High-performance single-pole double-throw switch
Through the symmetrically designed single-pole double-throw switch, the port status is controlled by using the MOS tube to achieve low insertion loss and high isolation, solving the problems of high insertion loss and low isolation in the prior art, and improving the performance of the communication system.
Patent Information
- Application Number
- CN202510253004.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2025-07-22
AI Technical Summary
The existing single-pole double-throw switch has high insertion loss and low isolation in the communication system, which affects communication performance.
A high-performance single-pole double-throw switch is designed. Through the symmetrical structure of the receiving branch and the transmitting branch, the MOS tube is used to control the conduction state of the port, so that it works as a bandpass filtering network and a band-stop filtering network in the reception and transmission modes, respectively, to achieve low insertion loss and high isolation.
In the frequency range of 70GHz to 110GHz, low insertion loss and high isolation are achieved, improving the performance and reliability of wireless communication systems.
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Figure CN120357882A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of wireless communication technologies, and particularly to a high-performance single-pole double-throw switch. Background Art
[0002] In a communication system, a communication device needs to switch between different communication frequency bands and receive / transmit modes to adapt to diverse communication requirements. However, in a communication system, implementing the switching between receive and transmit modes requires a large number of circuit components, and the signal transmission loss is high, affecting the communication quality and efficiency.
[0003] Currently, related technologies use a single-pole double-throw switch to share an antenna port to implement the switching between receive and transmit modes of a communication system, effectively reducing the number of circuit components and ensuring the directional propagation of signals. However, the insertion loss of this switch is relatively high and the isolation is relatively low, affecting the communication performance of the communication system. Therefore, how to provide a high-performance single-pole double-throw switch that can achieve low insertion loss and high isolation is a technical problem to be urgently solved. Summary of the Invention
[0004] The main objective of the embodiments of this application is to propose a high-performance single-pole double-throw switch that can achieve low insertion loss and high isolation.
[0005] The high-performance single-pole double-throw switch proposed by the embodiments of this application includes:
[0006] A receiving branch, the receiving branch includes a first coupling coil, a second coupling coil, and a first control unit. The first coupling coil is coupled to the second coupling coil. The first coupling coil is provided with a first port and a fourth port, the second coupling coil is provided with a second port and a third port. The first port is coupled to the second port, the fourth port is coupled to the third port. The first port is in an open state. The second port is used to be electrically connected to an antenna unit. The third port is electrically connected to the first control unit. The first control unit is used to control the conduction state of the third port. The fourth port is used to be connected to a signal receiving unit;
[0007] The transmitting branch, the transmitting branch includes a third coupling coil, a fourth coupling coil and a second control unit, the third coupling coil is coupled to the fourth coupling coil, the third coupling coil is provided with a fifth port and an eighth port, the fourth coupling coil is provided with a sixth port and a seventh port, the fifth port is coupled to the sixth port, the eighth port is coupled to the seventh port, the fifth port is in an open state, the sixth port is used to be electrically connected to the antenna unit, the seventh port is electrically connected to the second control unit, the second control unit is used to control the conduction state of the seventh port, and the eighth port is used to be connected to the signal transmitting unit.
[0008] In some embodiments, the first control unit includes a first MOS transistor, the source of the first MOS transistor is grounded, the gate of the first MOS transistor is electrically connected to a first control power supply, and the drain of the first MOS transistor is electrically connected to the third port.
[0009] In some embodiments, the second control unit includes a second MOS transistor, the source of the second MOS transistor is grounded, the gate of the second MOS transistor is electrically connected to a second control power supply, and the drain of the second MOS transistor is electrically connected to the seventh port.
[0010] In some embodiments, in the receiving mode, the first control unit is used to control the conduction state of the third port to be conductive, the second control unit is used to control the conduction state of the seventh port to be cutoff, and the receiving branch is used to transmit the signal from the second port to the fourth port.
[0011] In some embodiments, in the transmitting mode, the first control unit is used to control the conduction state of the third port to be cutoff, the second control unit is used to control the conduction state of the seventh port to be conductive, and the transmitting branch is used to transmit the signal from the eighth port to the sixth port.
[0012] In some embodiments, the receiving branch and the transmitting branch are symmetric about the antenna unit.
[0013] In some embodiments, the operating frequency range of the high-performance single-pole double-throw switch is from 70 GHz to 110 GHz.
