 are formed by pressing the conductive paste for the electrode layer 16a into the green sheet. The region of the green sheet forming the insulator layer 3k that is not pressed into the surrounding portion of the through hole forms the first electrode portion 21. The conductive paste for the first electrode portion 21 is bonded to the conductive paste for the second electrode portion 22, for example, via the through hole for the opening 18a. By bonding the conductive paste, the second electrode portion 22 is continuous with the first electrode portion 21.

[0071] Next, the laminate is subjected to a heat treatment to form a laminated inductor array. The laminated inductor array is cut to a predetermined size by, for example, a cutting machine to produce the laminated inductor MD1. In this embodiment, the electrode layer 26 and other electrode layers may be formed on the cut laminated inductor MD1 by, for example, a plating method. The electrode layer 26 and other electrode layers are formed by, for example, an electrolytic plating method or an electroless plating method.

[0072] As described above, the laminated inductor MD1 comprises an element body 1 having a main surface 1a constituting a mounting surface, and side surfaces 1c, 1d, 1e, and 1f adjacent to the main surface 1a and located on imaginary planes VP11, VP12, VP13, and VP14 that are perpendicular to the main surface 1a, a coil 10 arranged within the element body 1, and external electrodes 20 and 30 arranged in the element body 1 and electrically connected to the coil 10. The external electrode 20 includes first electrode portions 21, 31 exposed from the principal surface 1 a, second electrode portions 22, 32 continuous with the first electrode portions 21, 31 and exposed from the principal surface 1 a, and positioned so as to extend from the first electrode portions 21, 31 toward an imaginary plane when viewed in a direction perpendicular to the principal surface 1 a, and third electrode portions 23, 33 continuous with the first electrode portions 21, 31 and spaced apart from the second electrode portions 22, 32 in the direction perpendicular to the principal surface 1 a, and having outer edges that coincide with the imaginary plane when viewed in the direction perpendicular to the principal surface 1 a. The second electrode portions 22, 32 and the third electrode portions 23, 33 sandwich a part of the element body 1.

[0073] In the multilayer inductor MD1, the external electrodes 20, 30 include second electrode portions 22, 32 and third electrode portions 23, 33 that are continuous with the first electrode portions 21, 31. The second electrode portion 22 and the third electrode portion 23 have outer edges that coincide with the imaginary planes VP11, VP12, and VP13. Side surfaces 1c, 1e, and 1f of the element body 1 that are adjacent to the main surface 1a are located on the imaginary planes VP11, VP12, and VP13. Of the sandwiching electrode portions, the third electrode portion 23 that is located within the element body 1 has outer edges that coincide with the imaginary planes VP11, VP12, and VP13. The second electrode portion 32 and the third electrode portion 33 have outer edges that coincide with the imaginary planes VP11, VP12, and VP14. Side surfaces 1d, 1e, and 1f of the element body 1 that are adjacent to the main surface 1a are located on the imaginary planes VP11, VP12, and VP14. Of the sandwiched electrode portions, the third electrode portion 33 located inside the element body 1 has an outer edge that coincides with the imaginary planes VP11, VP12, and VP14. Therefore, the above-described one embodiment further suppresses peeling of the external electrodes 20 and 30 from the element body 1.

[0074] In the multilayer inductor MD1, the external electrode 20 further includes an electrode layer 26 that is formed on the third electrode portion 23 and exposed from the side surface 1c. A first width of the electrode layer 26 in a direction orthogonal to the principal surface 1a is larger than a second width of the outer edge of the third electrode portion 23 in a direction orthogonal to the principal surface 1a of the third electrode portion 23. In this case, the electrode layer 26 exposed from the side surface 1c can produce an anchor effect. Therefore, this configuration can reliably achieve even greater suppression of peeling of the external electrode 20 from the element body 1.

[0075] In the laminated inductor MD1, the second electrode portion 22 has an outer edge that coincides with an imaginary plane when viewed from a direction perpendicular to the main surface 1a, and the electrode layer 26 is further formed on the second electrode portion 22 at the outer edge of the second electrode portion 32. In this case, the anchor effect is further improved, and therefore, this configuration can more reliably prevent the external electrodes 20 from peeling off from the element body 1.

