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Journal of the Russian Universities. Radioelectronics

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13…67 GHz Frequency Mixer

https://doi.org/10.32603/1993-8985-2023-26-5-89-98

Abstract

   Introduction. The requirements for the performance of measuring devices, including their operating frequency, are constantly becoming stricter. This encourages the creation of wide-band microcircuits for application in microwave blocks of devices, such as vector network analyzers (VNA) and spectrum analyzers (SA). One of such microcircuits, used in the receiver system, is a frequency mixer. The operating range of the mixer determines the operating range of the measuring instrument.

   Aim. Research and development of an ultra-wideband integrated circuit for a 13…67 GHz frequency mixer based on the GaAs QSBD technology by Micran JSC.

   Materials and methods. An analysis of existing classic and modified circuit transformers used in mixers was conducted. A modification of the transformer circuit, which allowed a frequency range of 10…70 GHz to be achieved,
was proposed. Based on the obtained transformer and GaAs diode technology of Micran JSC, a complete mixer topology was developed and produced. An electrodynamic analysis of the integrated circuit was carried out; measurements were performed using a VNA up to 67 GHz.

   Results. A wideband mixer with a frequency range of 10…67 GHz is developed. A circuit design is proposed based on a balanced circuit with modified transformers and an intermediate frequency output circuit. The calculated dependences and measurement results of the integrated circuit of the mixer are presented. The mixer exhibits a conversion loss of less than 10 dB in the range of 10…67 GHz.

   Conclusion. A new broadband transformer with a range of operating frequencies from 10 to 70 GHz was developed. On its basis, a mixer microcircuit was simulated and manufactured. This microcircuit can be used in the receiving and transmitting units of modern measuring instruments. In terms of its characteristics, the proposed microcircuit is an analog of the Marki Mikrowave MM1-1467L mixer.

About the Authors

D. S. Danilov
Tomsk State University of Control Systems and Radioelectronics; JSC "MICRAN"
Russian Federation

Daniil S. Danilov, engineer in Radio Engineering (2015), Postgraduate student, Head of the monolithic integrated circuits development group. The author of 10 scientific publications

Department of Design of Components and Parts of Electronic Equipment

Department of Information and Measurement Systems (DIIS)

Area of expertise: microwave microelectronics; microwave measuring equipment

634050

40, Lenina St.

Tomsk



A. V. Drozdov
JSC "MICRAN"; Radio Gigabit LLC
Russian Federation

Alexey V. Drozdov, Cand. Sci. (Eng.) (2018), Leading engineer, engineer. The author of more than 10 scientific publications

Area of expertise: microwave microelectronics; microwave measuring technology

603105

95/2, Osharskaya St.

Tomsk

Nizhnyi Novgorod



Ts. M. Batoev
Tomsk State University of Control Systems and Radioelectronics; JSC "MICRAN"
Russian Federation

Tsyren M. Batoev, Master's Degree in Radio Engineering (2023), Engineer of the MMIC Development Group

Department of Ultrahigh Frequencies and Quantum Radio Engineering

Department of Microwave Circuitry

Area of expertise: microwave microelectronics

634050

40, Lenina St.

Tomsk



Yu. A. Lamanov
Tomsk State University of Control Systems and Radioelectronics; JSC "MICRAN"
Russian Federation

Yuri A. Lamanov, Master's Degree in Radio Engineering (2023), Engineer of the MMIC Development Group. The author of 1 scientific publication

Department of Ultrahigh Frequencies and Quantum Radio Engineering

Department of Microwave Circuitry

Area of expertise: technologies of manufacturing and control of printed circuit boards

Tomsk



A. S. Zagorodny
Tomsk State University of Control Systems and Radioelectronics; JSC "MICRAN"
Russian Federation

Andrey S. Zagorodny, Cand. Sci. (Eng.) (2014), Associate Professor, Head of the Department. The author of more than 30 scientific publications

Department of Ultrahigh Frequencies and Quantum Radio Engineering

Department of Microwave Circuitry

Area of expertise: microwave microelectronics; microwave measuring technology

634050

40, Lenina St.

Tomsk



N. D. Malyutin
Tomsk State University of Control Systems and Radioelectronics
Russian Federation

Nickolay D. Malyutin, Dr Sci. (Eng.) (1993), Chief Supervisor, Professor. The author of 160 scientific publications

Research Institute of Electrical Communication Systems

Department of Components and Components Design of Radio-Electronic Equipment

Area of expertise: theory of coupled strip structures; devices based on them; measurement of materials parameters, including non-linear crystals

634050

40, Lenina St.

Tomsk



References

1. Dotsenko V. V., Maljutin N. D. Development of Radar Equipment, Microwave Measurements and Electronic Component Base: the Main Results of the Implementation of Complex Projects of the Research Institute of Electrical Communications Systems and JSC "Micran". Proc. of TUSUR University. 2017, vol. 20, no. 3, pp. 79–85. doi: 10.21293/1818-0442-2017-20-3-79-85 (In Russ.)

2. Khibel' M. Osnovy vektornogo analiza tsepei [Fundamentals of Vector Network Analysis]. Moscow, Izdatel'skii dom MEI, 2009, 504 p. (In Russ.)

3. Rausher K. Osnovy spektral'nogo analiza – Rhode&Shwarts [Basics of Spectral Analysis – Rhode&Shwarts]. Moscow, Goryachaya liniya – Telekom, 2006, 226 p. (In Russ.)

4. Pu Y., Huang Z., Pan S., Wang G. A 3 GHz to 10 GHz GaAs Double Balanced Mixer. IEEE ITOEC. 2017, pp. 1083–1086. doi: 10.1109/ITOEC.2017.8122521

5. Sudow M., Andersson K., Nilsson P. A., Rorsman N. A Highly Linear Double Balanced Schottky Diode S-Band Mixer. IEEE Microw. Wirel. Compon. Lett. 2006, vol. 16, no. 6, pp. 336–338. doi: 10.1109/LMWC.2006.875625

6. Kuo C., Kuo C., Kuo C., Maas S., Wang H. Novel Miniature and Broadband Millimeter-Wave Monolithic Star Mixers. IEEE Transactions on Microwave Theory and Techniques. 2008, vol. 56, no. 4, pp. 793–802. doi: 10.1109/TMTT.2008.919063

7. Yeom K. W., Ko D. H. A Novel 60-GHz Monolithic Star Mixerusing Gate-Drain-Connected pHEMT Diodes. IEEE Transactions on Microwave Theory and Techniques. 2005, vol. 53, no. 7, pp. 2435–2440. doi: 10.1109/TMTT.2005.850402

8. Maas S. A. Microwave Mixers. 2<sup>nd</sup> ed. Norwood, MA, Artech House, 1993, 384 p.

9. Danilov D. S., Drobotun N. B. Broadband Mixers Based on Shottky Diodes Implemented in GaAs MMIC Technology. Nanoindustry Russia. 2020, no. 13, pp. 435–437. doi: 10.22184/1993-8578.2020.13.4s.435.437 (In Russ.)

10. Drobotun N., Danilov D., Drozdov A. A Decade Bandwidth Mixers Based on Planar Transformers and Quasi-vertical Schottky Diodes Implemented in GaAs MMIC Technology. 2020 50<sup>th</sup> European Microwave Conf. 2021, pp. 957–960. doi: 10.23919/EuMC48046.2021.9338211

11. Leong Y., Ang K., Lee C. A Derivation of a Class of 3-Port Baluns from Symmetrical 4-Port Networks. Proc. of IEEE MTT-S Intern. Microwave Symp. Digest. Seattle, USA, 2–7 June 2002, pp. 1165–1168. doi: 10.1109/MWSYM.2002.1011855

12. Drozdov A. V., Danilov D. S. Wideband Balun Transformer Based on Marchand Bridges for Use in Integrated Circuits. Scientific Session TUSUR-2015: Proc. of the Allruss. Report. Scientific-Technical Conf. Students, Graduate Students and Young Scientists. Tomsk, B-Spektr, 2013, vol. 2, pp. 13–16. (In Russ.)

13. Tanaka H., Sasaki Y., Hashimoto T. Unbalanced-to-Balanced Converter. US Patent, no. 6.040.745, 21 March, 2000.

14. Cho C., Gupta K. C. A New Design Procedure for Single Layer and Two-Layer Three-Line Baluns. IEEE Transactions on Microwave Theory and Techniques. 1998, vol. 46, no. 12, pp. 2514–2519.

15. Kian Sen Ang, Robertson I. D. Analysis and Design of Impedance-Transforming Planar Marchand Baluns. IEEE Transactions on Microwave Theory and Techniques. 2001, vol. 49, no. 2, pp. 402–406. doi: 10.1109/22.903108

16. Ahn H., Kim B. Toward Integrated Circuit Size Reduction. IEEE Microwave Magazine. 2008, vol. 9, iss. 1, pp. 65–75.

17. Malutin N. D., Andreev A. V., Malyutin G. A., Sharabudinov R. M. Tunable Impedance Transformer Based on Split Strip Lines. Proc. of Intern. Siberian Conf. on Control and Communications (SIBCON), Tomsk, Russia, 18–20 April 2019, p. 337.

18. Drozdov A. V., Danilov D. S., Yunusov I. V., Goshin G. G. Modeling of Schottky Barrier Diodes for Use in Monolithic Microwave Integrated Circuits. Proc. of TUSUR University. 2018, vol. 21, no. 1, pp. 28–31. doi: 10.21293/1818-0442-2018-21-1-28-31 (In Russ.)

19. Drobotun N., Drozdov A. Broadband Microwave Frequency Doublers with Improved Harmonic Suppression Based on Quasi-Vertical GaAs Shottky Diodes. Proc. of the Electronic Design Innovation Conference EDICON 2017, Shanghai, China, 25–27 April 2017, pp. 1–4.

20. Drozdov A. A 20 to 60 GHz Frequency Doubler MMIC Using a Quasi-Vertical GaAs Shottky Diodes. Moscow Workshop on Electronic and Networking Technologies (MWENT). Moscow, 14–16 March 2018, pp. 1–4.

21. MM1-1467L GaAs MMIC Double Balanced Mixer Marki Microwave. Available at: https://www.markimicrowave.com/mixers/mm1-1467l.aspx (accessed 20. 05. 2023)


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For citations:


Danilov D.S., Drozdov A.V., Batoev Ts.M., Lamanov Yu.A., Zagorodny A.S., Malyutin N.D. 13…67 GHz Frequency Mixer. Journal of the Russian Universities. Radioelectronics. 2023;26(5):89-98. (In Russ.) https://doi.org/10.32603/1993-8985-2023-26-5-89-98

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ISSN 1993-8985 (Print)
ISSN 2658-4794 (Online)