Multilayer coil components

By embedding external terminals with specific configurations in laminated coil components, the design effectively reduces cracking and chipping in the element body, maintaining mounting strength and facilitating easier polishing.

JP7760239B2Active Publication Date: 2025-10-27TDK CORP
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Patent Information

Application Number
JP2020206828
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-12-14
Publication Date
2025-10-27
Estimated Expiration
2040-12-14

AI Technical Summary

Technical Problem

Cracks or chips may occur in the element body near the external electrodes of laminated coil components.

Method used

The external terminals are embedded in the element body to be spaced apart from the side surfaces and exposed from the main surface, with specific configurations such as chamfered or rounded shapes and increased radii of curvature to reduce the susceptibility to cracking or chipping.

Benefits of technology

This design suppresses the occurrence of cracks or chips in the element body, maintains mounting strength, and facilitates easier polishing, thereby enhancing the durability and handling of the laminated coil component.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a laminated coil component which can prevent breakage or cracking of an element body.SOLUTION: A laminate coil component 1 comprises: an element body 2 which is made up of a plurality of laminated insulator layers; a coil which is disposed inside the element body 2; and an external terminal 3 which is made up of a plurality of laminated conductor layers and is electrically connected to the coil. The element body 2 has: a principal surface 2a; and lateral surfaces 2c, 2e which are adjacent to the principal surface 2a. The external terminal 3 is spaced away from the lateral faces 2c, 2e and is embedded in the element body 2 in a manner exposed from the principal surface 2a. The external terminal 3 has connection surfaces 3c, 3e which are spaced farther away from the lateral faces 2c, 2e as they are spaced farther away from the principal surface 2a.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates to a laminated coil component. [Background technology]

[0002] Patent Document 1 describes a laminated coil component including an element body, a coil, and external electrodes arranged on the bottom surface of the element body at a distance from the end surfaces. In this laminated coil component, the external electrodes are embedded in the element body so as to be exposed from the bottom surface of the element body. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2018-113299 Summary of the Invention [Problem to be solved by the invention]

[0004] In the electronic component described above, cracks or chips may occur in the element body near the external electrodes.

[0005] One embodiment of the present disclosure provides a laminated coil component capable of suppressing the occurrence of cracks or chips in an element body. [Means for solving the problem]

[0006] A laminated coil component according to one embodiment of the present disclosure comprises an element body formed by stacking a plurality of insulator layers, a coil disposed within the element body, and an external terminal formed by stacking a plurality of conductor layers and electrically connected to the coil, wherein the element body has a main surface and a first side surface adjacent to the main surface, and the external terminal is embedded in the element body so as to be spaced apart from the first side surface and exposed from the main surface, and has a first spaced apart surface that is spaced apart from the first side surface the more it is spaced apart from the main surface.

[0007] In this laminated coil component, the external terminals are embedded in the element body so as to be spaced apart from the first side surface and exposed from the main surface. Therefore, the element body has a portion sandwiched between the first side surface and the external terminals. Because this portion is thinner than other portions, it is prone to cracking or chipping. Therefore, the external terminals have a first separation surface that is spaced apart from the first side surface the further away from the main surface they are. This increases the thickness of the thin portion sandwiched between the first side surface and the external terminals, making it possible to suppress cracking or chipping. Furthermore, since the area of ​​the exposed surface of the external terminals used for mounting can be maintained, a decrease in mounting strength can be suppressed.

[0008] The ridge between the main surface and the first side surface may be chamfered. In this case, the thin portion sandwiched between the first side surface and the external terminal becomes even thinner, making it more susceptible to cracking or chipping. Therefore, a configuration in which the external terminal has a first separation surface is more effective.

[0009] The ridge portion may have a rounded chamfered shape, and the thickness of the external terminal may be thicker than the radius of curvature of the ridge portion. In this case, the thin portion sandwiched between the first side surface and the external terminal becomes longer, making it more susceptible to cracking or chipping. Therefore, a configuration in which the external terminal has a first separation surface is more effective.

[0010] The ridge portion may have a rounded chamfered shape, and the first separating surface may be curved with a radius of curvature larger than that of the ridge portion, which makes it easier to increase the thickness of the thin portion sandwiched between the first side surface and the external terminal.

[0011] The external terminals may be disposed outside the ridge portion. In this case, the ridge portion can be formed only from the element body. The ease of polishing varies depending on the material. Therefore, a ridge portion formed only from the element body is more likely to be chamfered by polishing than a ridge portion formed from multiple materials.

[0012] The element body may further have a pair of second side surfaces each adjacent to the main surface, the first side surface also adjacent to each of the pair of second side surfaces, and the pair of second side surfaces may face each other, and the external terminal may further have a pair of second separated surfaces that are spaced apart from the pair of second side surfaces as far as the external terminal is spaced apart from the main surface. In this case, the element body has three thin portions sandwiched between the first side surface and each of the pair of second side surfaces. It is possible to prevent cracks or chips from occurring in all of these thin portions.

