Skip to main content
Log in

Study and Development of Low-Temperature Co-Fired Ceramics for High-Frequency Microwave Devices

  • MICROWAVE ELECTRONICS
  • Published:
Journal of Communications Technology and Electronics Aims and scope Submit manuscript

Abstract

We report the results of the theoretical study and experimental development of a technique for fabricating low-temperature co-fired ceramics used in microwave devices and the results of the calculation and fabrication of two ceramic slips made with different types of glass for the formation of low-temperature co-fired green ceramic tape. It has been experimentally confirmed that the developed binding composition exhibits properties similar to those of Ferro A6M ceramics. It is demonstrated that the glass-forming components BaO and PbO make it possible to increase the permittivity and decrease the dissipation factor of the entire material. The main characteristics of the obtained material are compared with those of low-temperature co-fired Ferro A6M ceramics.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1.
Fig. 2.
Fig. 3.
Fig. 4.
Fig. 5.
Fig. 6.

Similar content being viewed by others

REFERENCES

  1. A. Maksimov, Elektronika NTB, No. 3, 56 (2011).

  2. R. Kondratyuk, Nanoindustriya, No. 2, 26 (2011).

  3. S. Chigirinskii, Tekhnologii, No. 11, 130 (2009).

  4. A. V. Simin, D. V. Kholodnyak, and I. B. Vendik, Kompon. Tekhnol., No. 5, 190 (2005).

  5. V. Chernykh and S. Chigirinskii, Tekhnologii, No. 4, 176 (2012).

  6. R. E. Mistler and R. E. Twiname, Tape Casting Theory and Practice (Am. Ceramic Soc., Westerville, 2000).

    Google Scholar 

  7. J. Zhou, J. Advanced Ceramics, No. 1, 89 (2012).

    Article  Google Scholar 

  8. Y. Imanaka, Multilayered Low Temperature Co-fired Ceramics (LTCC) Technology (Fujitsu Laboratories, 2005).

    Google Scholar 

  9. A. G. King, Ceramic Technology and Processing (William Andrew Publ., New York, 2002).

    Google Scholar 

  10. Yu. Nepochatov, S. Kumacheva, Yu. Shvetsova, and A. Ditts, Sovr. Elektron., No. 4, 12 (2014).

  11. D. A. Vaiman, I. B. Krasnyi, V. S. Danilov, and S. A. Kumacheva, Doklady AN VSh RF, No. 1, 31 (2017). https://doi.org/10.17212/1727-2769-2017-1-31-45

  12. A. A. Zhigal’skii, Technology of Materials of the Electronic Equipment: Manual (TUSUR, Tomsk, 2006).

    Google Scholar 

  13. D. A. Pashkov, D. O. Tyutyun’kova, and V. M. Pogrebenkov, in Perspectives of Development of Fundamental Sciences (Proc. XII Int. Conf. Students and Young Scientists, Tomsk, 2015), p. 484.

  14. A. K. Fedotov, V. M. Anishchik, and M. S. Tivanov, Physical Materials Science: Manual Ch. 3: Materials of Power and Energy Savin (Vysshaya Shkola, Minsk, 2015) [in Russian].

  15. Reference Book of the Chemist, Vol. 5: Raw Materials and Products of the Industry of Inorganic Substances, Processes and Devices, Corrosion, Galvanotechnics, Chemical Sources of Current, Ed. by B. P. Nikol’skii (Khimiya, Moscow, 1968) [in Russian].

    Google Scholar 

  16. Mechanical Engineering: Encyclopedic Reference Book, Vol. 4: Materials of Mechanical Engineering, Ed. by E. A. Chudakov and I. A. Oding (Mashgiz, Moscow, 1947) [in Russian].

    Google Scholar 

  17. Nanotechnologies in Electronics, Ed. by Yu. A. Chaplygin (Tekhnosfera, Moscow, 2013), No. 2 [in Russian].

  18. K. S. Evstrop’ev and N. A. Toropov, Chemistry of Silicon and Physical Chemistry of Silicates (Promstroyizdat, Moscow, 1950) [in Russian].

    Google Scholar 

  19. G. V. Kukolev, Chemistry of Silicon and Physical Chemistry of Silicates (Vysshaya Shkola, Moscow, 1966) [in Russian].

    Google Scholar 

  20. Glass Electrovacuum. Brands: OST 11 027.010-75. Instead of NPO.027.600 (1975).

  21. D. A. Vaiman and V. S. Danilov, Dokl. AN VSh RF, No. 1, 69 (2018).

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to D. A. Vayman.

Additional information

Translated by E. Bondareva

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Vayman, D.A., Danilov, V.S. Study and Development of Low-Temperature Co-Fired Ceramics for High-Frequency Microwave Devices. J. Commun. Technol. Electron. 64, 804–810 (2019). https://doi.org/10.1134/S1064226919070131

Download citation

  • Received:

  • Revised:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1134/S1064226919070131

Navigation