[0014] In some embodiments, the signal receiving unit is used to receive E-band signals.
[0015] In some embodiments, the high-performance single-pole double-throw switch is of a metal wall structure.
[0016] In some embodiments, the first coupling coil, the second coupling coil, the third coupling coil and the fourth coupling coil are disposed in a local interconnect dielectric layer in the metal wall structure.
[0017] The high-performance single-pole double-throw switch proposed in this application connects the first control unit to the third port of the second coupling coil, and the second control unit to the seventh port of the fourth coupling coil. The first port and the fifth port are kept open. The second port and the eighth port are used to connect the antenna unit. The fourth port is connected to the signal receiving unit, and the eighth port is connected to the signal transmitting unit. The first control unit is used to control the conduction state of the third port. The second control unit is used to control the conduction state of the seventh port. Compared with the related technology, when the conduction state of the first control unit or the second control unit is on, the third port or the seventh port is equivalent to an open circuit, and the receiving branch or the transmitting branch can operate as a band-pass filter network. In this case, the signal will be completely transmitted. When the conduction state of the first control unit or the second control unit is off, the third port or the seventh port is equivalent to a short circuit, and the receiving branch or the transmitting branch can operate as a band-stop filter network. No signal is transmitted from the antenna unit to the fourth port, or from the eighth port to the antenna unit, providing the required high isolation. Therefore, the high-performance single-pole double-throw switch proposed in this application can achieve low insertion loss and high isolation. Description of the Drawings
[0018] Figure 1A and Figure 1B is a schematic structural diagram of a high-performance single-pole double-throw switch provided by an embodiment of this application;
[0019] Reference Signs:
[0020] Antenna unit 100;
[0021] Receiving branch 110, first coupling coil 111, second coupling coil 112, first control unit 113;
[0022] Transmitting branch 120, third coupling coil 121, fourth coupling coil 122, second control unit 123;
[0023] Signal receiving unit 130;
[0024] Signal transmitting unit 140;
[0025] First port 1111, second port 1121, third port 1122, fourth port 1112;
[0026] Fifth port 1211, sixth port 1221, seventh port 1222, eighth port 1212;
[0027] Figure 2 is a schematic structural analysis diagram of a high-performance single-pole double-throw switch provided by an embodiment of this application;
[0028] Figure 3 It is a schematic diagram when a high-performance single-pole double-throw switch provided by an embodiment of the present application is turned on;
[0029] Figure 4 It is a graph of the insertion loss results of a high-performance single-pole double-throw switch provided by an embodiment of the present application;
[0030] Figure 5 It is a graph of the isolation results of a high-performance single-pole double-throw switch provided by an embodiment of the present application. Detailed implementation manners
[0031] The embodiments of the present application will be described in detail below. Examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by referring to the accompanying drawings are exemplary only for explaining the present application and should not be construed as limiting the present application.
[0032] In modern communication systems, communication devices need to quickly switch between different frequency bands and receive / transmit modes to meet diverse communication requirements. This switching ability is crucial for improving the flexibility and efficiency of the system. However, implementing mode switching usually requires a large number of circuit components, which not only increases the system complexity and cost but may also cause signal transmission losses, affecting communication quality and efficiency.
[0033] In the field of communication, a single-pole double-throw switch can enable the receiving branch and the transmitting branch to share a single antenna unit, which can not only reduce the number of circuit components and save costs but also ensure the directional propagation of signals. The insertion loss of the single-pole double-throw switch affects the sensitivity of the receiving branch and the power efficiency of the transmitting branch, and the isolation of the single-pole double-throw switch prevents high-power signals in the transmitting branch from leaking and damaging the receiving branch. Therefore, the performance of the single-pole double-throw switch directly affects the performance of the radio frequency transceiver system. However, as the operating frequency exceeds 60 GHz, it is difficult for the insertion loss and isolation of single-pole double-throw switches in the E-band and above bands to meet the actual requirements. Therefore, how to provide a high-performance single-pole double-throw switch that can achieve low insertion loss and high isolation is a technical problem to be solved urgently.
[0034] The following will combine Figure 1A and Figure 1B to clearly and completely describe a high-performance single-pole double-throw switch provided by an embodiment of the present application. Obviously, the following described embodiments are part of the embodiments of the present application, not all embodiments.
