TY - JOUR
T1 - An ultra-wideband, high-precision quadrature signal generation circuit based on self-coupling LC compensated quadrature all-pass filters with PPF
AU - Lin, Yiming
AU - Qi, Quanwen
AU - Li, Xiaoran
AU - Faheem, Muhammad Yasir
AU - Wang, Xinghua
AU - Li, Xiao
N1 - Publisher Copyright:
© 2026
PY - 2026/9
Y1 - 2026/9
N2 - This article presents an ultra-wideband, high-precision quadrature signal generation circuit based on self-coupling LC compensated quadrature all-pass filters(QAFs). A novel self-coupling technical and layout design is introduced in traditional LC compensated QAFs to extend the operating bandwidth and make it a compact design. The resonant balance condition and resonant frequency of self-coupling LC compensated QAFs are derived by a detailed analysis of transfer functions and filter parameters. The polyphase filter is also cascaded as a corrector to suppress the I/Q imbalance. The proof-of-concept 20–60 GHz self-coupling LC compensated QAF with PPF is designed with a core area of 252 ×160 μm2. The output I/Q amplitude error is less than 0.12 dB at 20–60 GHz, and the phase error is less than 2.1°at 10–60 GHz. The signal loss varies from 1.2 to 3.9 dB (not including 1:2 power splitting). The effective image rejection ratio calculated based on I/Q mismatch is higher than 40 dB at 20-60 GHz.
AB - This article presents an ultra-wideband, high-precision quadrature signal generation circuit based on self-coupling LC compensated quadrature all-pass filters(QAFs). A novel self-coupling technical and layout design is introduced in traditional LC compensated QAFs to extend the operating bandwidth and make it a compact design. The resonant balance condition and resonant frequency of self-coupling LC compensated QAFs are derived by a detailed analysis of transfer functions and filter parameters. The polyphase filter is also cascaded as a corrector to suppress the I/Q imbalance. The proof-of-concept 20–60 GHz self-coupling LC compensated QAF with PPF is designed with a core area of 252 ×160 μm2. The output I/Q amplitude error is less than 0.12 dB at 20–60 GHz, and the phase error is less than 2.1°at 10–60 GHz. The signal loss varies from 1.2 to 3.9 dB (not including 1:2 power splitting). The effective image rejection ratio calculated based on I/Q mismatch is higher than 40 dB at 20-60 GHz.
KW - Figure-8 transformer
KW - Image rejection ratio (IRR)
KW - Passive polyphase filter
KW - Quadrature all-pass filter
KW - Quadrature signal generation
UR - https://www.scopus.com/pages/publications/105042666855
U2 - 10.1016/j.mejo.2026.107325
DO - 10.1016/j.mejo.2026.107325
M3 - Article
AN - SCOPUS:105042666855
SN - 0959-8324
VL - 175
JO - Microelectronics Journal
JF - Microelectronics Journal
M1 - 107325
ER -