We have designed single-bit comparators and multi-bit flash analog-to-digital converters (ADCs) using three flavors of periodic comparators; one flavor uses a differential “quasi-one-junction” SQUID (DQOS) comparator, the second use a differential SQUID wheel comparator (DSW) and the third uses a symmetric differential SQUID wheel comparator (SDSW) with time-interleaved clocks. We have also developed a new performance analysis scheme that enables full reconstruction of input signal using a single-bit comparator. The signal is reconstructed based on multiple beat frequency measurements that track the position of the comparator thresholds in response to a dc offset to the input signal. In addition, to eliminate the frequency dependent distortions resulting from impedance mismatches over wide bandwidths, the signal and clock distribution network have been optimized using EM simulations. For distributing the clock signal to the multi-bit comparators, a 50 Ω coplanar transmission line has been designed. Test results for a 1-bit DSW comparator demonstrates a performance of 4.5 bits of resolution in Gray code for a beat frequency test using a 20 GHz input signal and 5.3 bits for 10 GHz input. 4 and 8-bit versions of the flash ADC with a DQOS comparator and a 3-bit time-interleaved ADC using the SDSW comparator have also been designed. The DQOS ADC has been tested up to 25 GHz input signal frequency with performance of 4.3 bits of resolution in Gray code for 19.7 GHz input signal. The time-interleaved ADC performance is 4.3 bits for a 15 GHz beat frequency test with an effective sampling rate of 30 GHz.
[1]
D. K. Brock,et al.
A superconductive flash digitizer with on-chip memory
,
1999,
IEEE Transactions on Applied Superconductivity.
[2]
H. Suzuki,et al.
A Flash A/D Converter Using Complementarily Combined SQUIDs
,
2009,
IEEE Transactions on Applied Superconductivity.
[3]
Sergey V. Rylov,et al.
Real-time digital error correction for flash analog-to-digital converter
,
1997
.
[4]
Raafat R. Mansour,et al.
Multi-layer low temperature superconducting K-band filter and diplexer design
,
2013,
2013 IEEE MTT-S International Microwave Symposium Digest (MTT).
[5]
A. Sahu,et al.
Flash ADC Comparators and Techniques for Their Evaluation
,
2013,
IEEE Transactions on Applied Superconductivity.
[6]
K Ishihara,et al.
Design and Demonstration of a 5-Bit Flash-Type SFQ A/D Converter Integrated With Error Correction and Interleaving Circuits
,
2011,
IEEE Transactions on Applied Superconductivity.
[7]
H. Suzuki,et al.
Investigation of a 5-bit Flash-Type SFQ A/D Converter Using 10 $\hbox{kA/cm}^{2}$ Niobium Process and Locally Isolated Grounds
,
2013,
IEEE Transactions on Applied Superconductivity.