INDUCTOR DEVICE
20230154667 · 2023-05-18
Inventors
Cpc classification
H01F2017/0073
ELECTRICITY
H01F27/29
ELECTRICITY
International classification
Abstract
An inductor device includes a plurality of coils including a first winding and a second winding. The first winding includes a plurality of first sub-coils, wherein a first one of the plurality of first sub-coils is configured in a first region, and a second one and a third one of the plurality of first sub-coils are configured in a second region different from the first region. The second winding includes a plurality of second sub-coils, wherein a first one of the plurality of second sub-coils is configured in the second region, and a second one and a third one of the plurality of second sub-coils are configured in the first region. Each of the plurality of coils is composed of one of the plurality of first sub-coils and one of the plurality of second sub-coils.
Claims
1. An inductor device, comprising: a plurality of coils comprising: a first winding comprising a plurality of first sub-coils, wherein a first one of the plurality of first sub-coils is configured in a first region, and a second one and a third one of the plurality of first sub-coils are configured in a second region different from the first region; and a second winding comprising a plurality of second sub-coils, wherein a first one of the plurality of second sub-coils is configured in the second region, and a second one and a third one of the plurality of second sub-coils are configured in the first region; wherein each of the plurality of coils is composed of one of the plurality of first sub-coils and one of the plurality of second sub-coils.
2. The inductor device of claim 1, wherein the first one of the plurality of second sub-coils, the second one of the plurality of first sub-coils and the third one of the plurality of first sub-coils are located in a same metal layer and are not overlapped with each other; wherein the first one of the plurality of first sub-coils, the second one of the plurality of second sub-coils and the third one of the plurality of second sub-coils are located in a same metal layer and are not overlapped with each other.
3. The inductor device of claim 2, wherein the first one of the plurality of second sub-coils and the second one of the plurality of first sub-coils are spaced at a first interval, and the second one of the plurality of first sub-coils and the third one of the plurality of first sub-coils are spaced at a second interval, wherein the first interval is equal to the second interval.
4. The inductor device of claim 3, wherein the first one of the plurality of first sub-coils and the second one of the plurality of second sub-coils are spaced at the first interval, and the second one of the plurality of second sub-coils and the third one of the plurality of second sub-coils are spaced at the second interval.
5. The inductor device of claim 2, wherein the first one of the plurality of second sub-coils and the second one of the plurality of first sub-coils are spaced at a first interval, and the second one of the plurality of first sub-coils and the third one of the plurality of first sub-coils are spaced at a second interval, wherein the first interval is at least 1.5 times the second interval.
6. The inductor device of claim 5, wherein the first one of the plurality of first sub-coils and the second one of the plurality of second sub-coils are spaced at the first interval, and the second one of the plurality of second sub-coils and the third one of the plurality of second sub-coils are spaced at the second interval.
7. The inductor device of claim 1, wherein the second one of the plurality of first sub-coils and the third one of the plurality of first sub-coils are located in different metal layers and are overlapped with each other.
8. The inductor device of claim 7, wherein the first one of the plurality of second sub-coils and the third one of the plurality of first sub-coils are located in a same metal layer and are not overlapped with each other.
9. The inductor device of claim 8, wherein the second one of the plurality of second sub-coils and the third one of the plurality of second sub-coils are located in different metal layers and are overlapped with each other.
10. The inductor device of claim 9, wherein the first one of the plurality of first sub-coils and the third one of the plurality of second sub-coils are located in a same metal layer and are not overlapped with each other.
11. The inductor device of claim 1, wherein the inductor device further comprises a first crossing portion, and the first crossing portion is configured to couple the first one of the plurality of first sub-coils and the second one of the plurality of first sub-coils, and is configured to couple the first one of the plurality of second sub-coils and the second one of the plurality of second sub-coils.
12. The inductor device of claim 11, wherein the first crossing portion comprises a first connecting member and a second connecting member, the first connecting member is configured to couple the first one of the plurality of first sub-coils and the second one of the plurality of first sub-coils, the second connecting member is configured to couple the first one of the plurality of second sub-coils and the second one of the plurality of second sub-coils, and the first connecting member and the second connecting member are intersected with each other.