[0076] In the laminated inductor MD1, the second electrode portion 22 has a first portion 22a that is continuous with the first electrode portion 21 and exposed from the main surface 1a, and a second portion 22b that is located closer to the imaginary plane than the first portion 22a, and the second portion 22b is located within the element body 1. In this case, the contact area between the second electrode portion 22 and the element body 1 can be increased. Therefore, this configuration can more reliably prevent the external electrode 20 from peeling off from the element body 1.

[0077] In the multilayer inductor MD1, the side surfaces 1c, 1e, and 1f include a first side surface 1e located on an imaginary plane VP11 orthogonal to the principal surface 1a, a second side surface 1f facing the first side surface 1e and located on an imaginary plane VP12 orthogonal to the principal surface 1a and facing the imaginary plane VP11, and a third side surface 1c adjacent to the first side surface 1e and the second side surface 1f and located on an imaginary plane VP13 orthogonal to the principal surface 1a, the imaginary plane VP11, and the imaginary plane VP12. The second electrode portion 22 includes a first side surface portion 22e having an outer edge coinciding with the imaginary plane VP11 when viewed from a direction orthogonal to the principal surface 1a, a second side surface portion 22f having an outer edge coinciding with the imaginary plane VP12 when viewed from a direction orthogonal to the principal surface 1a, and a third side surface portion 22c having an outer edge coinciding with the imaginary plane VP13 when viewed from a direction orthogonal to the principal surface 1a. The third electrode portion 23 includes a first side surface portion 23e having an outer edge coinciding with imaginary plane VP11 when viewed from a direction perpendicular to the principal surface 1a, a second side surface portion 23f having an outer edge coinciding with imaginary plane VP12 when viewed from a direction perpendicular to the principal surface 1a, and a third side surface portion 23c having an outer edge coinciding with imaginary plane VP13 when viewed from a direction perpendicular to the principal surface 1a. The external electrode 20 further includes a fourth electrode portion 24 that is continuous with the first side surface portion 23e and the second side surface portion 23f of the first electrode portion 21 and the second electrode portion 22, is exposed from the principal surface 1a, and is spaced apart from the third side surface 1c when viewed from a direction perpendicular to the principal surface 1a, and a fifth electrode portion 25 that is continuous with the first electrode portion 21 and is spaced apart from the fourth electrode portion 24 in the direction perpendicular to the principal surface. The fourth electrode portion 24 and the fifth electrode portion 25 sandwich a portion of the element body. In this case, the second electrode portion 22 and the third electrode portion 23 have outer edges that coincide with the three imaginary planes VP11, VP12, and VP13 that are perpendicular to one another. The second electrode portion 32 has outer edges that coincide with the three imaginary planes VP11, VP12, and VP13 that are perpendicular to one another. Side surfaces 1c, 1e, and 1f adjacent to the main surface 1a are located on the three imaginary planes VP11, VP12, and VP13, and the second electrode portion 22 and the third electrode portion 23 have outer edges that coincide with the imaginary planes VP11, VP12, and VP13. The third electrode portion 33 has outer edges that coincide with the three imaginary planes VP11, VP12, and VP14 that are perpendicular to one another. The main surface 1a and adjacent side surfaces 1d, 1e, and 1f are located on the three imaginary planes VP11, VP12, and VP14, and the second electrode portion 32 and the third electrode portion 33 have outer edges that coincide with the imaginary planes VP11, VP12, and VP14. The fourth electrode portions 24, 34 and the fifth electrode portions 25, 35 sandwich a portion of the element body 1. Therefore, with this configuration, peeling of the external electrodes 20, 30 from the element body 1 is more reliably suppressed.

[0078] A modified example of the multilayer inductor MD1 according to the embodiment will be described with reference to Figs. 9 to 11. Fig. 9 is a side view showing the multilayer inductor MD1 according to the modified example of the present embodiment. Fig. 10 is an exploded perspective view showing the external electrodes 20, 30. Fig. 11(a) is a plan view showing the first electrode portion, third electrode portion, and fifth electrode portion of the external electrodes. Fig. 11(b) is a plan view showing the second electrode portion and fourth electrode portion of the external electrodes. The multilayer inductor MD1 according to this modified example has the same configuration as the multilayer inductor MD1 according to the embodiment, except for the configuration of the external electrodes 20, 30.

