Directional coupler and module
11431072 · 2022-08-30
Assignee
Inventors
Cpc classification
H01P5/18
ELECTRICITY
International classification
Abstract
A directional coupler (10) includes a main line (20), a sub-line (40), and a variable capacitor (60). At least part of the sub-line (40) is disposed along the main line (20). The variable capacitor (60) is connected between the main line (20) and the sub-line (40). The directional coupler (10) achieves a stable degree of coupling between the main line (20) and the sub-line (40).
Claims
1. A directional coupler comprising: a main line; a sub-line, at least a part of the sub-line being disposed along the main line; and a variable capacitor connected between the main line and the sub-line, the variable capacitor including a first input/output electrode and a second input/output electrode, wherein the first input/output electrode and the second input/output electrode are connected to at least one of the main line and the sub-line, the main line includes: an input end portion being one end portion of the main line, an output end portion being another end portion of the main line, and a main wiring linking the input end portion and the output end portion; the sub-line includes: a first end portion being one end portion of the sub-line, a second end portion being another end portion of the sub-line, and a sub-wiring linking the first and second end portions; the first input/output electrode is connected to the main wiring, and the second input/output electrode is connected to the sub-wiring.
2. The directional coupler according to claim 1, further comprising: a substrate, wherein the main line, the sub-line, and the variable capacitor are directly or indirectly disposed on the substrate, and in a plan view of the substrate, the variable capacitor is disposed in a region sandwiched between the main line and the sub-line.
3. The directional coupler according to claim 2, wherein: the variable capacitor includes a control terminal into which a control signal is inputted; and a capacitance value of the variable capacitor is changed based on the control signal.
4. The directional coupler according to claim 2, further comprising: a plurality of layers stacked on the substrate, wherein the main line and the sub-line are disposed on different layers of the plurality of layers.
5. The directional coupler according to claim 4, wherein: the variable capacitor includes a control terminal into which a control signal is inputted; and a capacitance value of the variable capacitor is changed based on the control signal.
6. The directional coupler according to claim 4, wherein: the variable capacitor includes a plurality of capacitor elements connected in parallel with each other; and each of the plurality of capacitor elements includes a pair of opposing electrodes, the opposing electrodes being disposed on one of the plurality of layers or different layers of the plurality of layers.
7. The directional coupler according to claim 6, wherein: the variable capacitor includes a control terminal into which a control signal is inputted; and a capacitance value of the variable capacitor is changed based on the control signal.
8. The directional coupler according to claim 1, wherein: the variable capacitor includes a control terminal into which a control signal is inputted; and a capacitance value of the variable capacitor is changed based on the control signal.
9. A module comprising: the directional coupler according to claim 8; and a control circuit configured to output the control signal.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE DISCLOSURE
(10) Embodiments of the present disclosure will be described below in detail through illustration of examples with reference to the drawings. All of the embodiments described below illustrate general or specific examples. Numeric values, configurations, materials, elements, and positions and connection states of the elements illustrated in the following embodiments are only examples and are not described for limiting the present disclosure. Among the elements illustrated in the following embodiments, the elements that are not recited in the independent claims will be described as optional elements. The sizes and dimensional ratios of the elements in the drawings are not necessarily illustrated as actual sizes and ratios. In the drawings, substantially the same elements are designated by like reference numeral, and an explanation of such elements will not be repeated or be merely simplified.
First Embodiment
(11) A directional coupler according to a first embodiment will be described below.
(12) [1-1. Overall Configuration]
(13) The configuration of the directional coupler according to this embodiment will first be described below with reference to
(14) As shown in
(15) The main line 20, which is a line through which a radio-frequency signal is transmitted, can be electromagnetically coupled with the sub-line 40. That is, the main line 20 can be coupled with the sub-line 40 at least in one of the magnetic coupling mode and the capacitive coupling mode. In this embodiment, the main line 20 includes an input end portion 22, an output end portion 26, and a main wiring 24. The input end portion 22 is one end portion of the main line 20, while the output end portion 26 is the other end portion of the main line 20. The main wiring 24 links the input end portion 22 and the output end portion 26 with each other. The input end portion 22 and the output end portion 26 include, not only the corresponding ends of the main line 20, but also areas in the vicinities of these ends. More specifically, each of the input and output end portions 22 and 26 has an area having a distance of about the same size as the width of the main wiring 24 or smaller from its end.