[0013] A laminated coil component according to another embodiment includes an element body formed by stacking a plurality of insulating layers, a coil disposed within the element body, and an external terminal formed by stacking a plurality of conductor layers and electrically connected to the coil, wherein the element body has a rectangular main surface and a pair of side surfaces that are adjacent to each other and adjacent to the main surface, and the external terminal is embedded in the element body so as to be spaced apart from the pair of side surfaces and exposed from the main surface, and has a second corner portion that is arranged adjacent to the first corner portion between the pair of side surfaces when viewed from a direction perpendicular to the main surface, and the radius of curvature of the second corner portion is larger than the radius of curvature of the first corner portion.

[0014] In this laminated coil component, the external terminals are embedded in the element body so as to be spaced apart from the pair of side surfaces and exposed from the main surfaces. Therefore, the element body has a portion sandwiched between the pair of side surfaces and the external terminals. Because this portion has a smaller volume than other portions, it is prone to cracking or chipping. Therefore, when viewed from a direction perpendicular to the main surfaces, the radius of curvature of a first corner between the pair of side surfaces of the element body is made larger than the radius of curvature of a second corner of the external terminal adjacent to the first corner. This increases the volume of the portion sandwiched between the pair of side surfaces and the external terminals, making it possible to suppress cracking or chipping. [Effects of the Invention]

[0015] According to one aspect of the present invention, there is provided a laminated coil component that can suppress the occurrence of cracks or chips in the element body. [Brief explanation of the drawings]

[0016] [Figure 1] FIG. 1 is a perspective view of a laminated coil component according to an embodiment. [Figure 2] FIG. 2 is a cross-sectional view of the laminated coil component of FIG. [Figure 3] FIG. 3 is a cross-sectional view of the laminated coil component of FIG. [Figure 4] FIG. 4 is a bottom view of the laminated coil component of FIG. [Figure 5] FIG. 5 is an exploded perspective view of the laminated coil component of FIG. [Figure 6] FIG. 6 is a partially enlarged cross-sectional view of a laminated coil component according to a first modified example. [Figure 7] FIG. 7 is a partially enlarged cross-sectional view of a laminated coil component according to a second modified example. 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] As shown in Figs. 1 to 5, the laminated coil component 1 includes a rectangular parallelepiped element body 2, a pair of external terminals 3, a coil 10, and connecting conductors 26 and 27. 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 laminated coil component 1 is, for example, a laminated high-frequency inductor. Note that the coil 10 and connecting conductors 26 and 27 are not shown in Figs. 1 to 4.

[0019] The element body 2 has main surfaces 2a and 2b facing each other, a pair of side surfaces 2c facing each other, and a pair of side surfaces 2e facing each other. Hereinafter, the direction in which the pair of side surfaces 2e face each other will be referred to as a first direction D1, the direction in which the pair of side surfaces 2c face each other will be referred to as a second direction D2, and the direction in which the main surfaces 2a and 2b face each other will be referred to as a third direction D3. The first direction D1, the second direction D2, and the third direction D3 intersect with each other (here, they are perpendicular to each other). In this embodiment, the first direction D1 is the width direction of the element body 2. The second direction D2 is the length direction of the element body 2. The third direction D3 is the height direction of the element body 2.

[0020] The principal surfaces 2a and 2b, the pair of side surfaces 2c, and the pair of side surfaces 2e all have a rectangular shape. The long side direction of the principal surfaces 2a and 2b coincides with the second direction D2. The short side direction of the principal surfaces 2a and 2b coincides with the first direction D1. The principal surface 2a is adjacent to each of the side surfaces 2c and 2e. The principal surface 2b is adjacent to each of the side surfaces 2c and 2e. Each of the side surfaces 2c is adjacent to each of the side surfaces 2e.

[0021] The ridge 2g between the main surface 2a and the side surface 2c has a chamfered shape. The ridge 2h between the main surface 2a and the side surface 2e has a chamfered shape. The ridge 2i between the side surface 2c and the side surface 2e has a chamfered shape. The ridge 2j between the main surface 2b and the side surface 2c has a chamfered shape. The ridge 2k between the main surface 2b and the side surface 2e has a chamfered shape. Each of the ridges 2g, 2h, 2i, 2j, and 2k has a rounded chamfered shape, for example, by barrel polishing.

[0022] The principal surfaces 2a, 2b extend in the second direction D2 to connect the pair of side surfaces 2c. The principal surfaces 2a, 2b also extend in the first direction D1 to connect the pair of side surfaces 2e. The pair of side surfaces 2c extend in the third direction D3 to connect the principal surfaces 2a, 2b. The pair of side surfaces 2c also extend in the first direction D1 to connect the pair of side surfaces 2e. The pair of side surfaces 2e extend in the third direction D3 to connect the principal surfaces 2a, 2b. The pair of side surfaces 2e also extend in the second direction D2 to connect the pair of side surfaces 2c. The laminated coil component 1 is mounted to an electronic device (e.g., a circuit board or an electronic component) by, for example, soldering. In the laminated coil component 1, the principal surface 2a constitutes a mounting surface that faces the electronic device.

[0023] As shown in Figure 5, the element body 2 is configured by stacking multiple insulator layers 6 in a first direction D1. The element body 2 has multiple insulator layers 6 stacked in the first direction D1. In the element body 2, the stacking direction in which the multiple insulator layers 6 are stacked coincides with the first direction D1. In an actual element body 2, the multiple insulator layers 6 are integrated to the extent that the boundaries between each insulator layer 6 are not visible.