[0079] The external electrodes 20 and 30 are arranged on the element body 1. The external electrode 20 is arranged, for example, closer to the side surface 1c, and the external electrode 30 is arranged, for example, closer to the side surface 1d. The external electrodes 20 and 30 are spaced apart from each other, for example, in the second direction D2.

[0080] The external electrode 20 has a first electrode portion 21 and a second electrode portion 22. The second electrode portion 22 is continuous with the first electrode portion 21 in the first direction D1. The first electrode portion 21 is closer to the principal surface 1b than the second electrode portion 22. The first electrode portion 21 is exposed from the principal surface 1a. The second electrode portion 22 is exposed from the principal surface 1a. The second electrode portion 22 has an outer edge 22p. When viewed from the first direction D1, the outer edge 22p coincides with the imaginary plane VP13.

[0081] The second electrode portion 22 includes a first side surface portion 22e, a second side surface portion 22f, and a third side surface portion 22c. When viewed from the first direction D1, the first side surface portion 22e has an outer edge 22q that coincides with the imaginary plane VP11. When viewed from the first direction D1, the second side surface portion 22f has an outer edge 22r that coincides with the imaginary plane VP12. When viewed from the first direction D1, the third side surface portion 22c has an outer edge 22p that coincides with the imaginary plane VP13.

[0082] The external electrode 20 has a third electrode portion 23. The third electrode portion 23 is continuous with the first electrode portion 21 and is spaced apart from the second electrode portion 22 in the first direction D1. The third electrode portion 23 has two outer edges 23p. The outer edges 23p coincide with the imaginary plane VP13 when viewed from the first direction D1. In this modified example, the first electrode portion 21 extends, for example, to the side surface 1c. The first electrode portion 21 has an outer edge 21p that coincides with the imaginary plane VP13 when viewed from the first direction D1. The outer edge 21p is sandwiched between the two outer edges 23p when viewed from the first direction D1.

[0083] The third electrode portion 23 includes a first side surface portion 23e and a second side surface portion 23f. The first side surface portion 23e has an outer edge 23q that coincides with the imaginary plane VP11 when viewed from the first direction D1. The second side surface portion 23f has an outer edge 23r that coincides with the imaginary plane VP12 when viewed from the first direction D1.

[0084] The external electrode 20 has a fourth electrode portion 24 and a fifth electrode portion 25. The fourth electrode portion 24 is continuous with the first side surface portion 22e and the second side surface portion 22f of the second electrode portion 22. The fourth electrode portion 24 is exposed from the main surface 1a. The fourth electrode portion 24 is spaced apart from the side surface 1c when viewed in the first direction D1. The fifth electrode portion 25 is continuous with the first electrode portion 21. The fifth electrode portion 25 is spaced apart from the fourth electrode portion 24 in the first direction D1. The fourth electrode portion 24 and the fifth electrode portion 25 sandwich a portion of the element body 1 therebetween.

[0085] 10 and 11 , in the external electrode 20, the first side surface portion 23e and the second side surface portion 23f of the third electrode portion 23 and the fifth electrode portion 25 are formed by pressing the conductive paste for the electrode layer 16a into the conductive paste for the electrode layer 16a. The region that is not pressed into the conductive paste for the electrode layer 16a forms the first electrode portion 21. The conductive paste for the first electrode portion 21 is joined to the conductive paste for the second electrode portion 22, for example, via the through hole for the opening 18a.

[0086] The external electrode 30 has a first electrode portion 31 and a second electrode portion 32. The second electrode portion 32 is continuous with the first electrode portion 31 in the first direction D1. The first electrode portion 31 is closer to the principal surface 1b than the second electrode portion 32. The first electrode portion 31 is exposed from the principal surface 1a. The second electrode portion 32 is exposed from the principal surface 1a. The second electrode portion 32 has an outer edge 32p. When viewed from the first direction D1, the outer edge 32p coincides with the imaginary plane VP14.

[0087] The second electrode portion 32 includes a first side surface portion 32e, a second side surface portion 32f, and a third side surface portion 32c. When viewed from the first direction D1, the first side surface portion 32e has an outer edge 32q that coincides with the imaginary plane VP11. When viewed from the first direction D1, the second side surface portion 32f has an outer edge 32r that coincides with the imaginary plane VP12. When viewed from the first direction D1, the third side surface portion 32c has an outer edge 32p that coincides with the imaginary plane VP14.