(16) The sub-line 40 is a line which is at least partially disposed along the main line 20. The meaning of “the sub-line 40 is disposed along the main line 20” may be that the sub-line 40 is disposed along the main line 20 with substantially a certain distance therebetween or that the sub-line 40 is disposed substantially in parallel with the main line 20. “Substantially a certain distance” means that the allowance of the distance is 10% or smaller. “The sub-line 40 is disposed substantially in parallel with the main line 20” means that the allowance of the angle between the sub-line 40 and the main line 20 is 10° or smaller. In this embodiment, the sub-line 40 includes a first end portion 42, a second end portion 46, and a sub-wiring 44. The first end portion 42 is one end portion of the sub-line 40, while the second end portion 46 is the other end portion of the sub-line 40. The sub-wiring 44 links the first and second end portions 42 and 46 with each other. Part of a radio-frequency signal transmitted from the input end portion 22 to the output end portion 26 of the main line 20 is outputted from the first end portion 42. Part of a radio-frequency signal transmitted from the output end portion 26 to the input end portion 22 of the main line 20 is outputted from the second end portion 46. The first end portion 42 and the second end portion 46 include, not only the respective ends of the sub-line 40, but also areas in the vicinities of these ends. More specifically, each of the first and second end portions 42 and 46 has an area having a distance of about the same size as the width of the sub-wiring 44 or smaller from its end.
(17) The variable capacitor 60 is a capacitor device whose capacitance can be changed. In this embodiment, the variable capacitor 60 includes a control terminal 60t into which a control signal is inputted. The capacitance of the variable capacitor 60 is changed based on the control signal. The variable capacitor 60 includes first and second input/output electrodes 60a and 60b, which serve as connecting terminals with wiring, for example. That is, in the variable capacitor 60, the capacitance between the first and second input/output electrodes 60a and 60b can be changed. In this embodiment, the first input/output electrode 60a connects to the main wiring 24, while the second input/output electrode 60b connects to the sub-wiring 44. The detailed configuration of the variable capacitor 60 will be discussed later.
(18) In this manner, in this embodiment, the degree of coupling between the main line 20 and the sub-line 40 can be adjusted by the variable capacitor 60. Hence, even with factors that may vary the degree of coupling, a stable degree of coupling can be obtained. Additionally, in this embodiment, in response to a control signal from an external source, the capacitance of the variable capacitor 60 can be adjusted. In other words, in response to a control signal from an external source, the degree of coupling of the directional coupler 10 can be adjusted.
(19) In the directional coupler 10, to reduce variations in the degree of coupling caused by wiring to be connected to each of the input and output end portions 22 and 26 of the main line 20 and the first and second end portions 42 and 46 of the sub-line 40, each of these four end portions is disposed separately from the other three end portions as far as possible. For this reason, the variable capacitor 60 is connected between the main wiring 24 of the main line 20 and the sub-wiring 44 of the sub-line 40. The length of wiring between the variable capacitor 60 and the main line 20 and that between the variable capacitor 60 and the sub-line 40 can thus be made smaller, compared with when the variable capacitor 60 is connected to the other portions of the main line 20 and the sub-line 40, such as an end portion of the main line 20 and an end portion of the sub-line 40. Accordingly, parasitic inductance in the wiring can be reduced, which facilitates the adjustment of the degree of coupling of the directional coupler 10, thereby achieving an even stabler degree of coupling.
(20) As shown in
(21) The substrate 15 is a semiconductor substrate made of Si, for example. The insulating layers 16 through 19 are insulating films which are sequentially stacked on the substrate 15 to insulate plural wiring patterns from each other. Elements, such as the main line 20 and the sub-line 40, forming the directional coupler 10 are fabricated according to a known semiconductor process by forming multiple wiring layers on the substrate 15 with the insulating layers interposed therebetween. Materials for the multiple insulating layers 16 through 19 are not particularly restricted, and the insulating layers 16 through 19 may be made of the same material or different materials. If the multiple insulating layers 16 through 19 are made of the same material, the interfaces between adjacent insulating layers may become invisible. In
(22) As shown in
(23) The main line 20, the sub-line 40, and the variable capacitor 60 may be directly disposed on the substrate 15.