[0024] Each insulator layer 6 is formed of a dielectric material containing a glass component. That is, the element body 2 contains a dielectric material containing a glass component as a compound of elements that constitute the element body 2. The glass component is, for example, borosilicate glass. The dielectric material is, for example, a dielectric ceramic such as a BaTiO3-based, Ba(Ti,Zr)O3-based, or (Ba,Ca)TiO3-based material. Each insulator layer 6 is formed of a sintered ceramic green sheet containing a glass ceramic material.

[0025] As shown in Figures 2 and 3, a pair of recesses 4 are provided on the main surface 2a. The pair of recesses 4 are spaced apart from each other in the second direction D2. When viewed from a direction perpendicular to the main surface 2a (third direction D3), the pair of recesses 4 are spaced apart from the pair of side surfaces 2c and the pair of side surfaces 2e, respectively. One of the recesses 4 is provided on one of the side surfaces 2c of the element body 2. The other recess 4 is provided on the other side surface 2c of the element body 2.

[0026] As shown in FIGS. 1 to 5, the pair of external terminals 3 are electrically connected to the ends of the coil 10, respectively. The pair of external terminals 3 are embedded in the element body 2 so as to be exposed from the main surface 2a. The pair of external terminals 3 are not exposed from the main surface 2b or the side surfaces 2c, 2e. The pair of external terminals 3 are spaced apart from each other in the second direction D2. The pair of external terminals 3 are spaced apart from the pair of side surfaces 2c and the pair of side surfaces 2e, respectively, when viewed from a direction perpendicular to the main surface 2a (third direction D3). One external terminal 3 is provided on one side surface 2c of the element body 2. The other external terminal 3 is provided on the other side surface 2c of the element body 2. The pair of external terminals 3 have the same shape.

[0027] The pair of external terminals 3 can also be said to be arranged in a pair of recesses 4 provided on the main surface 2a. Each recess 4 is a space recessed from the main surface 2a into the inside of the element body 2. Each recess 4 has a shape corresponding to the shape of the corresponding external terminal 3. Each external terminal 3 is in contact with the entire inner surface of the corresponding recess 4 without any gaps.

[0028] Each external terminal 3 has a rectangular plate shape with the thickness direction aligned with the third direction D3. The thickness t of the external terminal 3 is greater than the radius of curvature of each of the ridge portions 2g, 2h. The radii of curvature of the ridge portions 2g, 2h are, for example, equal to each other. Each external terminal 3 has an exposed surface 3a, a bottom surface 3b, connecting surfaces 3c, 3d, and a pair of connecting surfaces 3e. The exposed surface 3a and the bottom surface 3b face each other in the thickness direction (third direction D3). The exposed surface 3a faces the outside of the element body 2 and is exposed from the main surface 2a. The exposed surface 3a is located substantially in the same plane as the main surface 2a, but may be located outside the element body 2 relative to the main surface 2a, or may be located inside the element body 2 relative to the main surface 2a. That is, each external terminal 3 may protrude from the main surface 2a to the outside of the element body 2, or may be recessed from the main surface 2a to the inside of the element body 2.

[0029] The bottom surface 3b faces inward of the element body 2 and faces the main surface 2b and the bottom surface 4a of the recess 4, respectively. The exposed surface 3a and the bottom surface 3b are, for example, rectangular flat surfaces. The long side directions of the exposed surface 3a and the bottom surface 3b coincide with the first direction D1. The short side directions of the exposed surface 3a and the bottom surface 3b coincide with the second direction D2.

[0030] Each connection surface 3c, 3d, 3e connects the exposed surface 3a and the bottom surface 3b. The connection surface 3c faces the corresponding side surface 2c. The corresponding side surface 2c is the closer side surface 2c of the pair of side surfaces 2c. The connection surfaces 3c, 3d face each other in the second direction D2. The connection surfaces 3c, 3d face opposite sides of each other in the second direction D2. The pair of external terminals 3 are arranged so that the connection surfaces 3d face each other. The pair of connection surfaces 3e face each other in the first direction D1. Each connection surface 3e faces the corresponding side surface 2e. The corresponding side surface 2e is the closer side surface 2e of the pair of side surfaces 2e.

[0031] The further away from the main surface 2a the connecting surface 3c is, the further away in the second direction D2 it is from the plane including the corresponding side surface 2c. The plane including the side surface 2c is an imaginary plane. The distance dc between the connecting surface 3c and the plane including the side surface 2c in the second direction D2 increases as the connecting surface 3c is further away from the main surface 2a. Here, the connecting surface 3c may include a portion parallel to the plane including the side surface 2c. In this case, the distance dc is kept constant in the portion parallel to the plane including the side surface 2c. It is sufficient that the connecting surface 3c tends to move further away from the plane including the side surface 2c as it is further away from the main surface 2a. It is sufficient that the distance dc simply increases as it is further away from the main surface 2a. A simple increase means that it does not tend to decrease.

