This application claims priority to and the benefit of Taiwan Application Serial Number 109115627, filed on May 11, 2020, the entire content of which is incorporated herein by reference as if fully set forth below in its entirety and for all applicable purposes.
The disclosure generally relates to electric devices, and more particularly, to inductor devices.
The various types of inductors according to the prior art have their advantages and disadvantages. For example, a spiral inductor has a higher Q value and a larger mutual inductance. However, its mutual inductance value and coupling are both occurred between the coils. For the 8-shaped inductor which has two sets of coils, the induced magnetic field of the two sets is inversed, and the coupling and the inductance value occur at another coupling magnetic field of another coil. Also, the 8-shaped inductor occupies a large area in a device. Therefore, the scopes of applications of the above-described inductors are limited.
The disclosure can be more fully understood by reading the following detailed description of the embodiments, with reference made to the accompanying drawings as described below. It should be noted that the features in the drawings are not necessarily to scale. In fact, the dimensions of the features may be arbitrarily increased or decreased for clarity of discussion.
The present disclosure of an embodiment provides a stacked inductor device including an 8-shaped inductor structure a stacked coil. The 8-shaped inductor structure includes a first coil and a second coil. The first coil is disposed in a first area. The first coil includes a first sub-coil and a second sub-coil, and the first sub-coil and the second sub-coil are disposed with an interval circularly with each other. The second coil is disposed in a second area. The second coil is coupled with the first coil on a boundary between the first area and the second area. The second coil includes a third sub-coil and a fourth sub-coil, and the third sub-coil and the fourth sub-coil are disposed with an interval circularly with each other. The stacked coil is coupled to the first coil and the second coil and is stacked partially on or under the first coil and the second coil.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the disclosure as claimed.
The disclosure can be more fully understood by reading the following detailed description of the embodiments, with reference made to the accompanying drawings as described below. It should be noted that the features in the drawings are not necessarily to scale. In fact, the dimensions of the features may be arbitrarily increased or decreased for clarity of discussion.
The technical terms “first”, “second” and the similar terms are used to describe elements for distinguishing the same or similar elements or operations and are not intended to limit the technical elements and the order of the operations in the present disclosure. Furthermore, the element symbols/alphabets can be used repeatedly in each embodiment of the present disclosure. The same and similar technical terms can be represented by the same or similar symbols/alphabets in each embodiment. The repeated symbols/alphabets are provided for simplicity and clarity and they should not be interpreted to limit the relation of the technical terms among the embodiments.
Reference will now be made in detail to the present embodiments of the disclosure, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
Reference is made to
In some embodiments, the first sub-coil 1111 is coupled to the fourth sub-coil 1122 through a connector 1230. The second sub-coil 1112 is coupled to the third sub-coil 1121 through a crossing portion 1130.
The stacked coil 1200 stacks partially on or under the 8-shaped inductor structure 1100 in a top-view direction. The stacked coil 1200 includes a first wire 1210 and a second wire 1220. In the top-view direction of the stacked inductor device 1000, a first terminal of the first wire 1210 and a first terminal of the first sub-coil 1111 are coupled at a connection point A1 through a vertical connector (e.g., a via). A second terminal of the first wire 1210 and a first terminal of the third sub-coil 1121 are coupled at a connection point A2 through a vertical connector. A first terminal of the second wire 1220 and a first terminal of the second sub-coil 1112 are coupled at a connection point B1 through a vertical connector. A second terminal of the second wire 1220 and the fourth sub-coil 1122 are coupled at a connection point B2 through a vertical connector. In this way, the first wire 1210 and the second wire 1220 cross between the first coil 1110 and the second coil 1120 to partially stack on or under the first coil 1110 and the second coil 1120 in top-view direction. The disclosure is not limited to the connection type and any connection type based on practical demands belongs to the scope of the disclosure.
In some embodiments, the first wire 1210 and the second wire 1220 are two times the width of the first coil 1110 and the second coil 1120. Therefore, the resistance value of the stacked coil 1200 can be reduced and the inductance value of the stacked inductor device 1000 is increased.