13. The inductor device of claim 11, wherein the inductor device further comprises a second crossing portion, and the second crossing portion is configured to couple the first one of the plurality of first sub-coils and the third one of the plurality of first sub-coils, and is configured to couple the first one of the plurality of second sub-coils and the third one of the plurality of second sub-coils.
14. The inductor device of claim 13, wherein the second crossing portion comprises a first connecting member and a second connecting member, the first connecting member is configured to couple the first one of the plurality of first sub-coils and the third one of the plurality of first sub-coils, the second connecting member is configured to couple the first one of the plurality of second sub-coils and the third one of the plurality of second sub-coils, and the first connecting member and the second connecting member are intersected with each other.
15. The inductor device of claim 13, wherein the first crossing portion is located on a first side of the inductor device, and the second crossing portion is located on a second side of the inductor device, wherein the first side and the second side are two opposite sides.
16. The inductor device of claim 15, wherein the inductor device further comprises an input-output terminal, and the input-output terminal is located on the second side of the inductor device and is coupled to the second one of the plurality of first sub-coils and the second one of the plurality of second sub-coils.
17. The inductor device of claim 16, wherein the inductor device further comprises a central tap terminal, and the central tap terminal is located on the first side of the inductor device and is coupled to the third one of the plurality of first sub-coils and the third one of the plurality of second sub-coils.
18. The inductor device of claim 15, wherein the inductor device further comprises an input-output terminal, and the input-output terminal is located on the first side of the inductor device and is coupled to the third one of the plurality of first sub-coils and the third one of the plurality of second sub-coils.
19. The inductor device of claim 18, wherein the inductor device further comprises a central tap terminal, and the central tap terminal is located on the second side of the inductor device and is coupled to the second one of the plurality of first sub-coils and the second one of the plurality of second sub-coils.
20. The inductor device of claim 19, wherein the inductor device further comprises a first connecting member and a second connecting member, the first connecting member is configured to couple the second one of the plurality of first sub-coils and the central tap terminal, the second connecting member is configured to couple the second one of the plurality of second sub-coils and the central tap terminal, and the first connecting member and the second connecting member are both intersected with the second crossing portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0005]
[0006]
[0007]
[0008]
[0009]
[0010]
DETAILED DESCRIPTION
[0011] The embodiments are described in detail below with reference to the appended drawings to better understand the aspects of the present disclosure. However, the provided embodiments are not intended to limit the scope of the disclosure, and the description of the structural operation is not intended to limit the order in which they are performed. Any device that has been recombined by components and produces an equivalent function is within the scope covered by the disclosure.
[0012] The terms used in the entire specification and the scope of the patent application, unless otherwise specified, generally have the ordinary meaning of each term used in the field, the content disclosed herein, and the particular content.
[0013] The terms “coupled” or “connected” as used herein may mean that two or more elements are directly in physical or electrical contact, or are indirectly in physical or electrical contact with each other. It can also mean that two or more elements interact with each other.
[0014] Referring to
[0015] In some embodiments, as shown in
[0016] The second winding C2 also includes a plurality of second sub-coils SC1-SC3. The second sub-coil SC1 (i.e., a first one of the second sub-coils) is configured in the second region R2 together with the first sub-coils FC2-FC3, and other second sub-coils SC2-SC3 (i.e., a second one and a third one of the second sub-coils) are configured in the first region R1 together with the first sub-coil FC1.
[0017] In some embodiments, as shown in
[0018] In some embodiments, the first crossing portion CN1 includes a plurality of connecting members 101 and 102. As shown in
[0019] In some embodiments, the second crossing portion CN2 includes a plurality of connecting members 201 and 202. As shown in
[0020] In some embodiments, the first crossing portion CN1 is on a first side S1 of the inductor device 100, and the second crossing portion CN2 is on a second side S2 of the inductor device 100. As shown in
[0021] In the embodiment of
[0022] In some embodiments, the first sub-coils FC1-FC3, the second sub-coils SC1-SC3 and the connecting members 101 and 202 are located in the same metal layer (i.e., the first metal layer), but the present disclosure is not limited herein. In other embodiments, the first sub-coils FC1-FC3 and the second sub-coils SC1-SC3 are located in the second metal layer.