[0032] The connecting surface 3c is curved with a radius of curvature larger than the radius of curvature of the ridge portion 2g. The connecting surface 3c is curved so as to bulge toward the inside of the element body 2. In this embodiment, the portion of the connecting surface 3c on the exposed surface 3a side is parallel to the plane including the side surface 2c. The plane including the side surface 2e is an imaginary plane. The portion of the connecting surface 3c on the bottom surface 3b side is curved with a radius of curvature larger than the radius of curvature of the ridge portion 2g. The entire connecting surface 3c may be curved with a radius of curvature larger than the radius of curvature of the ridge portion 2g.

[0033] The connecting surface 3d is curved in the bottom surface 3b side portion so that the farther it is from the main surface 2a, the closer it approaches the plane including the corresponding side surface 2c. The connecting surface 3d is parallel to the plane including the side surface 2c in the exposed surface 3a side portion.

[0034] The further each connecting surface 3e is from the principal surface 2a, the further it is separated in the first direction D1 from the plane including the corresponding side surface 2e. The distance de, by which the planes including the connecting surfaces 3e are separated from each other in the first direction D1, becomes longer as the connecting surface 3e is separated from the principal surface 2a. Here, the connecting surface 3e may include a portion parallel to the plane including the connecting surface 3e. In this case, the distance de is kept constant in the portion parallel to the plane including the connecting surface 3e. As the connecting surface 3e is separated from the principal surface 2a, side 2e The distance de may simply increase as it moves away from the plane containing the principal surface 2a.

[0035] Each connecting surface 3e is curved with a radius of curvature larger than the radius of curvature of the ridge portion 2h. The radii of curvature of the connecting surfaces 3c, 3d, and 3e are, for example, equal to each other. The connecting surfaces 3e are curved so as to bulge toward the inside of the element body 2. In this embodiment, the portion of the connecting surface 3e on the exposed surface 3a side is parallel to a plane including the connecting surface 3e. The portion of the connecting surface 3e on the bottom surface 3b side is curved with a radius of curvature larger than the radius of curvature of the ridge portion 2h. The entire connecting surface 3e may be curved with a radius of curvature larger than the radius of curvature of the ridge portion 2h.

[0036] Each external terminal 3 is disposed outside each ridge portion 2g, 2h when viewed from a direction perpendicular to the main surface 2a (third direction D3). That is, each external terminal 3 is disposed within the range of the main surface 2a when viewed from the third direction D3, and is not disposed across the ridge portions 2g, 2h. That is, each external terminal 3 is disposed at a distance from a plane including the corresponding side surface 2c that is equal to or greater than the design value of the curvature radius of the ridge portion 2g or the measured curvature radius of the ridge portions 2i, 2j, 2k. Each external terminal 3 is disposed at a distance from a plane including the corresponding side surface 2e that is equal to or greater than the design value of the curvature radius of the ridge portion 2h or the measured curvature radius of the ridge portions 2i, 2j, 2k. The design values ​​of the ridge portions 2g, 2h, 2i, 2j, 2k are, for example, equal to each other. Because the ridge portions 2g and 2h are adjacent to the main surface 2a on which the external terminals 3 are provided, the radii of curvature of the ridge portions 2g and 2h may be smaller than the design value due to the influence of the external terminals 3. Because the ridge portions 2i, 2j, and 2k are not adjacent to the main surface 2a, the radii of curvature of the ridge portions 2i, 2j, and 2k are not influenced by the external terminals 3 and are close to the design value. Therefore, the measured values ​​of the radii of curvature of the ridge portions 2i, 2j, and 2k may be used instead of the design values ​​of the radii of curvature of the ridge portions 2g and 2h. Because the ridge portion 2g has a chamfered shape, it does not contact either the plane including the side surface 2c or the plane including the main surface 2a. Because the ridge portion 2h has a chamfered shape, it does not contact either the plane including the connection surface 3e or the plane including the main surface 2a. The plane including the main surface 2a is a virtual plane.

[0037] When viewed from a direction perpendicular to the main surface 2a (third direction D3), the element body 2 has a corner A1 between the adjacent side surfaces 2c and 2e. The corner A1 is formed by a ridge portion 2i. The element body 2 has four corners A1. When viewed from a direction perpendicular to the main surface 2a (third direction D3), each external terminal 3 has four corners. Of the four corners of an external terminal 3, two corners A2 are arranged adjacent to the corresponding corner A1. In other words, the external terminal 3 has a corner A2 arranged adjacent to the corner A1 between the side surface 2c and the side surface 2e. Note that adjacent means closest. The radius of curvature of each corner A2 is greater than the radius of curvature of the adjacent corner A1.

[0038] As shown in FIG. 5, the external terminal 3 is configured by stacking multiple electrode layers 11 in a first direction D1. The external terminal 3 has multiple electrode layers 11 stacked in the first direction D1. The multiple electrode layers 11 are integrated to the extent that the boundaries between the electrode layers 11 are not visible. In this embodiment, the number of electrode layers 11 is "6". Each electrode layer 11 is provided in a defect portion formed in the corresponding insulator layer 6. The defect portion forms a recess 4. The electrode layer 11 contains a conductive material. The conductive material contains, for example, Ag or Pd. The electrode layer 11 is configured as a sintered body of a conductive paste containing conductive material powder. The conductive material powder contains, for example, Ag powder or Pd powder.