[0035] Referring to Figure 1A and Figure 1B , Figure 1A and Figure 1BIt is a schematic structural diagram of a high-performance single-pole double-throw switch provided by an embodiment of the present application. It includes:
[0036] A receiving branch 110, the receiving branch 110 includes a first coupling coil 111, a second coupling coil 112 and a first control unit 113. The first coupling coil 111 is coupled to the second coupling coil 112. The first coupling coil 111 is provided with a first port 1111 and a fourth port 1112. The second coupling coil 112 is provided with a second port 1121 and a third port 1122. The first port 1111 and the second port 1121 are coupled. The fourth port 1112 and the third port 1122 are coupled. The first port 1111 is in an open state. The second port 1121 is used to be electrically connected to the antenna unit 100. The third port 1122 is electrically connected to the first control unit 113. The first control unit 113 is used to control the conduction state of the third port 1122. The fourth port 1112 is used to be connected to the signal receiving unit 130.
[0037] A transmitting branch 120, the transmitting branch 120 includes a third coupling coil 121, a fourth coupling coil 122 and a second control unit 123. The third coupling coil 121 is coupled to the fourth coupling coil 122. The third coupling coil 121 is provided with a fifth port 1211 and an eighth port 1212. The fourth coupling coil 122 is provided with a sixth port 1221 and a seventh port 1222. The fifth port 1211 and the sixth port 1221 are coupled. The eighth port 1212 and the seventh port 1222 are coupled. The fifth port 1211 is in an open state. The sixth port 1221 is used to be electrically connected to the antenna unit 100. The seventh port 1222 is electrically connected to the second control unit 123. The second control unit 123 is used to control the conduction state of the seventh port 1222. The eighth port 1212 is used to be connected to the signal transmitting unit 140.
[0038] In some embodiments of the present application, the high-performance single-pole double-throw switch includes a receiving branch 110 and a transmitting branch 120. Among them, the receiving branch 110 is used to transmit the signal received by the antenna unit 100 to the signal receiving unit 130. The transmitting branch 120 is used to transmit the signal of the signal transmitting unit 140 to the antenna unit 100. In a wireless communication system, the high-performance single-pole double-throw switch can quickly switch between the receiving mode and the transmitting mode through the receiving branch 110 and the transmitting branch 120, ensuring the efficient operation of the antenna unit 100 in different modes, and at the same time avoiding signal interference and loss.
[0039] In some embodiments of the present application, the receiving branch 110 includes a first coupling coil 111, a second coupling coil 112, and a first control unit 113. Among them, the first coupling coil 111 and the second coupling coil 112 can be microstrip line couplers, spiral coupling coils, or other types of coupling coil structures, and are not specifically limited. The first coupling coil 111 and the second coupling coil 112 are used to realize the coupled transmission of signals between the second port 1121 and the fourth port 1112. The first coupling coil 111 and the second coupling coil 112 are connected through electromagnetic coupling. The first control unit 113 can be a MOS transistor, a BJT transistor, or other types of electronic switching devices, and is not specifically limited. The first control unit 113 is used to control the conduction state of the third port 1122. Among them, the conduction state includes conduction and cut-off.
[0040] It should be noted that the first coupling coil 111 is provided with a first port 1111 and a fourth port 1112, and the first port 1111 and the fourth port 1112 are arranged at both ends of the first coupling coil 111. The first port 1111 is in an open state, and the fourth port 1112 is used to connect to the signal receiving unit 130. Among them, the signal receiving unit 130 can be a low-noise amplifier, a filter, or other types of receiving circuits, and is not specifically limited. The signal receiving unit 130 is used to receive and process signals.
[0041] It should be noted that the second coupling coil 112 is provided with a second port 1121 and a third port 1122, and the second port 1121 and the third port 1122 are arranged at both ends of the second coupling coil 112. The second port 1121 is used to be electrically connected to the antenna unit 100, and the third port 1122 is electrically connected to the first control unit 113. Among them, the antenna unit 100 can be a dipole antenna, a microstrip antenna, or other types of antennas, and is not specifically limited. The antenna unit 100 is used for the transmission and reception of wireless signals.
[0042] In some embodiments of the present application, the transmitting branch 120 includes a third coupling coil 121, a fourth coupling coil 122, and a second control unit 123. Among them, the third coupling coil 121 and the fourth coupling coil 122 can be microstrip line couplers, spiral coupling coils, or other types of coupling coil structures, and are not specifically limited. The third coupling coil 121 and the fourth coupling coil 122 are connected through electromagnetic coupling and are used to realize the coupled transmission of signals between the eighth port 1212 and the sixth port 1221. The second control unit 123 can be a MOS transistor, a BJT transistor, or other types of electronic switching devices, and is not specifically limited. The second control unit 123 is used to control the conduction state of the seventh port 1222. Among them, the conduction state includes conduction and cut-off.
[0043] It should be noted that the third coupling coil 121 is provided with a fifth port 1211 and an eighth port 1212, and the fifth port 1211 and the eighth port 1212 are arranged at both ends of the third coupling coil 121. The fifth port 1211 is in an open state, and the eighth port 1212 is used to connect to the signal transmitting unit 140. Among them, the signal transmitting unit 140 can be a power amplifier, a modulator or other types of transmitting circuits, and is not specifically limited. The signal transmitting unit 140 is used to transmit and process signals.
[0044] It should be noted that the fourth coupling coil 122 is provided with a sixth port 1221 and a seventh port 1222, and the sixth port 1221 and the seventh port 1222 are arranged at both ends of the fourth coupling coil 122. The sixth port 1221 is used to be electrically connected to the antenna unit 100. The seventh port 1222 is electrically connected to the second control unit 123.
[0045] In some embodiments of the present application, referring to Figure 1A and Figure 1B , the first control unit includes a first MOS transistor. The source of the first MOS transistor is grounded, the gate of the first MOS transistor is electrically connected to the first control power supply, and the drain of the first MOS transistor is electrically connected to the third port. Among them, the first MOS transistor can be an NMOS transistor or a PMOS transistor, specifically depending on the requirements of the circuit design and the polarity of the operating voltage. The first control power supply can be a DC power supply or a pulse power supply, and is not specifically limited. The first control power supply is used to provide a gate voltage for the first MOS transistor to control the conduction or cut-off of the first MOS transistor. For example, in an actual circuit design, the first control power supply can be a +5V DC power supply to control the conduction of the NMOS transistor; or it can be a -5V DC power supply to control the conduction of the PMOS transistor.
[0046] It should be noted that when the first control power supply controls the first MOS transistor to conduct, the third port is equivalent to an open circuit, thereby realizing signal transmission. When the first control power supply controls the first MOS transistor to cut off, the third port is equivalent to a short circuit, thereby blocking signal transmission.
[0047] In some embodiments of the present application, referring to Figure 1A and Figure 1B, the second control unit includes a second MOS transistor. The source of the second MOS transistor is grounded, the gate of the second MOS transistor is electrically connected to the second control power supply, and the drain of the second MOS transistor is electrically connected to the seventh port. Among them, the second MOS transistor can be an NMOS transistor or a PMOS transistor, specifically depending on the requirements of the circuit design and the polarity of the operating voltage. The second control power supply can be a DC power supply or a pulse power supply, and is not specifically limited. The second control power supply is used to provide a gate voltage for the second MOS transistor to control the conduction or cut-off of the second MOS transistor. For example, in an actual circuit design, the second control power supply can be a +6V DC power supply for controlling the NMOS transistor to conduct; or it can be a -6V DC power supply for controlling the PMOS transistor to conduct.
[0048] It should be noted that when the second control power supply controls the second MOS transistor to conduct, the seventh port is equivalent to an open circuit, thereby realizing signal transmission; when the second control power supply controls the second MOS transistor to cut off, the seventh port is equivalent to a short circuit, thereby blocking signal transmission.
[0049] In some embodiments of the present application, referring to Figure 1A and Figure 1B , in the receiving mode, the first control unit is used to control the conduction state of the third port to be conductive. At this time, the receiving branch can be used as a band-pass filter network to control the signal transmission between the second port and the fourth port. The second control unit is used to control the conduction state of the seventh port to be cut off. At this time, the transmitting branch can be used as a band-stop filter network to block the signal transmission between the eighth port and the sixth port.
[0050] In some embodiments of the present application, referring to Figure 1A and Figure 1B , in the transmitting mode, the first control unit is used to control the conduction state of the third port to be cut off. At this time, the receiving branch can be used as a band-stop filter network to block the signal transmission between the second port and the fourth port. The second control unit is used to control the conduction state of the seventh port to be conductive. At this time, the transmitting branch can be used as a band-pass filter network to control the signal transmission between the eighth port and the sixth port.
[0051] In some embodiments of the present application, referring to Figure 1A and Figure 1B , the receiving branch and the transmitting branch are symmetric about the antenna unit. Specifically, the first coupling coil and the third coupling coil are symmetric about the antenna unit, and the second coupling coil and the fourth coupling coil are symmetric about the antenna unit. In addition, the first control unit and the second control unit are also symmetric about the antenna unit in terms of position.
[0052] It should be noted that in the embodiments of the present application, the symmetric design makes the structures and functions of the receiving branch and the transmitting branch similar, thereby simplifying the circuit design and manufacturing process and reducing the manufacturing cost. The symmetric design of the embodiments of the present application enables only one branch to be debugged, and the other branch can refer to the same parameters and settings.
[0053] In some embodiments of the present application, referring to Figure 1A and Figure 1B , the operating frequency range of the high-performance single-pole double-throw switch is 70 GHz to 110 GHz, the insertion loss is 1.9 dB, and the isolation is 21 dBm. The high-performance single-pole double-throw switch of the embodiments of the present application has the characteristics of low insertion loss and high isolation in the frequency range of 70 GHz to 110 GHz, and can effectively improve the performance and reliability of the wireless communication system.
[0054] In some embodiments of the present application, referring to Figure 1A and Figure 1B , the signal receiving unit is used to receive E-band signals. After receiving the E-band signals, the signal receiving unit can convert them into electrical signals for subsequent processing. The E-band (Electronically Controlled Band) refers to the frequency band ranging from 60 GHz to 90 GHz. The E-band has important application values in wireless communication. For example, in 5G millimeter-wave communication, the E-band can provide communication links with high data rates and low latency, support large-scale antenna arrays and beamforming technologies, thereby significantly improving network capacity and user experience. In addition, in the field of satellite communication, the E-band is used to implement high-data-rate satellite links, support satellite broadband communication and high-speed transmission of earth observation data, and meet the growing satellite communication requirements.
[0055] In some embodiments of the present application, referring to Figure 1A and Figure 1B , the high-performance single-pole double-throw switch has a metal wall structure. The metal wall structure is a shielding structure, usually composed of multiple metal layers. The metal wall structure is used to achieve electromagnetic shielding and signal isolation, can effectively reduce the crosstalk between different signal paths, and improve the isolation and signal transmission efficiency of the single-pole double-throw switch.
[0056] It should be noted that the metal layer structure refers to the conductive layer structure formed by multi-layer metal interconnection technology in the integrated circuit manufacturing process. Each metal layer is used to achieve specific signal transmission and shielding functions. Through the stacking and interconnection of multiple metal layers, complex circuit functions and efficient signal transmission can be achieved.
[0057] It should be noted that the metal wall structure of the embodiments of the present application can be implemented by a Complementary Metal-Oxide-Semiconductor (CMOS) process. The metal wall structure implemented by the CMOS process includes eight metal layers, which are, from the inside to the outside, the first metal layer (Metal Layer 1, M1 layer), the second metal layer (Metal Layer 2, M2 layer), the third metal layer (Metal Layer 3, M3 layer), the fourth metal layer (Metal Layer 4, M4 layer), the upper layer (Upper Layer, UA layer), the output layer (Output Layer, OA layer), the output block layer (Output Block Layer, OB layer), and the local interconnect dielectric layer (Local Interconnect Dielectric Layer, LD layer). Among them, the M1 layer is used for the wiring of DC signals, the M2 and M3 metal layers are used in combination to form a ground layer, and the LD layer is used to implement the transmission line and is the topmost metal layer in the metal wall structure. The M4 layer, OB layer, OA layer, and UA layer are stacked with other layers to form the metal wall structure.
[0058] In some embodiments of the present application, referring to Figure 1A and Figure 1B , the first coupling coil, the second coupling coil, the third coupling coil, and the fourth coupling coil are disposed in the local interconnect dielectric layer (Local Interconnect Dielectric Layer, LD layer) in the metal wall structure. Disposing the first coupling coil, the second coupling coil, the third coupling coil, and the fourth coupling coil in the LD layer can reduce the loss and interference during signal transmission, improve the signal transmission efficiency, simplify the wiring design, and optimize the transmission performance of high-frequency signals.
[0059] The high-performance single-pole double-throw switch of the embodiments of the present application has a structure that is symmetric about the left and right of the antenna unit. Therefore, for the sake of simplicity in analysis, half of the structure is extracted for theoretical analysis. Referring to Figure 2 , Figure 2 is a schematic diagram of the structural analysis of a high-performance single-pole double-throw switch provided by the embodiments of the present application.
[0060] Assume that the voltages and currents at port 1 (i.e., the first port of the receiving branch or the fifth port of the transmitting branch) of the coupled coil structure (i.e., the first coupled coil and the second coupled coil, or the third coupled coil and the fourth coupled coil) can be written as V1 and I1, those at port 2 (i.e., the second port of the receiving branch or the sixth port of the transmitting branch) can be written as V2 and I2, those at port 3 (i.e., the third port of the receiving branch or the seventh port of the transmitting branch) can be written as V3 and I3, and those at port 4 (i.e., the fourth port of the receiving branch or the eighth port of the transmitting branch) can be written as V4 and I4. The impedance matrix of the coupled coil with all ports open can be expressed by the following formula (1):
[0061]
[0062] Where, Z 11 = Z 22 = Z 33 = Z 44 = -j / 2(Z oe + Z oo ) cotθ, Z 12 = Z 21 = Z 34 = Z 43 = -j / 2(Z oe - Z oo ) cotθ, Z 13 = Z 31 = Z 24 = Z 42 = -j / 2(Z oe - Z oo ) cscθ, Z 14 = Z 41 = Z 23 = Z 32 = -j / 2(Z oe + Z oo ) cscθ, Z oe represents the even-mode impedance, Z oo represents the odd-mode impedance, j represents the imaginary unit, and θ represents the phase change during signal transmission.
[0063] The control unit (i.e., the first control unit or the second control unit) is bridged between port 3 of the coupled coil (i.e., the second coupled coil or the fourth coupled coil) and the ground, and port 1 remains open. Port 2 is used to connect to the antenna unit (Antenna, ANT), and port 4 is used to connect to the signal transmitting unit or the signal receiving unit. When the control unit is in the "on" or "off" state, the signal path between port 2 and port 4 will be connected or disconnected.
[0064] When the control unit is in the "on" state, port 3 is open, and I1 = I3 = 0. Therefore, the impedance matrix equations for ports 2 and 4 will be simplified to the following formulas (2) and (3):
[0065] V2 = Z 22 I2 + Z 22 I2 (2)
[0066] V4 = Z 24 I2 + Z 44 I4 (3)
[0067] Furthermore, the impedance at ports 2 and 4 of the coupling coil (i.e., the first coupling coil or the third coupling coil) can be expressed as the following formula (4):
[0068]
[0069] where i represents 2 or 4.
[0070] When Z oe and Z oo are selected as 100 Ω and 25 Ω respectively, it can be found from Figure 3 that when θ1 < θ < θ2 (θ1 is the left endpoint of the abscissa of the curve in Figure 3 , θ2 is the right endpoint of the abscissa of the curve in Figure 3 ), the value of Z iT is greater than 0, and the peak appears at the center frequency point (θ = 90°). Therefore, when the electrical length of the coupling coil structure (i.e., the first coupling coil and the second coupling coil, or the third coupling coil and the fourth coupling coil) is a quarter wavelength and the input impedance is matched with Z iT , this structure can operate as a band-pass filter network, and in this case, the signal will be completely transmitted.
[0071] When the control unit is in the "off" state, port 3 will be short-circuited to the ground, I1 = 0 and V3 = 0. The impedance at ports 2 and 4 can be expressed as the following formulas (5) and (6):
[0072]
[0073] Since Z i2 and Z i4 are pure imaginary numbers, the impedance at ports 2 and 4 is equal to 0 at any θ. Therefore, when the control unit is in the "off" state, the high-performance single-pole double-throw switch of the present application embodiment can operate as a band-stop filter network. In this case, no signal passes from the signal receiving unit to the antenna unit, or no signal passes from the signal transmitting unit to the antenna unit, providing the required high isolation for the single-pole double-throw switch.
