Hyunsu Park

dblp:188/2404 · DBLP profile ↗
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5ranked-venue papers
0as first author
5since 2021 · last 2024
0009-0007-3705-7384ORCID · corroborated

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Systems, architecture and hardware · 5 · 5 since 2021
YearPublicationVenuePosition
2024 A 25-Gb/s Single-Ended PAM-4 Transmitter With iPWM-Based FFE and RLM-Matched Voltage-Mode Driver for High-Speed Memory Interfaces
abstract
This paper presents a 25-Gb/s single-ended four-level pulse amplitude modulation (PAM-4) transmitter (TX) with an integrated pulse width modulation (iPWM)-based feed-forward equalizer (FFE) and a ratio of level mismatch (RLM)-matched voltage-mode driver for high-speed memory interfaces. The phase-domain iPWM-based PAM-4 FFE is proposed to minimize the input/output (I/O) capacitance by equalizing the PAM-4 data in advance of the pre-driver. The TX bandwidth is increased while achieving superior energy efficiency. Moreover, the RLM-matched voltage-mode PAM-4 driver with a ZQ calibration is proposed to compensate for the impedance variation from the four output levels and improve the output linearity. An RLM control pull-up transistor in the proposed driver obviates the need for a data encoder or passive resistors to improve the RLM and occupies a small area. The proposed single-ended PAM-4 TX was fabricated in a 28-nm CMOS technology and occupies 0.005 mm2. It achieves 0.43 pJ/b at 25 Gb/s and an RLM of 99.3%.
Yoonjae Choi, Changmin Sim, Jonghyuck Choi, Jincheol Sim, Hyunsu Park, Youngwook Kwon, Seungwoo Park, Chulwoo Kim
IEEE Trans. Circuits Syst. I Regul. Pap.5
2023 A 4-GHz Ring-Oscillator-Based Digital Sub-Sampling PLL With Energy-Efficient Dual-Domain Phase Detector
abstract
This paper presents a 4-GHz ring-oscillator-based digital sub-sampling phase-locked loop (SSPLL) with an energy-efficient dual-domain phase detector (DDPD). The performance of the digital SSPLL is limited by the quantization noise (Q-noise) of the phase detector (PD), and it requires an analog-to-digital-converter (ADC) and optimally spaced voltage comparators (OSVCs) with a large power and area overhead to reduce the Q-noise. The proposed DDPD efficiently detects a phase error in both the voltage- and time-domains, thereby suppressing the Q-noise while minimizing additional cost. It requires only one comparator in the power-hungry digitally-controlled oscillator (DCO) clock path unlike ADC and OSVCs. Consequently, it achieves a high performance while consuming a small amount of power similar to that of a conventional bang-bang phase detector (BBPD). The proposed SSPLL was implemented in a 28-nm CMOS technology. It consumes 5.35 mW at 4 GHz and occupies an area of 0.014 mm2. The integrated rms jitter is reduced by 25.7% using the proposed DDPD, whereas the overall power dissipation is similar to that of a conventional BBPD-based PLL. The jitter-power FoM1of the prototype SSPLL is −235.9 dB, and the FoM2is −250.9 dB.
Yoonjae Choi, Hyunsu Park, Jonghyuck Choi, Jincheol Sim, Youngwook Kwon, Seungwoo Park, Changmin Sim, Chulwoo Kim
IEEE Trans. Circuits Syst. I Regul. Pap.2
2023 PAM-4 Receiver With 1-Tap DFE Using Clocked Comparator Offset Instead of Threshold Voltages for Improved LSB BER Performance
abstract
This study presents a wireline pulse amplitude modulation-4 (PAM-4) receiver using the least significant bit (LSB) decoding method that uses the offset of comparators. The proposed LSB decoding method can generate the same output as that of a conventional comparator by effectively adding the desired offset voltage to only one of the differential PAM-4 signals. Because the proposed decoding method replaces a 4-input comparator with a 2-input comparator, it can improve the bit error rate (BER) performance of the LSB by as much as the most significant bit (MSB). The predetermined offset is useful not only for LSB decoding but also for the direct decision feedback equalizer (DFE) operation. The differential amplitude and common-mode voltage (VCM) of the PAM-4 signal vary owing to the direct DFE tap coefficient. The modified comparator can generate an appropriate offset voltage without an adaptation loop or a VCM compensator although the PAM-4 signals are changed depending on the DFE tap coefficient. A prototype is fabricated using 28-nm CMOS technology and tested using a 10.29 dB channel attenuation at 10 GHz. The maximum data rate is 40 Gb/s, and the power efficiency and area of the proposed architecture are 1.58 pJ/bit and 0.039 mm2, respectively.
Jincheol Sim, Hyunsu Park, Yoonjae Choi, Jonghyuck Choi, Youngwook Kwon, Chulwoo Kim
IEEE Trans. Circuits Syst. I Regul. Pap.2
2022 Analysis of a Multiwire, Multilevel, and Symbol Correlation Combination Scheme
abstract
The required data rate of wireline communications has increased; however, channel attenuation limits the data bandwidth. Bit-efficient signaling is an effective and efficient solution because more data can be transmitted at the same Nyquist frequency. Several methods for increasing bit efficiency, such as multi-wire signaling, multi-level signaling, and symbol correlation schemes, have been proposed. Each scheme can generate additional codes by encoding the data. Additional codes can be used to transmit more data or to embed data transitions. In this study, the aforementioned schemes are analyzed, and a method is developed to combine them, maximize the bit efficiency, and ensure the data transition density. For the prototype transceiver, a 4-wire PAM-3 (4W3P) signaling scheme was adopted. The 4W3P signaling scheme can increase the bit efficiency to 200% while maintaining the DC-balanced characteristics. Transceiver building blocks, such as the TX driver, feed-forward equalizer, and analog front-end, were optimized for the proposed signaling scheme. The prototype transceiver was fabricated using 28 nm CMOS technology, occupying 0.012 mm2. The RX was measured using the TX and achieved a BER less than$10^{-12}$at 40 Gb/s over the four wires, with a total transceiver energy efficiency of 1.52 pJ/bit.
Jonghyuck Choi, Yoonjae Choi, Hyunsu Park, Jincheol Sim, Youngwook Kwon, Seungwoo Park, Chulwoo Kim
IEEE Trans. Circuits Syst. I Regul. Pap.3
2021 A 1-3.2 GHz 0.6 mW/GHz Duty-Cycle-Corrector Using Bangbang Duty-Cyle-Detector
abstract
Duty cycle corrector (DCC) using a bang-bang duty cycle detector (BBDCD) correct a 1-3.2 GHz clock duty cycle. Because the accuracy of BBDCD determines the output clock duty cycle, to mitigate the offset of the BBDCD, an average codes method is used. The operating frequency is determined according to capacitance in the BBDCD for a wide frequency. A duty cycle adjuster (DCA) based on a 2-input NAND gate makes a clock with pulse width from the rising edge of the input clock to the falling edge of the digitally controlled delay line (DCDL) output. The IC is designed in CMOS 28nm process. The maximum duty cycle error of the DCC is 1.5 % at 3.2 GHz. The DCC consumes 1.92 mW at the maximum input frequency. The peak-to-peak jitter of the output clock is 12 ps.
Jincheol Sim, Hyunsu Park, Youngwook Kwon, Chulwoo Kim
ISCAS2