[0039] The electrode layer 11 may further contain a glass component. That is, the electrode layer 11 may be configured as a sintered body of a conductive paste containing a metal component made of conductive material powder and a glass component. The glass component is a compound of elements that constitute the element body 2, and is the same component as the glass component contained in the element body 2. The content of the glass component may be set appropriately. Each electrode layer 11 extends along the second direction D2.

[0040] The coil 10 and the connecting conductors 26, 27 are disposed within the element body 2 and are not exposed from the element body 2. The coil 10 has a coil axis along a first direction D1. A pair of ends of the coil 10 are electrically connected to a pair of external terminals 3 (see FIG. 2). One end is electrically connected to one external terminal 3 by a connecting conductor 26. The other end is electrically connected to the other external terminal 3 by a connecting conductor 27.

[0041] The coil 10 has a first coil conductor 22, a second coil conductor 23, a third coil conductor 24, and a fourth coil conductor 25. The first coil conductor 22, the second coil conductor 23, the third coil conductor 24, and the fourth coil conductor 25 are arranged along a first direction D1 in the following order: the first coil conductor 22, the second coil conductor 23, the third coil conductor 24, and the fourth coil conductor 25. The first coil conductor 22, the second coil conductor 23, the third coil conductor 24, and the fourth coil conductor 25 each have a shape in which a portion of the loop is interrupted, and each has one end and the other end.

[0042] The first coil conductor 22, the second coil conductor 23, the third coil conductor 24, and the fourth coil conductor 25 are formed to have a predetermined width (length in the direction intersecting the first direction D1) and height (length in the first direction). The first coil conductor 22, the second coil conductor 23, the third coil conductor 24, and the fourth coil conductor 25 are formed to have the same width and height as one another.

[0043] The first coil conductor 22 is located in the same layer as the pair of electrode layers 11. The first coil conductor 22 is connected to the other electrode layer 11, which is located in the same layer, via a connection conductor 26. The connection conductor 26 is located in the same layer as the pair of electrode layers 11 and the first coil conductor 22. The connection conductor 26 connects the first coil conductor 22 to the other electrode layer 11. One end of the first coil conductor 22 is connected to the connection conductor 26. The one end of the first coil conductor 22 constitutes the other end of the coil 10. In this embodiment, the first coil conductor 22, the connection conductor 26, and the other electrode layer 11 are integrally formed.

[0044] The second coil conductor 23 is located in the same layer as the pair of electrode layers 11. The second coil conductor 23 is spaced apart from the pair of electrode layers 11 located in the same layer. The other end of the first coil conductor 22 and one end of the second coil conductor 23 are adjacent to each other in the first direction D1 and are in direct contact with each other. When viewed from the first direction D1, the other end of the first coil conductor 22 and one end of the second coil conductor 23 overlap each other.

[0045] The third coil conductor 24 is located in the same layer as the pair of electrode layers 11. The third coil conductor 24 is spaced apart from the pair of electrode layers 11 located in the same layer. The other end of the second coil conductor 23 and one end of the third coil conductor 24 are adjacent to each other in the first direction D1 and are in direct contact with each other. When viewed from the first direction D1, the other end of the second coil conductor 23 and one end of the third coil conductor 24 overlap each other.

[0046] The fourth coil conductor 25 is located in the same layer as the pair of electrode layers 11. The fourth coil conductor 25 is connected to one of the electrode layers 11, which is located in the same layer, via a connection conductor 27. The connection conductor 27 is located in the same layer as the pair of electrode layers 11 and the fourth coil conductor 25. The connection conductor 27 connects the fourth coil conductor 25 to one of the electrode layers 11. The other end of the fourth coil conductor 25 is connected to the connection conductor 27. The other end of the fourth coil conductor 25 constitutes one end of the coil 10. In this embodiment, the fourth coil conductor 25, the connection conductor 27, and one of the electrode layers 11 are integrally formed.

[0047] The first coil conductor 22, the second coil conductor 23, the third coil conductor 24, the fourth coil conductor 25, and the connecting conductors 26 and 27 contain a conductive material. The conductive material contains, for example, Ag or Pd. The first coil conductor 22, the second coil conductor 23, the third coil conductor 24, the fourth coil conductor 25, and the connecting conductors 26 and 27 are configured as a sintered body of a conductive paste containing conductive material powder. The conductive material powder contains, for example, Ag powder or Pd powder.

[0048] In this embodiment, the first coil conductor 22, the second coil conductor 23, the third coil conductor 24, the fourth coil conductor 25, and the connecting conductors 26 and 27 contain the same conductive material as the external terminals 3. The first coil conductor 22, the second coil conductor 23, the third coil conductor 24, the fourth coil conductor 25, and the connecting conductors 26 and 27 may contain a conductive material different from that of the external terminals 3.

[0049] The first coil conductor 22, the second coil conductor 23, the third coil conductor 24, the fourth coil conductor 25, and the connecting conductors 26 and 27 are provided in the defects formed in the corresponding insulator layers 6. The first coil conductor 22, the second coil conductor 23, the third coil conductor 24, the fourth coil conductor 25, and the connecting conductors 26 and 27 are formed by firing a conductive paste located in the defects formed in the green sheet.