[0088] The external electrode 30 has a third electrode portion 33. The third electrode portion 33 is continuous with the first electrode portion 31 and is spaced apart from the second electrode portion 32 in the first direction D1. The third electrode portion 33 has two outer edges 33p. The outer edges 33p coincide with the imaginary plane VP14 when viewed from the first direction D1. In this modified example, the first electrode portion 31 extends, for example, to the side surface 1d. The first electrode portion 31 has an outer edge 31p that coincides with the imaginary plane VP14 when viewed from the first direction D1. The outer edge 31p is sandwiched between the two outer edges 33p when viewed from the first direction D1.

[0089] The third electrode portion 33 includes a first side surface portion 33e and a second side surface portion 33f. The first side surface portion 33e has an outer edge 33q that coincides with the imaginary plane VP11 when viewed from the first direction D1. The second side surface portion 33f has an outer edge 33r that coincides with the imaginary plane VP12 when viewed from the first direction D1.

[0090] The external electrode 30 has a fourth electrode portion 34 and a fifth electrode portion 35. The fourth electrode portion 34 is continuous with the first side surface portion 32e and the second side surface portion 32f of the second electrode portion 32. The fourth electrode portion 34 is exposed from the main surface 1a. The fourth electrode portion 34 is spaced apart from the side surface 1d when viewed in the first direction D1. The fifth electrode portion 35 is continuous with the first electrode portion 31. The fifth electrode portion 35 is spaced apart from the fourth electrode portion 34 in the first direction D1. The fourth electrode portion 34 and the fifth electrode portion 35 sandwich a portion of the element body 1 therebetween.

[0091] 10 and 11 , in the external electrode 30, a first side surface portion 33e and a second side surface portion 33f of the third electrode portion 33 and a fifth electrode portion 35 are formed by pressing the conductive paste for the electrode layer 17a into the conductive paste for the electrode layer 17a. The region that is not pressed into the conductive paste for the electrode layer 17a forms the first electrode portion 31. The conductive paste for the first electrode portion 31 is joined to the conductive paste for the second electrode portion 32, for example, via a through hole for the opening 18b.

[0092] The multilayer inductor MD1 according to this modification has, for example, an electrode layer 26 arranged on the outer surface of the element body 1. The electrode layer 26 is formed on the third electrode portion 23. The electrode layer 26 is arranged, for example, on the side surface 1e where the outer edge 23q is exposed. The electrode layer 26 may also be arranged on the side surface 1f where the outer edge 23r is exposed. For example, when the outer edges 23q and 23r are exposed on the side surfaces 1e and 1f, respectively, the electrode layer 26 is arranged on the side surfaces 1e and 1f. The multilayer inductor MD1 according to this modification may have another electrode layer arranged on the outer surface of the element body 1. The other electrode layer is formed on the third electrode portion 33.

[0093] As described above, in the multilayer inductor MD1, the side surfaces 1c, 1e, and 1f include the first side surface 1e located on an imaginary plane VP11 orthogonal to the principal surface 1a, the second side surface 1f facing the first side surface 1e and located on an imaginary plane VP12 orthogonal to the principal surface 1a and facing the imaginary plane VP11, and the third side surface 1c adjacent to the first side surface 1e and the second side surface 1f and located on an imaginary plane VP13 orthogonal to the principal surface 1a, the imaginary plane VP11, and the imaginary plane VP12. The second electrode portion 22 includes a first side surface portion 22e having an outer edge coinciding with the imaginary plane VP11 when viewed from a direction orthogonal to the principal surface 1a, a second side surface portion 22f having an outer edge coinciding with the imaginary plane VP12 when viewed from a direction orthogonal to the principal surface 1a, and a third side surface portion 22c having an outer edge 22p coinciding with the imaginary plane VP13 when viewed from a direction orthogonal to the principal surface 1a. The third electrode portion 23 includes a first side surface portion 23e having an outer edge coinciding with the imaginary plane VP11 when viewed from a direction perpendicular to the principal surface 1a, and a second side surface portion 23f having an outer edge coinciding with the imaginary plane VP12 when viewed from a direction perpendicular to the principal surface 1a. The external electrode 20 further includes a fourth electrode portion 24 that is continuous with the first side surface portion 23e and the second side surface portion 23f of the first electrode portion 21 and the second electrode portion 22, is exposed from the principal surface 1a, and is spaced apart from the third side surface 1c when viewed from a direction perpendicular to the principal surface 1a, and a fifth electrode portion 25 that is continuous with the first electrode portion 21 and is spaced apart from the fourth electrode portion 24 in the direction perpendicular to the principal surface 1a. The fourth electrode portion 24 and the fifth electrode portion 25 sandwich a portion of the element body 1. In this case, the second electrode portions 22, 32 and the third electrode portions 23, 33 have outer edges that coincide with two imaginary planes VP11, VP12 that are perpendicular to each other. The side surfaces 1e, 1f adjacent to the main surface 1a are located on the three imaginary planes VP11, VP12, and the second electrode portions 22, 32 and the third electrode portions 23, 33 have outer edges that coincide with the imaginary planes VP11, VP12. The fourth electrode portions 24, 34 and the fifth electrode portions 25, 35 sandwich a portion of the element body 1. Therefore, with this configuration, peeling of the external electrodes 20, 30 from the element body 1 is more reliably suppressed.