(24) As described above, the main line 20 is directly or indirectly disposed on the substrate 15 (in this embodiment, on the insulating layer 18 stacked above the substrate 15), and, in a plan view of the substrate 15, the variable capacitor 60 is disposed in a region sandwiched between the main line 20 and the sub-line 40. In other words, as shown in
(25) In the example in
(26) As shown in
(27) As shown in
(28) [1-2. Configuration of Variable Capacitor]
(29) The configuration of the variable capacitor 60 will now be described below with reference to
(30) In the variable capacitor 60 configured as shown in
(31) The capacitor elements of the variable capacitor 60 are not limited to a particular configuration. In this embodiment, each of the multiple capacitor elements of the variable capacitor 60 has a pair of opposing electrodes disposed on different layers among the multiple insulating layers 16 through 19 of the directional coupler 10. With this configuration, not only the main line 20 and the sub-line 40 of the directional coupler 10, but also the capacitor elements of the variable capacitor 60 are disposed within the insulating layers 16 through 19 on the substrate 15. This can further reduce the size of the directional coupler 10. Additionally, the distance between the variable capacitor 60 and each of the main line 20 and the sub-line 40 can be made smaller than when the variable capacitor 60 is disposed outside the plural insulating layers 16 through 19, thereby further reducing the length of the wiring 72 connecting the main line 20 and the variable capacitor 60 and that of the wiring 74 connecting the sub-line 40 and the variable capacitor 60. Accordingly, parasitic inductance in each of the wiring 72 and the wiring 74 can be reduced, which facilitates the adjustment of the degree of coupling of the directional coupler 10, thereby achieving an even stabler degree of coupling. Both of the opposing electrodes of each pair may be formed on one of the plural insulating layers 16 through 19.
(32) [1-3. Advantages]
(33) Advantages of the directional coupler 10 according to this embodiment will be described below with reference to
(34) The directional coupler of the comparative example is similar to the directional coupler 10 of this embodiment, except that it does not include the variable capacitor 60.
(35)
(36) In the simulations conducted for determining the frequency characteristics shown in
(37) In contrast, the directional coupler 10 of this embodiment achieves the target degree of coupling, as shown in
(38) In this manner, in the directional coupler 10 according to this embodiment, the degree of coupling between the main line 20 and the sub-line 40 can be adjusted by the variable capacitor 60. Hence, even with factors that may vary the degree of coupling, a stable degree of coupling can be obtained.
Second Embodiment
(39) A module according to a second embodiment will be described below. The module of this embodiment is a module integrating the directional coupler 10 of the first embodiment and a control circuit for controlling the directional coupler 10 with each other. The module of this embodiment will be explained below with reference to
(40)
(41) The control circuit 101 is a circuit that outputs a control signal for controlling the variable capacitor 60 of the directional coupler 10. More specifically, the control circuit 101 outputs a control signal to perform feedback control so that the actual value of the degree of coupling of the directional coupler 10 approaches the target value. The control circuit 101 may be an IC (Integrated Circuit) integrating this type of circuit. The control circuit 101 may store in advance a signal indicating the target value of the degree of coupling of the directional coupler 10. Alternatively, a signal indicating the target value may be inputted into the control circuit 101 from an external source.
(42) The control circuit 101 includes an input terminal 101a and an output terminal 101b. The input terminal 101a receives a signal indicating the actual value of the degree of coupling of the directional coupler 10, for example. The output terminal 101b outputs a control signal.
(43) The switch circuit 102a is a switch that switches between the connection/disconnection state between the first end portion 42 of the directional coupler 10 and a terminal 93 of the detection circuit 90. The switch circuit 102b is a switch that switches between the connection/disconnection states between the second end portion 46 of the directional coupler 10 and the terminal 93 of the detection circuit 90. The switch circuit 102a connects the first end portion 42 with the terminal 93 or one terminal of a terminating resistor 103a. The switch circuit 102b connects the second end portion 46 with the terminal 93 or one terminal of a terminating resistor 103b. The other terminals of the terminating resistors 103a and 103b are grounded. That is, as a result of operating the switch circuits 102a and 102b, when connecting the first end portion 42 to the terminal 93, the second end portion 46 is connected to the terminating resistor 103b, and when connecting the second end portion 46 to the terminal 93, the first end portion 42 is connected to the terminating resistor 103a.