[0050] The defects formed in the green sheet are formed, for example, by the following process. First, a green sheet is formed by applying an element paste containing the constituent materials of the insulator layer 6 and a photosensitive material onto a substrate. The substrate is, for example, a PET film. The photosensitive material contained in the element paste may be either negative or positive, and any known material can be used. Next, a mask corresponding to the defects is used to expose and develop the green sheet by photolithography, thereby forming defects in the green sheet on the substrate. The green sheet with the defects formed therein is the element pattern.

[0051] The electrode layer 11, the first coil conductor 22, the second coil conductor 23, the third coil conductor 24, the fourth coil conductor 25, and the connecting conductors 26 and 27 are formed, for example, by the following process.

[0052] First, a conductive paste containing a photosensitive material is applied to a substrate to form a conductive material layer. The photosensitive material contained in the conductive paste may be either negative or positive, and any known photosensitive material can be used. Next, a mask corresponding to the defect is used, and the conductive material layer is exposed and developed by photolithography to form a conductive pattern on the substrate that corresponds to the shape of the defect.

[0053] The laminated coil component 1 can be obtained, for example, by the following process following the process described above. A conductive pattern is combined with a missing portion of an element pattern to prepare a sheet in which the element pattern and the conductive pattern are in the same layer. A predetermined number of prepared sheets are stacked to obtain a laminate, which is then heat-treated, and multiple green chips are obtained from the laminate. In this process, the green laminate is cut into chips, for example, using a cutting machine. This results in multiple green chips of a predetermined size. Next, the green chips are fired. This firing results in the laminated coil component 1. A plating layer may be formed on the surface of each external terminal 3. The plating layer is formed, for example, by electroplating or electroless plating. The plating layer contains, for example, Ni, Sn, or Au.

[0054] Since the laminated coil component 1 is formed using such a photolithography method, the external terminals 3 can be formed in any shape. That is, it is easy to realize a shape in which each connection surface 3c, 3d, and 3e is curved with a desired radius of curvature. In the above-described manufacturing method, sheets on which an element pattern and a conductor pattern are formed on the same layer are prepared, and then a predetermined number of the prepared sheets are stacked to form a laminate. However, the laminate may be formed by other methods. For example, the element pattern and the conductor pattern may be sequentially formed on a single substrate for stacking by a photolithography method to form a laminate. That is, regardless of the manufacturing method, the element 2 only needs to have multiple insulator layers 6 having a laminated structure. Regardless of the manufacturing method, the external terminals 3 only need to have multiple electrode layers 11 having a laminated structure.

[0055] As described above, in the laminated coil component 1 according to this embodiment, the external terminals 3 are embedded in the element body 2 so as to be spaced apart from the side surfaces 2c, 2e and exposed from the main surface 2a. Therefore, the element body 2 has a portion sandwiched between the side surface 2c and the external terminals 3, and a portion sandwiched between the side surface 2e and the external terminals 3. These portions are thinner than other portions and are therefore more susceptible to cracking or chipping.

[0056] The connection surface 3c of the external terminal 3 is further away from the side surface 2c as it is further away from the main surface 2a. This increases the thickness (length in the second direction D2) of the portion of the element body 2 sandwiched between the side surface 2c and the external terminal 3, making it possible to suppress the occurrence of cracks or chips. Furthermore, the connection surface 3e of the external terminal 3 is further away from the side surface 2e as it is further away from the main surface 2a. This increases the thickness (length in the first direction D1) of the portion of the element body 2 sandwiched between the side surface 2e and the external terminal 3, making it possible to suppress the occurrence of cracks or chips. Since the area of ​​the exposed surface 3a of the external terminal 3 used for mounting can be maintained large, it is possible to suppress a decrease in mounting strength.

[0057] The ridge 2g between the main surface 2a and the side surface 2c has a chamfered shape. This makes the thin portion sandwiched between the side surface 2c and the external terminal 3 even thinner, making it more susceptible to cracking or chipping. Therefore, a configuration in which the external terminal 3 has the above-mentioned connection surface 3c is more effective. The ridge 2h between the main surface 2a and the side surface 2e has a chamfered shape. This makes the thin portion sandwiched between the side surface 2e and the external terminal 3 even thinner, making it more susceptible to cracking or chipping. Therefore, a configuration in which the external terminal 3 has the above-mentioned connection surface 3e is more effective.

[0058] The ridge portions 2g, 2h have a rounded, chamfered shape, and the thickness t of the external terminal 3 is thicker than the radius of curvature of the ridge portions 2g, 2h. Therefore, compared to when the thickness t of the external terminal 3 is equal to or less than the radius of curvature of the ridge portion 2g, the thin portion sandwiched between the side surface 2c and the external terminal 3 is longer in the thickness direction of the external terminal 3 (third direction D3). This makes it more likely to crack or chip, so a configuration in which the external terminal 3 has a connecting surface 3c is more effective. Furthermore, compared to when the thickness t of the external terminal 3 is equal to or less than the radius of curvature of the ridge portion 2h, the thin portion sandwiched between the side surface 2e and the external terminal 3 is longer in the thickness direction of the external terminal 3. This makes it more likely to crack or chip, so a configuration in which the external terminal 3 has a connecting surface 3e is more effective.