[0094] The above describes embodiments and modifications of the present invention, but the present invention is not necessarily limited to the above-described embodiments and modifications, and various modifications are possible without departing from the spirit of the present invention.

[0095] In the multilayer inductor MD1, the first width of the electrode layer 26 in the direction orthogonal to the principal surface 1a does not have to be larger than the second width of the outer edge of the third electrode portion 23 in the direction orthogonal to the principal surface 1a of the third electrode portion 23. In a configuration in which the first width is larger than the second width, as described above, the electrode layer 26 exposed from the side surface 1c functions as an anchor. Therefore, this configuration reliably achieves even greater suppression of peeling of the external electrode 20 from the element body 1. In the multilayer inductor MD1, the electrode layer 26 does not have to be further formed on the second electrode portion 22 at the outer edge of the second electrode portion 22. In a configuration in which the electrode layer 26 is further formed on the second electrode portion 22 at the outer edge of the second electrode portion 22, the anchor effect is further improved, as described above. Therefore, this configuration more reliably achieves suppression of peeling of the external electrode 20 from the element body 1. [Explanation of symbols]

[0096] 1...element body, 1a...main surface, 1c...side surface, 1d...side surface, 1e...side surface, 1f...side surface, 10...coil, 20...external electrode, 21...first electrode portion, 22...second electrode portion, 22a...first portion, 22b...second portion, 22e...first side surface portion, 22f...second side surface portion, 22c...third side surface portion, 23...third electrode portion, 23e...first side surface portion, 23f...second side surface portion, 23c...third side surface portion, 24...fourth electrode portion, 25...fifth electrode portion, MD1...laminated inductor, VP11...imaginary plane, VP12...imaginary plane, VP13...imaginary plane, VP14...imaginary plane.

Claims

1. an element body having a main surface that constitutes a mounting surface and a side surface that is adjacent to the main surface and located on an imaginary plane that is perpendicular to the main surface; a coil disposed within the element body; an external electrode disposed on the element body and electrically connected to the coil; Equipped with The external electrode is a first electrode portion exposed from the main surface; a second electrode portion made of the same conductive material as the first electrode portion, continuous with the first electrode portion, exposed from the main surface, and positioned so as to extend from the first electrode portion toward the imaginary plane when viewed in a direction perpendicular to the main surface; a third electrode portion made of the same conductive material as the first electrode portion, continuous with the first electrode portion and spaced apart from the second electrode portion in the direction perpendicular to the main surface, and having an outer edge that coincides with the imaginary plane when viewed from the direction perpendicular to the main surface; The laminated inductor, wherein the second electrode portion and the third electrode portion sandwich a part of the element body in the direction perpendicular to the main surface.

2. the external electrode further includes an electrode layer formed on the third electrode portion and exposed from the side surface, 2. The laminated inductor according to claim 1, wherein a first width in the direction perpendicular to the main surface of the electrode layer is greater than a second width in the direction perpendicular to the main surface of the third electrode portion at the outer edge of the third electrode portion.

3. the second electrode portion has an outer edge that coincides with the imaginary plane when viewed from the direction orthogonal to the main surface, The multilayer inductor according to claim 2 , wherein the electrode layer is further formed on the second electrode portion at the outer edge of the second electrode portion.