The stacked inductor device 1000 includes an input terminal 1600 and a center-tap terminal 1700. In some embodiments, the input terminal 1600 is coupled to the first sub-coil 1111. The center-tap terminal 1700 is coupled to the second sub-coil 1112. The input terminal 1600 and the center-tap terminal 1700 are disposed on a side of the first area 1400 in a reverse side of the boundary 1900 (e.g., the left side of the first area 1400).
In some embodiments, the first coil 1110 and the second coil 1120 are oblique symmetric with each other based on the boundary 1900. For example, the first coil 1110 is flipped over (e.g., the upside-down of 180 degrees flipping) and an inverted structure of the first coil 1110 is symmetric with the second coil 1120 based on the boundary 1900 (or after the first coil 1110 is flipped upside-down and horizontally flipped, the inverted structure of the first coil 1110 is the same with the second coil 1120). The first sub-coil 1111 and the fourth sub-coil 1122 are oblique symmetric with each other based on the boundary 1900. For example, the inverted structure of the first sub-coil 1111 (e.g., the upside-down of 180 degrees flipping) is symmetric with the fourth sub-coil 1122 based on the boundary 1900 (or after the first sub-coil 1111 is flipped upside-down and horizontally flipped, the inverted structure of the first sub-coil 1111 is the same with the fourth sub-coil 1122). The second sub-coil 1112 and the third sub-coil 1121 are oblique symmetric with each other based on the boundary 1900. For example, the inverted structure of the second sub-coil 1112 (e.g., the upside-down of 180 degrees flipping) is symmetric with the third sub-coil 1121 based on the boundary 1900 (or after the second sub-coil 1112 is flipped upside-down and horizontally flipped, the inverted structure of the second sub-coil 1112 is the same with the third sub-coil 1121).
Reference is made to
As shown in
The stacked coil 2200 includes a third coil 2210 and a fourth coil 2220. In the top-view direction of the stacked inductor device 2000, a first terminal of the third coil 2210 and a first terminal of the first sub-coil 1111 are coupled at the connection point A1 through the vertical connector (e.g., a via). A second terminal of the third coil 2210 and a first terminal of the third sub-coil 1121 are coupled at the connection point A2 through a vertical connector. A first terminal of the fourth coil 2220 and a first terminal of the second sub-coil 1112 are coupled at the connection point B1 through a vertical connector. A second terminal of the fourth coil 2220 and a first terminal of the fourth sub-coil 1122 are coupled at the connection point B2 through a vertical connector. Therefore, the third coil 2210 and the fourth coil 2220 cross between the first coil 1110 and the second coil 1120 to partially overlap with the first coil 1110 and the second coil 1120 in the top-view direction. In some embodiments, the third coil 2210 and the fourth coil 2220 are disposed with an interval with each other.
In some embodiments, the third coil 2210 and the fourth coil 2220 are oblique symmetric based on the boundary 1900.
Reference is made to
Reference is made incorporating with
Reference is made to
Reference is made incorporating with
The first double-spiral coil 3210 includes two spiral coils, for example, a spiral coil 3210a and a spiral coil 3210b. The spiral coil 3210a and the spiral coil 3210b are coupled with each other through a connecting line 3230. Similarly, the second double-spiral coil 3220 includes two spiral coils, for example, a spiral coil 3220a and a spiral coil 3220b.
Reference is made to
Reference is made to
In some embodiments, the 8-shaped inductor structure 3100 has an oblique symmetric structure based on the boundary 1900. The stacked coil 3200 has an oblique symmetric structure based on the boundary 1900.
Reference is made to
Reference is made to
Reference is made to
Reference is made to
Reference is made to
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 disclosure. In view of the foregoing, it is intended that the present disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims.
Number | Date | Country | Kind |
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Number | Date | Country |
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110676028 | Jan 2020 | CN |
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Entry |
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SIPO, “1st CN Office Action and Search Report for CN Application No. 202010421479.1”, China. |
Number | Date | Country | |
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20210350972 A1 | Nov 2021 | US |