[0059] The ridge line portion 2g has a rounded chamfered shape, and the connecting surface 3c is curved with a larger radius of curvature than the ridge line portion 2g. This allows the thickness of the thin portion sandwiched between the side surface 2c and the external terminal 3 to be increased. The ridge line portion 2h has a rounded chamfered shape, and the connecting surface 3e is curved with a larger radius of curvature than the ridge line portion 2h. This allows the thickness of the thin portion sandwiched between the side surface 2e and the external terminal 3 to be increased.

[0060] The external terminals 3 are arranged outside the ridge portions 2g, 2h. Therefore, the ridge portions 2g, 2h can be formed using only the element body 2. The ease of polishing varies depending on the material. Therefore, the ridge portions 2g, 2h formed using only the element body 2 are easier to form a chamfered shape by polishing than ridge portions formed using multiple materials. This improves the product shape and prevents the element body 2 from cracking or chipping.

[0061] The external terminals 3 are more difficult to polish than, for example, the element body 2 before firing. Therefore, if the external terminals 3 are also exposed on the side surfaces 2c and form ridge portions 2g, the ridge portions 2g are difficult to polish and are difficult to chamfer. Therefore, compared with the other ridge portions 2h, 2i, 2j, and 2k formed on the element body 2 without the external terminals 3 being exposed, the ridge portions 2g have a sharper shape and are more likely to become the starting point for cracks or chips. If the polishing conditions are set to match the external terminals 3, the external terminals 3 are not exposed, and the other ridge portions 2h, 2i, 2j, and 2k formed on the element body 2 are over-polished, making the element body 2 more likely to roll. This makes the multilayer coil component 1 difficult to handle. While the case where the external terminals 3 are exposed on the side surfaces 2c has been described as an example, the same problem occurs when the external terminals 3 are exposed on the side surfaces 2e.

[0062] Even when the external terminal 3 is spaced from the plane including the side surface 2c, if the distance between the external terminal 3 and the plane including the side surface 2c is insufficient—specifically, if the distance is shorter than the design value of the curvature radius of the ridge line portions 2g, 2h, 2i, 2j, and 2k—polishing of the ridge line portion 2g is hindered by the external terminal 3, making it difficult to achieve the design value of the curvature radius of the ridge line portion 2g. This makes the ridge line portion 2g prone to cracking or chipping. If the polishing conditions are tailored to the ridge line portion 2g, the design value of the curvature radius of the ridge line portion 2g can be achieved, but the other ridge line portions 2h, 2i, 2j, and 2k are over-polished, resulting in curvature radii exceeding the design value. This makes the element body 2 prone to rolling, making the multilayer coil component 1 difficult to handle. While the case where the external terminal 3 is spaced from the plane including the side surface 2c insufficiently has been described as an example, a similar problem occurs when the external terminal 3 is spaced from the plane including the side surface 2e insufficiently.

[0063] In the laminated coil component 1, the external terminals 3 are embedded in the element body 2 so as to be spaced apart from the adjacent side surfaces 2c, 2e and exposed from the main surface 2a. Therefore, the element body 2 has a portion sandwiched between the side surfaces 2c, 2e, and the external terminals 3. Because this portion has a smaller volume than other portions, it is prone to cracking or chipping. Therefore, when viewed from a direction perpendicular to the main surface 2a (third direction D3), the radius of curvature of the corner A1 between the side surfaces 2c, 2e of the element body 2 is made larger than the radius of curvature of the corner A1. This increases the volume of the portion sandwiched between the side surfaces 2c, 2e, and the external terminals 3, making it possible to prevent cracking or chipping.

[0064] The pair of external terminals 3 are exposed only on the main surface 2a, which reduces the mounting area. For example, if the external terminals 3 are exposed on the main surface 2a and the side surface 2c, solder is also formed on the side surface 2c, which increases the mounting area.

[0065] 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.

[0066] Fig. 6 is a partially enlarged cross-sectional view of a laminated coil component according to a first modified example. The laminated coil component 1A according to the first modified example shown in Fig. 6 differs from the laminated coil component 1 shown in Figs. 1 to 5 in that it includes an external terminal 3A in which a plurality of electrode layers 31, 32, and 33 are stacked in a third direction D3. The plurality of insulator layers 6 may be stacked in the third direction D3, or may be stacked in the first direction D1 or the second direction D2.

[0067] The multiple electrode layers 31, 32, and 33 are arranged in this order from the main surface 2b side. That is, the electrode layer 31 is arranged closest to the main surface 2b, and the electrode layer 33 is arranged closest to the main surface 2a. The electrode layer 32 is arranged between the electrode layer 31 and the electrode layer 33. The exposed surface 3a is formed by one surface of the electrode layer 33 in the thickness direction (third direction D3). The bottom surface 3b is formed by one surface of the electrode layer 31 in the thickness direction (third direction D3).

