BROADBAND TERAHERTZ FOURTH-HARMONIC MIXER CIRCUIT, MIXER AND METHOD
20230344385 · 2023-10-26
Assignee
Inventors
- Jianqin DENG (Qingdao, CN)
- Fushun NIAN (Qingdao, CN)
- Wanshun JIANG (Qingdao, CN)
- Mo WANG (Qingdao, CN)
- Xiang ZHU (Qingdao, CN)
- Haiming XIN (Qingdao, CN)
- Dinghong JIA (Qingdao, CN)
- Shengzhou ZHANG (Qingdao, CN)
- Zhuo CHEN (Qingdao, CN)
Cpc classification
International classification
Abstract
A broadband terahertz fourth-harmonic mixer circuit, a mixer and a method wherein the broadband terahertz fourth-harmonic mixer circuit includes a radio frequency signal coupled transmission unit, nonlinear device, local oscillator filter, local oscillator signal coupled transmission unit and intermediate frequency filter unit which are sequentially connected; and further includes a radio frequency input port, local oscillator input port and intermediate frequency output port, where the radio frequency input port is connected to the radio frequency signal coupled transmission unit, the local oscillator input port is connected to the local oscillator signal coupled transmission unit, the intermediate frequency output port is connected to an output end of the intermediate frequency filter unit, and the local oscillator filter is of a two-level cascaded filter structure.
Claims
1. A broadband terahertz fourth-harmonic mixer circuit, comprising a radio frequency signal coupled transmission unit, a nonlinear device, a local oscillator filter, a local oscillator signal coupled transmission unit and an intermediate frequency filter unit which are sequentially connected; and further comprising a radio frequency input port, a local oscillator input port and an intermediate frequency output port, wherein the radio frequency input port is connected to the radio frequency signal coupled transmission unit, the local oscillator input port is connected to the local oscillator signal coupled transmission unit, the intermediate frequency output port is connected to an output end of the intermediate frequency filter unit, and the local oscillator filter is of a two-level cascaded filter structure.
2. The terahertz fourth-harmonic mixer circuit according to claim 1, wherein a cutoff frequency of two-level cascaded filters is 125 GHz and 250 GHz respectively.
3. The terahertz fourth-harmonic mixer circuit according to claim 1, wherein the radio frequency signal coupled transmission unit is connected to a radio frequency probe for grounding, and near ends of nonlinear anti-parallel diodes are grounded.
4. The terahertz fourth-harmonic mixer circuit according to claim 1, wherein the local oscillator filter and an intermediate frequency filter each adopt a Harmmer head filter.
5. The terahertz fourth-harmonic mixer circuit according to claim 1, wherein the radio frequency input port and the local oscillator input port each adopt a waveguide transmission line structure.
6. A broadband terahertz fourth-harmonic mixer, comprising the mixer circuit according to claim 1, wherein the mixer circuit is arranged on a substrate.
7. The terahertz fourth-harmonic mixer according to claim 6, wherein a minimum line width of a circuit conduction band is 10 microns; or, the substrate comprises, but is not limited to, one of a quartz substrate and a gallium arsenide substrate.
8. The terahertz fourth-harmonic mixer according to claim 6, wherein a frequency doubler and a frequency tripler constitute a local oscillator link and are matched with a first signal generator to generate local oscillator signals at a frequency band of 81.25 GHz-125 GHz.
9. The terahertz fourth-harmonic mixer according to claim 6, wherein radio frequency signals at a frequency band of 325 GHz-500 GHz are generated by a second signal generator and a source module at 325 GHz-500 GHz.
10. A working method of a broadband terahertz fourth-harmonic mixer, utilizing the terahertz fourth-harmonic mixer according to claim 6 and comprising the following steps: receiving the radio frequency signals at the frequency band of 325 GHz-500 GHz and the local oscillator signals at the frequency band of 81.25 GHz-125 GHz; grounding near ends of anti-parallel diodes for mixing to reduce ground loop influences and improve broadband matching characters; restraining a second harmonic, a third harmonic and a fourth harmonic in a local oscillator frequency through a two-level cascaded local oscillator filter; and outputting intermediate frequency signals through an intermediate frequency output port.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0031] The accompanying drawings constituting a part of the present disclosure are used to provide further understanding of the present disclosure. Exemplary embodiments of the present disclosure and descriptions thereof are used to explain the present disclosure, and do not constitute an improper limitation to the present disclosure.
[0032]
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[0039]
[0040]
[0041]
[0042] 101—Radio frequency input port; 102—local oscillator input port; 103—intermediate frequency output port; 104—radio frequency signal coupled transmission unit; 105—nonlinear device; 106—radio frequency low pass filter; 107—local oscillator signal coupled transmission unit; 108—intermediate frequency filter unit; 109—grounding probe;
[0043] 201—Radio frequency input port; 202—local oscillator input port; 203—intermediate frequency output port; 204—radio frequency signal coupled transmission unit; 205—nonlinear anti-parallel diode and match unit; 206—local oscillator filter; 207—local oscillator signal coupled transmission unit; 208—intermediate frequency filter unit; 209—grounding probe; 210—second GND; 211—first filter; 212—second filter; 213—diode; 214—intermediate frequency filter element;
[0044] 301—Frequency doubler; 302—frequency tripler; 303—fourth-harmonic mixer at 325 GHz-500 GHz; 304—intermediate frequency signal output end; 306—source module at 325 GHz-500 GHz; 307—spectrum analyzer; 308—first microwave signal generator; and 309—second microwave signal generator.