[0023] In some embodiments, the first metal layer is different from the second metal layer. For example, the first metal layer is an ultra-thick metal (UTM) layer, and the second metal layer is aluminum redistribution layer (AL-RDL). It can be appreciated that the present disclosure is not limited herein.
[0024] The structure of the first winding C1 is described first. In detail, the first sub-coil FC2 is coupled to the input-output terminal 10E on the second side S2, is wound clockwise from the second side S2 to the first side S1, and is directly coupled to a terminal of the connecting member 101 on the first side S1. Another terminal of the connecting member 101 is directly coupled to the first sub-coil FC1. The first sub-coil FC1 is wound clockwise from the first side S1 to the second side S2, and is coupled to a terminal of the connecting member 201 through a via on the second side S2. Another terminal of the connecting member 201 is coupled to the first sub-coil FC3 through a via. The first sub-coil FC3 is wound clockwise from the second side S2 to the first side S1, and is coupled to the central tap terminal CT directly or indirectly (for example, through a via) on the first side S1.
[0025] The structure of the second winding C2 is described then. In detail, the second sub-coil SC2 is coupled to the input-output terminal 10E on the second side S2, is wound counterclockwise from the second side S2 to the first side S1, and is coupled to a terminal of the connecting member 102 through a via on the first side S1. Another terminal of the connecting member 102 is coupled to the second sub-coil SC1 through a via. The second sub-coil SC1 is wound counterclockwise from the first side S1 to the second side S2, and is directly coupled to a terminal of the connecting member 202 on the second side S2. Another terminal of the connecting member 202 is directly coupled to the second sub-coil SC3. The second sub-coil SC3 is wound counterclockwise from the second side S2 to the first side S1, and is coupled to the central tap terminal CT directly or indirectly (for example, through a via) on the first side S1.
[0026] In the embodiment of
[0027] In particular, in the second region R2 of
[0028] It can be appreciated that the first sub-coils FC1-FC3 are configured to transmit first signals with same polarity (e.g., same positive polarity signals or same negative polarity signals), the second sub-coils SC1-SC3 are configured to transmit second signals with same polarity (e.g., same negative polarity signals or same positive polarity signals), and the first signals are different from the second signals. Notably, by the configuration of the first crossing portion CN1 and the second crossing portion CN2, most of the first sub-coils (e.g., the first sub-coil FC2 and the first sub-coil FC3) are configured in the second region R2 and are adjacent to each other, and most of the second sub-coils (e.g., the second sub-coil SC2 and the second sub-coil SC3) are configured in the first region R1 and are adjacent to each other. Accordingly, since the coils in same region are responsible for transmitting signals with same polarity, the equivalent parasitic capacitance value of the inductor device 100 can be reduced dramatically, and the equivalent inductance vale and the quality factor of the inductor device 100 can be increased dramatically.
[0029] Referring to
[0030] In the embodiment of
[0031] In the embodiments of
[0032] Referring to
[0033] In the embodiment of
[0034] In the embodiments of
[0035] Referring to
[0036] Referring to
[0037] In the above embodiments, the inductor device (e.g., the inductor device 100 of
[0038] It can be appreciated that the number of the coils of the first winding C1 and the number of the coils of the second winding C2 are only for illustrated purpose, and the present disclosure is not limited to the number as shown in the drawings. In other words, the number of the coils of the inductor device is not limited to 3 as shown in the drawings.
[0039] Referring to
[0040] It can be seen from the above embodiments of the present disclosure that the inductor device of the present disclosure (e.g., the inductor device 100 of
[0041] Although the present disclosure has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein. It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims.