A DIFFERENTIAL K-BAND UWB TRANSMITTER FOR SHORT RANGE RADAR APPLICATION WITH CONTINUOUS RUNNING LOCAL OSCILLATOR
Author(s) -
Kristian G. Kjelgård,
Tor Sverre Lande
Publication year - 2014
Publication title -
progress in electromagnetics research c
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.341
H-Index - 34
ISSN - 1937-8718
DOI - 10.2528/pierc14032104
Subject(s) - transmitter , radar , differential (mechanical device) , range (aeronautics) , local oscillator , physics , electrical engineering , telecommunications , acoustics , computer science , engineering , aerospace engineering , radio frequency , channel (broadcasting)
The design of a difierential K-band UWB (Ultra Wideband) Short Range Radar (SRR) transmitter in 90nm bulk CMOS is presented. Implementation of SRRs in deep submicron CMOS technology is attractive, in terms of cost and monolithic integration of RF font-end with signal base- band processor. The transmitted pulse bandwidth limits the range resolution of the radar system. Due to the wide bandwidth and high frequency of CMOS implementation, UWB transmitters in the K-band are challenging to make and critical for the system performance. The design presented is based on frequency up conversion using a double balanced mixer. The difierential output is combined and matched with the antenna using an on-chip balun. To mitigate local oscillator (LO) leakage of UWB difierential transmitters we propose a new Pulse Generator (PG) design. A switching technique is used to minimize the LO leakage enabling continuous wave operation with very wideband pulses. Measurements of the proposed transmitter achieves a i10dB bandwidth (BW) of 5GHz. Using a Pulse Repetition Frequency (PRF) of 100MHz the peak average power is i40dBm. Compared to measured transmitter performance of a single balanced mixer design, the LO leakage of this dual balanced mixer is decreased with more than 20dB, and is lower than the peak average power of the pulse. It consumes 11mW from a 1.2V supply where 6mW is from the LO.
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