DETAILED DESCRIPTION
[0045] The present disclosure is further described below with reference to the accompanying drawings and embodiments.
[0046] It should be noted that the following detailed descriptions are all exemplary and are intended to provide a further description of the present disclosure. Unless otherwise specified, all technical and scientific terms used herein have the same meaning as commonly understood by a person of ordinary skill in the technical field to which the present disclosure belongs.
[0047] It should be noted that terms used herein are only for describing specific implementations and are not intended to limit exemplary implementations according to the present disclosure. As used herein, the singular form is intended to include the plural form, unless the context clearly indicates otherwise. In addition, it should further be understood that terms “comprise” and/or “include” used in this specification indicate that there are features, steps, operations, devices, components, and/or combinations thereof.
[0048] The embodiments in the present disclosure and features in the embodiments may be mutually combined in case that no conflict occurs.
Embodiment 1
[0049] The embodiment 1 of the present disclosure provides a broadband terahertz fourth-harmonic mixer.
[0050] Compared with a result based on
[0051] Specifically,
[0052]
[0053]
[0054] The terahertz fourth-harmonic mixer circuit provided by the embodiment, as shown in
[0055] As shown in
[0056] In addition, it should be particularly noted that according to the dual-ground structure design provided by the embodiment, one GND is close to diodes and is a second GND 210, and the other GND is a probe GND 209 on the radio frequency transmission unit shown in
[0057]
[0058]
[0059] It is to be understood that in some other implementations, the substrate may also be a gallium arsenide substrate, which can be selected by those skilled in the art according to specific working conditions, and thus unnecessary details are not given herein.
[0060] The fourth-harmonic mixer at 325 GHz-500 GHz designed according to the manner of the embodiment is tested as shown in
Embodiment 2
[0061] The embodiment 1 of the present disclosure provides a working method of a broadband terahertz fourth-harmonic mixer, which utilizes the terahertz fourth-harmonic mixer according to the embodiment 1 of the present disclosure and includes the following steps: [0062] receiving the radio frequency signals at the frequency band of 325 GHz-500 GHz and the local oscillator signals at the frequency band of 81.25 GHz-125 GHz; [0063] grounding near ends of anti-parallel diodes for mixing to reduce ground loop influences and improve broadband matching characters; [0064] restraining a second harmonic, a third harmonic and a fourth harmonic in a local oscillator frequency through a two-level cascaded local oscillator filter; and [0065] outputting intermediate frequency signals through an intermediate frequency output port.
[0066] A person skilled in the art should understand that the embodiments of the present disclosure may be provided as a method, a system, or a computer program product. Therefore, the present disclosure may use a form of hardware embodiments, software embodiments, or embodiments combining software and hardware. In addition, the present disclosure may use a form of a computer program product implemented on one or more computer-usable storage media (including but not limited to a disk memory, an optical memory, etc.) including computer-usable program code.
[0067] The present disclosure is described with reference to flowcharts and/or block diagrams of the method, the device (system), and the computer program product in the embodiments of the present disclosure. It is to be understood that computer program instructions can implement each procedure and/or block in the flowcharts and/or the block diagrams and a combination of procedures and/or blocks in the flowcharts and/or the block diagrams. These computer program instructions may be provided to a general-purpose computer, a dedicated computer, an embedded processor, or a processor of another programmable data processing device to generate a machine, so that the instructions executed by the computer or the processor of the another programmable data processing device generate an apparatus for implementing a specific function in one or more processes in the flowcharts and/or in one or more blocks in the block diagrams.
[0068] These computer program instructions may also be stored in a computer-readable memory that can instruct a computer or another programmable data processing device to work in a specific manner, so that the instructions stored in the computer-readable memory generate a manufactured article that includes an instruction apparatus. The instruction apparatus implements a specific function in one or more procedures in the flowcharts and/or in one or more blocks in the block diagrams.
[0069] These computer program instructions may further be loaded onto the computer or the another programmable data processing device, so that a series of operation steps are performed on the computer or the another programmable device, thereby generating computer-implemented processing. Therefore, the instructions executed on the computer or the another programmable device provide steps for implementing the specific function in one or more procedures in the flowcharts and/or in one or more blocks in the block diagrams.
[0070] A person of ordinary skill in the art may understand that all or some of the procedures of the methods of the foregoing embodiments may be implemented by a computer program instructing relevant hardware. The program may be stored in a computer-readable storage medium. When the program is executed, the procedures of the foregoing method embodiments may be implemented. The foregoing storage medium may be a magnetic disc, an optical disc, a Read-Only Memory (ROM) or a Random Access Memory (RAM), or the like.
[0071] The foregoing descriptions are merely exemplary embodiments of the present disclosure, but are not intended to limit the present disclosure. The present disclosure may include various modifications and changes for a person skilled in the art. Any modification, equivalent replacement, or improvement made within the spirit and principle of the present disclosure shall fall within the protection scope of the present disclosure.