[0074] Refer toFigure 3 , Figure 3 is a schematic diagram of the conduction of a high-performance single-pole double-throw switch provided by an embodiment of the present application, showing the working principle that when the control unit is in the "conducting" state, the third port or the seventh port is equivalent to an open circuit. Specifically, the abscissa is the normalized electrical length (θ / π), ranging from 0 to 3.5, corresponding to the theoretical analysis range of the electrical length θ of the coupling coil from 0 to 3.5π. The ordinate is the modulus of the equivalent impedance (unit: Ω), ranging from 0 to 35, reflecting the dynamic change of the port impedance with the electrical length. Figure 3 The curve in shows that when the electrical length θ approaches a quarter wavelength (corresponding to θ = π / 2, that is, at about 0.5 on the abscissa), the impedance matching reaches the optimal value (about 17.5 Ω, corresponding to the middle value of the ordinate). At this time, the switch acts as a band-pass filter network, with the highest signal transmission efficiency and the smallest insertion loss.
[0075] Reference Figure 4 , Figure 4 is a graph of the insertion loss results of a high-performance single-pole double-throw switch provided by an embodiment of the present application. Specifically, the abscissa is the actual operating frequency (70 GHz - 110 GHz, unit: GHz), covering the E band. The ordinate is divided into two parts: the left main vertical axis (range: 0 to -10 dB) corresponds to the insertion loss (S21 parameter), reflecting the transmission efficiency of the signal from the antenna unit to the signal transmitting or signal receiving unit. The lower the value, the smaller the loss. The right secondary vertical axis (range: 10 dB to -50 dB) corresponds to the input or output port reflection coefficient (S11 and S22 parameters), reflecting the impedance matching degree. The closer the value is to negative infinity, the better the performance. Figure 4 A total of 6 curves are included in , which are divided into two categories: simulation results (Simulation Results, sim), represented by dashed lines. Measurement results (Measurement Results, mea), represented by solid lines. Each curve corresponds to different parameters, specifically: sim S21 (simulated insertion loss), sim S11 (simulated input port reflection coefficient), sim S22 (simulated output port reflection coefficient), mea S21 (measured insertion loss), mea S11 (measured input port reflection coefficient), mea S22 (measured output port reflection coefficient). By comparing the simulated and measured curves, it can be seen that the trends of the two are highly consistent within the E band, indicating that the theoretical model is accurate and reliable, and verifying the core advantages of the high-performance single-pole double-throw switch provided by the embodiment of the present application, which has both low insertion loss and excellent impedance matching under conduction.
[0076] Reference Figure 5 , Figure 5It is the isolation result diagram of a high-performance single-pole double-throw switch provided by an embodiment of the present application, specifically including: the abscissa in the figure is the actual operating frequency (70 GHz - 110 GHz, unit: GHz), covering the E band. The ordinate is divided into two parts: the left main vertical axis (range: 0 to -30 dB) corresponds to the isolation (S21 parameter), which reflects the blocking ability of the signal from the transmitting / receiving end to the antenna end. The higher the value, the less the leakage; the right secondary vertical axis (range: 10 dB to -40 dB) corresponds to the reflection coefficient of the input or output port (S11 / S22 parameter), which reflects the impedance mismatch degree of the port in the closed state. The value closer to 0 dB indicates the worse the matching. Figure 5 There are a total of 6 curves, divided into two categories: simulation results (sim), represented by dashed lines. Measured results (mea), represented by solid lines. Each curve corresponds to different parameters, specifically: sim S21 (simulated isolation), sim S11 (simulated input port reflection coefficient), sim S22 (simulated output port reflection coefficient), mea S21 (measured isolation), mea S11 (measured input port reflection coefficient), mea S22 (measured output port reflection coefficient). By comparing the simulated and measured curves, it can be seen that the trends of the two are consistent within the E band, indicating that the theoretical model is accurate and reliable, and verifying the core advantages of the high-performance single-pole double-throw switch provided by the embodiment of the present application, which has both high isolation and impedance mismatch characteristics under cut-off.
