TY - GEN
T1 - Low complexity 60-GHz receiver architecture for simultaneous phase and amplitude regenerative sampling systems
AU - Girg, Thomas
AU - Schrüfer, Daniel
AU - Dietz, Marco
AU - Hagelauer, Amelie
AU - Kissinger, Dietmar
AU - Weigel, Robert
N1 - Publisher Copyright:
© 2016 IEEE.
PY - 2017/1/23
Y1 - 2017/1/23
N2 - With increasing data rates in communication systems, the call for wideband transceiver solutions capable of processing complex modulation schemes is getting stronger. Unfortunately, this goes along with power hungry systems and more complex integrated circuits. A novel receiver architecture, which addresses these issues, is based on the simultaneous phase and amplitude regenerative sampling system. Its system exploits switched injection-locked oscillators and their capability to regenerate signals with a gain of over 40 dB. This paper demonstrates an integrated solution for phase demodulation in such an architecture. The proposed concept uses the low complex but efficient self-mixing principle and consists mainly of double-balanced Gilbert mixers, amplifiers, a delay line and passive power dividers. The detection of the phase is achieved through self-mixing the regenerated signal with one path delayed by a symbol period. The architecture achieves 2 GBaud/s with 8th order differential phase shift keying at a frequency of 60 GHz and is realized in a 130nm SiGe BiCMOS technology.
AB - With increasing data rates in communication systems, the call for wideband transceiver solutions capable of processing complex modulation schemes is getting stronger. Unfortunately, this goes along with power hungry systems and more complex integrated circuits. A novel receiver architecture, which addresses these issues, is based on the simultaneous phase and amplitude regenerative sampling system. Its system exploits switched injection-locked oscillators and their capability to regenerate signals with a gain of over 40 dB. This paper demonstrates an integrated solution for phase demodulation in such an architecture. The proposed concept uses the low complex but efficient self-mixing principle and consists mainly of double-balanced Gilbert mixers, amplifiers, a delay line and passive power dividers. The detection of the phase is achieved through self-mixing the regenerated signal with one path delayed by a symbol period. The architecture achieves 2 GBaud/s with 8th order differential phase shift keying at a frequency of 60 GHz and is realized in a 130nm SiGe BiCMOS technology.
KW - BiCMOS
KW - SiGe
KW - high data rate communication
KW - self-mixing receiver
KW - simultaneous phase and amplitude regenerative sampling
UR - https://www.scopus.com/pages/publications/85013773727
U2 - 10.1109/ISICIR.2016.7829729
DO - 10.1109/ISICIR.2016.7829729
M3 - Conference contribution
AN - SCOPUS:85013773727
T3 - 2016 International Symposium on Integrated Circuits, ISIC 2016
BT - 2016 International Symposium on Integrated Circuits, ISIC 2016
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2016 International Symposium on Integrated Circuits, ISIC 2016
Y2 - 12 December 2016 through 14 December 2016
ER -