z-logo
Premium
Optimum design of high power and high efficiency mm‐wave fundamental oscillators
Author(s) -
Shirinabadi Hossein,
Kalantari Milad,
FotowatAhmady Ali,
Banai Ali
Publication year - 2018
Publication title -
international journal of circuit theory and applications
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.364
H-Index - 52
eISSN - 1097-007X
pISSN - 0098-9886
DOI - 10.1002/cta.2503
Subject(s) - voltage controlled oscillator , power (physics) , transistor , electronic engineering , cmos , oscillation (cell signaling) , control theory (sociology) , electrical engineering , voltage , computer science , engineering , physics , control (management) , quantum mechanics , artificial intelligence , biology , genetics
Summary A systematic method to design high power and high efficiency mm‐wave fundamental oscillators is presented. By using a linear time variant method, we first obtain the optimum conditions and show that these conditions can be significantly different for high power and high efficiency fundamental oscillation. Next, we propose a modified multistage ring oscillator with interstage passive networks to exploit the full capacity of the transistors in terms of output power or efficiency. Analytical expressions are also derived to determine the value of passive elements used in the oscillator. To verify the validity of the method, a 77‐GHz two‐stage (differential) VCO is designed in a 65‐nm CMOS process. Careful electromagnetic and circuit simulations demonstrate that the designed VCO has 2‐GHz tuning range, maximum output power of 10.5 dBm and maximum DC to RF efficiency of 24.1%. The designed VCO shows 54.8% and 108.7% improvement in terms of maximum output power and efficiency compared with a conventional cross‐coupled VCO with the same tuning range.

This content is not available in your region!

Continue researching here.

Having issues? You can contact us here