(44) The detection circuit 90 is a circuit that detects the degree of coupling of the directional coupler 10. The detection circuit 90 includes terminals 91, 92, and 93 and an output terminal 95. The terminal 91 is connected to the input end portion 22 of the directional coupler 10, while the terminal 92 is connected to the output end portion 26 of the directional coupler 10. The terminal 93 is connected to the switch circuits 102a and 102b. The detection circuit 90 outputs a test signal from the terminal 91 to the input end portion 22 of the directional coupler 10, and detects the characteristics of the directional coupler 10 based on the intensity of the test signal and that of each of signals inputted into the terminals 92 and 93. In this embodiment, the detection circuit 90 detects the degree of coupling, based on the intensity of a test signal outputted from the terminal 91 to the input end portion 22 of the directional coupler 10 and the intensity of a signal inputted from the first end portion 42 of the directional coupler 10 into the terminal 93 via the switch circuit 102a. The detection circuit 90 then outputs a signal corresponding to the detected degree of coupling from the output terminal 95 to the input terminal 101a of the control circuit 101.
(45) The control circuit 101, the directional coupler 10, and the switch circuits 102a and 102b may be integrated into different ICs or into the same IC. If these elements are integrated into the same IC, the degree of coupling of the directional coupler 10 can be adjusted more easily than when they are integrated into different ICs.
(46) By the use of the above-described module 100 and detection circuit 90, the degree of coupling of the directional coupler 10 can approach the target value. The module 100 of this embodiment includes the control circuit 101 that outputs a control signal for controlling the variable capacitor 60. By outputting a control signal from the control circuit 101, the module 100 can adjust the capacitance of the variable capacitor 60. It is thus possible to implement the module 100 that achieves a stable degree of coupling even with factors that may vary the degree of coupling.
(47) Although the module 100 includes the switch circuits 102a and 102b in the above-described example discussed with reference to
Other Embodiments
(48) The directional coupler and the module according to the present disclosure have been discussed above through illustration of the embodiments. However, the present disclosure is not restricted to the above-described embodiments. Other embodiments implemented by combining certain elements in the above-described embodiments and modified examples obtained by making various modifications to the above-described embodiments by those skilled in the art without departing from the scope and spirit of the disclosure are also encompassed in the disclosure. Various devices integrating the directional coupler or the module according to the present disclosure are also encompassed in the disclosure.
(49) For example, in the first embodiment, the connection configuration and the positional arrangement of the variable capacitor 60 have been discussed through illustration of examples, but they are not restricted to these examples. Another example of the connection configuration and another example of the positional arrangement of the variable capacitor 60 will be discussed below with reference to FIG. 7.
(50) As shown in
(51) As shown in
(52) In the directional coupler 10a according to this modified example, too, the degree of coupling between the main line 20 and the sub-line 40 can be adjusted by the variable capacitor. Hence, even with factors that may vary the degree of coupling, a stable degree of coupling can be obtained.
(53) In the first embodiment, as the ON/OFF setting elements in the variable capacitor 60, switch elements are used. However, the ON/OFF setting elements are not limited to switch elements. An example of the configuration of a variable capacitor using ON/OFF setting elements other than switch elements will be explained below with reference to
(54) As shown in
(55) The directional coupler and the module according to the present disclosure can be used in wireless communication mobile terminals, such as smartphones and tablet terminals, as a directional coupler and a module that achieve a stable degree of coupling. 10, 10a directional coupler 15 substrate 16, 17, 18, 19 insulating layer 20 main line 22 input end portion 24 main wiring 26 output end portion 30, 50 via-hole wiring 40 sub-line 42 first end portion 44 sub-wiring 46 second end portion 60, 260 variable capacitor 60a first input/output electrode 60b second input/output electrode 60t control terminal 61c, 62c, 63c, 64c capacitor element 61s, 62s, 63s, 64s, 261s, 262s, 263s, 264s ON/OFF setting element 61t, 62t, 63t, 64t, 101a input terminal 72, 72a, 74, 74a wiring 80 capacitor 90 detection circuit 91, 92, 93 terminal 95, 101b output terminal 100 module 101 control circuit 102a, 102b switch circuit 103a, 103b terminating resistor