[0068] The lengths of the electrode layers 31, 32, and 33 in the second direction D2 are different from one another. The electrode layers 31, 32, and 33 are arranged, for example, so that the centers in the second direction D2 are aligned with one another. Therefore, in the electrode layers 31, 32, and 33, the positions of the end faces on the side surface 2c and the side surface 2d are offset in a stepped manner. That is, the connection surfaces 3c and 3d each have a stepped shape. Thus, in the laminated coil component 1A as well, the connection surface 3c is spaced further from the side surface 2c as it is spaced further from the main surface 2a. Therefore, in the laminated coil component 1A as well, the thickness of the portion sandwiched between the side surface 2c and the external terminal 3 can be increased, making it possible to prevent cracks or chipping.

[0069] 7 is a partially enlarged cross-sectional view of a laminated coil component according to a second modified example. The laminated coil component 1B according to the second modified example shown in FIG. 7 differs from the laminated coil component 1A (see FIG. 6) in that it includes an external terminal 3B in which the arrangement of the electrode layers 31, 32, and 33 differs from that of the external terminal 3A (see FIG. 6). In the external terminal 3B, the plurality of electrode layers 31, 32, and 33 are arranged so that the connection surface 3d forms a plane extending along the third direction D3. The connection surface 3c of the external terminal 3B has a stepped shape, similar to the external terminal 3A. Therefore, in the laminated coil component 1B as well, the thickness of the portion sandwiched between the side surface 2c and the external terminal 3 can be increased, making it possible to prevent cracks or chipping.

[0070] In the laminated coil component 1, the coil 10 has a coil axis along the first direction D1 and includes a first coil conductor 22, a second coil conductor 23, a third coil conductor 24, and a fourth coil conductor 25. However, the coil axis of the coil 10 does not have to be along the first direction D1. The coil axis of the coil 10 may be along, for example, the second direction D2 or the third direction D3. Furthermore, the number of coil conductors constituting the coil 10 is not limited to four.

[0071] In the laminated coil component 1, each of the ridge portions 2g, 2h, 2i, 2j, and 2k has a rounded chamfered shape, but each of the ridge portions 2g, 2h, 2i, 2j, and 2k may have a chamfered shape consisting of a flat surface, or may not have a chamfered shape.

[0072] In the laminated coil component 1, the external terminal 3 is composed of six electrode layers 11, but it is sufficient that it is composed of at least two or more electrode layers 11. In the laminated coil components 1A and 1B, the external terminals 3A and 3B are composed of three electrode layers 31, 32, and 33, but it is sufficient that it is composed of at least two or more electrode layers.

[0073] In the laminated coil components 1A and 1B, the connecting surfaces 3c are stepped, but the connecting surfaces 3e may also be stepped, which increases the thickness of the portions sandwiched between the side surfaces 2e and the external terminals 3, making it possible to prevent cracks or chips from occurring. [Explanation of symbols]

[0074] 1, 1A, 1B... multilayer coil component, 2... element body, 2a... main surface, 2c, 2e... side surface, 2g, 2h... ridge portion, 3... external terminal, 3c, 3e... connection surface, 6... insulator layer, 10... coil, 11... electrode layer, 31, 32, 33... electrode layer, A1, A2... corner portion, t... thickness.

Claims

1. an element body formed by laminating a plurality of insulating layers; a coil disposed within the element body; an external terminal formed by laminating a plurality of conductor layers and electrically connected to the coil; the element body has a main surface and a first side surface adjacent to the main surface, The external terminals are the first electrode is embedded in the element body so as to be spaced apart from the first side surface and exposed from the main surface, a first separation surface facing the first side surface and spaced apart from the first side surface as it is spaced apart from the main surface; Multilayer coil components.

2. A ridge portion between the main surface and the first side surface has a chamfered shape. The laminated coil component according to claim 1 .

3. The ridge line portion has a rounded chamfered shape, The thickness of the external terminal is greater than the radius of curvature of the ridge portion. The laminated coil component according to claim 2 .

4. The ridge line portion has a rounded chamfered shape, the first separation surface is curved with a radius of curvature larger than the radius of curvature of the ridge line portion; The laminated coil component according to claim 2 .

5. The external terminal is disposed outside the ridge portion. The laminated coil component according to any one of claims 2 to 4.

6. the element body further has a pair of second side surfaces each adjacent to the main surface, the first side surface is adjacent to each of the pair of second side surfaces; the pair of second side surfaces are opposed to each other, the external terminal further includes a pair of second spaced apart surfaces facing the pair of second side surfaces and spaced apart from the pair of second side surfaces as the external terminal is spaced apart from the main surface; The laminated coil component according to any one of claims 1 to 5.

7. an element body formed by laminating a plurality of insulating layers; a coil disposed within the element body; an external terminal formed by laminating a plurality of conductor layers and electrically connected to the coil; the element body has a rectangular main surface and a pair of side surfaces adjacent to each other and each adjacent to the main surface; The external terminals are the first electrode is embedded in the element body so as to be spaced apart from the pair of side surfaces and exposed from the main surface, a second corner portion disposed adjacent to the first corner portion between the pair of side surfaces when viewed from a direction perpendicular to the main surface; The radius of curvature of the second corner portion is larger than the radius of curvature of the first corner portion, The external terminal has a first spaced surface facing a first side surface of the pair of side surfaces and spaced apart from the first side surface as far as it is spaced apart from the main surface. Multilayer coil components.

Citation Information

Patent Citations

  • Inductor component

    JP2018113299A

  • Laminated coil component

    JP2019125606A