[0077] The embodiments described in the embodiments of the present application are for more clearly explaining the technical solutions of the embodiments of the present application, and do not constitute a limitation on the technical solutions provided by the embodiments of the present application. Those skilled in the art know that with the evolution of technology and the emergence of new application scenarios, the technical solutions provided by the embodiments of the present application are equally applicable to similar technical problems.
[0078] In the description of the present application, it should be understood that the orientation or positional relationship indicated by terms such as up and down, etc., is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present application.
[0079] In the description of the present application, "multiple" means more than two. If there is a description of first and second, it is only for the purpose of distinguishing technical features, and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features or implicitly indicating the sequence relationship of the indicated technical features.
[0080] In the description of the present application, unless otherwise clearly defined, terms such as "set", "install", "connect", etc. should be understood in a broad sense, and those skilled in the art can reasonably determine the specific meanings of the above terms in the present application in combination with the specific content of the technical solution.
[0081] The preferred embodiments of the embodiments of the present application have been described above with reference to the accompanying drawings. This does not limit the scope of the rights of the embodiments of the present application. Any modifications, equivalent replacements, and improvements made by those skilled in the art without departing from the scope and essence of the embodiments of the present application shall fall within the scope of the rights of the embodiments of the present application.
Claims
1. A high-performance single-pole double-throw switch, characterized in that, Comprising: A receiving branch, the receiving branch includes a first coupling coil, a second coupling coil and a first control unit. The first coupling coil is coupled to the second coupling coil. The first coupling coil is provided with a first port and a fourth port, the second coupling coil is provided with a second port and a third port. The first port and the second port are coupled, the fourth port and the third port are coupled. The first port is in an open state. The second port is used for electrical connection with an antenna unit. The third port is electrically connected to the first control unit. The first control unit is used to control the conduction state of the third port. The fourth port is used for connection with a signal receiving unit; A transmitting branch, the transmitting branch includes a third coupling coil, a fourth coupling coil and a second control unit. The third coupling coil is coupled to the fourth coupling coil. The third coupling coil is provided with a fifth port and an eighth port, the fourth coupling coil is provided with a sixth port and a seventh port. The fifth port and the sixth port are coupled, the eighth port and the seventh port are coupled. The fifth port is in an open state. The sixth port is used for electrical connection with an antenna unit. The seventh port is electrically connected to the second control unit. The second control unit is used to control the conduction state of the seventh port. The eighth port is used for connection with a signal transmitting unit.
2. The high-performance single-pole double-throw switch according to claim 1, wherein The first control unit includes a first MOS transistor, the source of the first MOS transistor is grounded, the gate of the first MOS transistor is electrically connected to a first control power supply, and the drain of the first MOS transistor is electrically connected to the third port.
3. The high-performance single-pole double-throw switch according to claim 1, wherein The second control unit includes a second MOS transistor, the source of the second MOS transistor is grounded, the gate of the second MOS transistor is electrically connected to a second control power supply, and the drain of the second MOS transistor is electrically connected to the seventh port.
4. The high-performance single-pole double-throw switch according to any one of claims 1 to 3, characterized in that In the receiving mode, the first control unit is used to control the conduction state of the third port to be conductive, the second control unit is used to control the conduction state of the seventh port to be cut off, and the receiving branch is used to transmit a signal from the second port to the fourth port.
5. The high-performance single-pole double-throw switch according to any one of claims 1 to 3, characterized in that In the transmitting mode, the first control unit is used to control the conduction state of the third port to be cut off, the second control unit is used to control the conduction state of the seventh port to be conductive, and the transmitting branch is used to transmit a signal from the eighth port to the sixth port.
6. The high-performance single-pole double-throw switch according to any one of claims 1 to 3, characterized in that, The receiving branch and the transmitting branch are symmetric with respect to the antenna unit.
7. The high-performance single-pole double-throw switch according to claim 1, wherein, The operating frequency range of the high-performance single-pole double-throw switch is 70 GHz to 110 GHz.
8. The high-performance single-pole double-throw switch according to claim 1, wherein The signal receiving unit is used to receive E-band signals.
9. The high-performance single-pole double-throw switch according to claim 1, wherein The high-performance single-pole double-throw switch is of a metal wall structure.
10. The high-performance single-pole double-throw switch according to claim 9, characterized in that, The first coupling coil, the second coupling coil, the third coupling coil and the fourth coupling coil are arranged in a local interconnect dielectric layer in the metal wall structure.