4. The second electrode portion is a first portion that is continuous with the first electrode portion and is exposed from the main surface; a second portion located closer to the imaginary plane than the first portion, The laminated inductor according to claim 1 , wherein the second portion is located within the element body.

5. The aspect is a first side surface located on a first imaginary plane perpendicular to the main surface; a second side surface facing the first side surface, perpendicular to the main surface, and positioned on a second imaginary plane facing the first imaginary plane; a third side surface adjacent to the first side surface and the second side surface and located on a third imaginary plane perpendicular to the main surface, the first imaginary plane, and the second imaginary plane; The second electrode portion is a first side surface portion having an outer edge that coincides with the first imaginary plane when viewed from the direction perpendicular to the main surface; a second side surface portion having an outer edge that coincides with the second imaginary plane when viewed from the direction perpendicular to the main surface; a third side surface portion having an outer edge that coincides with the third imaginary plane when viewed from the direction perpendicular to the main surface, The third electrode portion is a first side surface portion having an outer edge that coincides with the first imaginary plane when viewed from the direction perpendicular to the main surface; a second side surface portion having an outer edge that coincides with the second imaginary plane when viewed from the direction perpendicular to the main surface; a third side surface portion having an outer edge that coincides with the third imaginary plane when viewed from the direction perpendicular to the main surface, the first side surface side portions of the second electrode portion and the third electrode portion sandwich a portion of the part of the element body that is aligned along the first imaginary plane in the direction perpendicular to the main surface, the second side surface side portions of the second electrode portion and the third electrode portion sandwich a portion of the part of the element body that is aligned along the second imaginary plane in the direction perpendicular to the main surface, the third side surface side portions of the second electrode portion and the third electrode portion sandwich a portion of the part of the element body that is aligned along the third imaginary plane in the direction perpendicular to the main surface, The external electrode is a fourth electrode portion made of the same conductive material as the first electrode portion, continuous with the first electrode portion and the first side surface side portion and the second side surface side portion of the second electrode portion, exposed from the main surface, and spaced apart from the third side surface when viewed in the direction perpendicular to the main surface; a fifth electrode portion made of the same conductive material as the first electrode portion, continuous with the first electrode portion, and spaced apart from the fourth electrode portion in the direction perpendicular to the main surface, 4. The laminated inductor according to claim 1, wherein the fourth electrode portion and the fifth electrode portion sandwich a part of the element body in the direction perpendicular to the main surface.

6. The aspect is a first side surface located on a first imaginary plane perpendicular to the main surface; a second side surface facing the first side surface, perpendicular to the main surface, and positioned on a second imaginary plane facing the first imaginary plane; a third side surface adjacent to the first side surface and the second side surface and located on a third imaginary plane perpendicular to the main surface, the first imaginary plane, and the second imaginary plane; The second electrode portion is a first side surface portion having an outer edge that coincides with the first imaginary plane when viewed from the direction perpendicular to the main surface; a second side surface portion having an outer edge that coincides with the second imaginary plane when viewed from the direction perpendicular to the main surface; a third side surface portion having an outer edge that coincides with the third imaginary plane when viewed from the direction perpendicular to the main surface, The third electrode portion is a first side surface portion having an outer edge that coincides with the first imaginary plane when viewed from the direction perpendicular to the main surface; a second side surface portion having an outer edge that coincides with the second imaginary plane when viewed from the direction perpendicular to the main surface, the first side surface side portions of the second electrode portion and the third electrode portion sandwich a portion of the part of the element body that is aligned along the first imaginary plane in the direction perpendicular to the main surface, the second side surface side portions of the second electrode portion and the third electrode portion sandwich a portion of the part of the element body that is aligned along the second imaginary plane in the direction perpendicular to the main surface, The external electrode is a fourth electrode portion made of the same conductive material as the first electrode portion, continuous with the first electrode portion and the first side surface side portion and the second side surface side portion of the second electrode portion, exposed from the main surface, and spaced apart from the third side surface when viewed in the direction perpendicular to the main surface; a fifth electrode portion made of the same conductive material as the first electrode portion, continuous with the first electrode portion, and spaced apart from the fourth electrode portion in the direction perpendicular to the main surface, 4. The laminated inductor according to claim 1, wherein the fourth electrode portion and the fifth electrode portion sandwich a part of the element body in the direction perpendicular to the main surface.

Citation Information

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