220 research outputs found

    ์˜คํ”„์…‹ ์ œ๊ฑฐ๊ธฐ์˜ ์ ์‘ ์ œ์–ด ๋“ฑํ™”๊ธฐ์™€ ๋ณด์šฐ-๋ ˆ์ดํŠธ ์œ„์ƒ ๊ฒ€์ถœ๊ธฐ๋ฅผ ํ™œ์šฉํ•œ ์ˆ˜์‹ ๊ธฐ ์„ค๊ณ„

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    ํ•™์œ„๋…ผ๋ฌธ(๋ฐ•์‚ฌ) -- ์„œ์šธ๋Œ€ํ•™๊ต๋Œ€ํ•™์› : ๊ณต๊ณผ๋Œ€ํ•™ ์ „๊ธฐยท์ •๋ณด๊ณตํ•™๋ถ€, 2021.8. ์—ผ์ œ์™„.In this thesis, designs of high-speed, low-power wireline receivers (RX) are explained. To be specific, the circuit techniques of DC offset cancellation, merged-summer DFE, stochastic Baud-rate CDR, and the phase detector (PD) for multi-level signal are proposed. At first, an RX with adaptive offset cancellation (AOC) and merged summer decision-feedback equalizer (DFE) is proposed. The proposed AOC engine removes the random DC offset of the data path by examining the random data stream's sampled data and edge outputs. In addition, the proposed RX incorporates a shared-summer DFE in a half-rate structure to reduce power dissipation and hardware complexity of the adaptive equalizer. A prototype chip fabricated in 40 nm CMOS technology occupies an active area of 0.083 mm2. Thanks to the AOC engine, the proposed RX achieves the BER of less than 10-12 in a wide range of data rates: 1.62-10 Gb/s. The proposed RX consumes 18.6 mW at 10 Gb/s over a channel with a 27 dB loss at 5 GHz, exhibiting a figure-of-merit of 0.068 pJ/b/dB. Secondly, a 40 nm CMOS RX with Baud-rate phase-detector (BRPD) is proposed. The RX includes two PDs: the BRPD employing the stochastic technique and the BRPD suitable for multi-level signals. Thanks to the Baud-rate CDRโ€™s advantage, by not using an edge-sampling clock, the proposed CDR can reduce the power consumption by lowering the hardware complexity. Besides, the proposed stochastic phase detector (SPD) tracks an optimal phase-locking point that maximizes the vertical eye opening. Furthermore, despite residual inter-symbol interference, proposed BRPD for multi-level signal secures vertical eye margin, which is especially vulnerable in the multi-level signal. Besides, the proposed BRPD has a unique lock point with an adaptive DFE, unlike conventional Mueller-Muller PD. A prototype chip fabricated in 40 nm CMOS technology occupies an active area of 0.24 mm2. The proposed PAM-4 RX achieves the bit-error-rate less than 10-11 in 48 Gb/s and the power efficiency of 2.42 pJ/b.๋ณธ ๋…ผ๋ฌธ์€ ๊ณ ์†, ์ €์ „๋ ฅ์œผ๋กœ ๋™์ž‘ํ•˜๋Š” ์œ ์„  ์ˆ˜์‹ ๊ธฐ์˜ ์„ค๊ณ„์— ๋Œ€ํ•ด ์„ค๋ช…ํ•˜๊ณ  ์žˆ๋‹ค. ๊ตฌ์ฒด์ ์œผ๋กœ ๋งํ•˜๋ฉด, ์˜คํ”„์…‹ ์ƒ์‡„, ๋ณ‘ํ•ฉ๋œ ์„œ๋จธ๋ฅผ ์‚ฌ์šฉํ•˜๋Š” ๊ฒฐ์ • ํ”ผ๋“œ๋ฐฑ ๋“ฑํ™”๊ธฐ ๊ธฐ์ˆ , ํ™•๋ฅ ์  ๋ณด์šฐ ๋ ˆ์ดํŠธ ํด๋Ÿญ๊ณผ ๋ฐ์ดํ„ฐ ๋ณต์›๊ธฐ, ๊ทธ๋ฆฌ๊ณ  ๋‹ค์ค‘ ๋ ˆ๋ฒจ ์‹ ํ˜ธ์— ์ ํ•ฉํ•œ ์œ„์ƒ ๊ฒ€์ถœ๊ธฐ๋ฅผ ์ œ์•ˆํ•œ๋‹ค. ์ฒซ์งธ๋กœ, ์ ์‘ ์˜คํ”„์…‹ ์ œ๊ฑฐ ๋ฐ ๋ณ‘ํ•ฉ๋œ ์„œ๋จธ๋ฅผ ์‚ฌ์šฉํ•˜๋Š” ๊ฒฐ์ • ํ”ผ๋“œ๋ฐฑ ๋“ฑํ™”๊ธฐ๋ฅผ ๊ฐ–์ถ˜ ์ˆ˜์‹ ๊ธฐ๋ฅผ ์ œ์•ˆํ•œ๋‹ค. ์ œ์•ˆ๋œ ์ ์‘ ์˜คํ”„์…‹ ์ œ๊ฑฐ ์—”์ง„์€ ์ž„์˜์˜ ๋ฐ์ดํ„ฐ ์ŠคํŠธ๋ฆผ์˜ ์ƒ˜ํ”Œ๋ง ๋ฐ์ดํ„ฐ, ์—์ง€ ์ถœ๋ ฅ์„ ๊ฒ€์‚ฌํ•˜์—ฌ ๋ฐ์ดํ„ฐ ๊ฒฝ๋กœ ์ƒ์˜ ์˜คํ”„์…‹์„ ์ œ๊ฑฐํ•œ๋‹ค. ๋˜ํ•œ ํ•˜ํ”„ ๋ ˆ์ดํŠธ ๊ตฌ์กฐ์˜ ๋ณ‘ํ•ฉ๋œ ์„œ๋จธ๋ฅผ ์‚ฌ์šฉํ•˜๋Š” ๊ฒฐ์ • ํ”ผ๋“œ๋ฐฑ ๋“ฑํ™”๊ธฐ๋Š” ์ „๋ ฅ์˜ ์‚ฌ์šฉ๊ณผ ํ•˜๋“œ์›จ์–ด์˜ ๋ณต์žก์„ฑ์„ ์ค„์ธ๋‹ค. 40 nm CMOS ๊ธฐ์ˆ ๋กœ ์ œ์ž‘๋œ ํ”„๋กœํ† ํƒ€์ž… ์นฉ์€ 0.083 mm2 ์˜ ๋ฉด์ ์„ ๊ฐ€์ง„๋‹ค. ์ ์‘ ์˜คํ”„์…‹ ์ œ๊ฑฐ๊ธฐ ๋•๋ถ„์— ์ œ์•ˆ๋œ ์ˆ˜์‹ ๊ธฐ๋Š” 10-12 ๋ฏธ๋งŒ์˜ BER์„ ๋‹ฌ์„ฑํ•œ๋‹ค. ๋˜ํ•œ ์ œ์•ˆ๋œ ์ˆ˜์‹ ๊ธฐ๋Š” 5GHz์—์„œ 27 dB์˜ ๋กœ์Šค๋ฅผ ๊ฐ–๋Š” ์ฑ„๋„์—์„œ 10 Gb/s์˜ ์†๋„์—์„œ 18.6 mW๋ฅผ ์†Œ๋น„ํ•˜๋ฉฐ 0.068 pJ/b/dB์˜ FoM์„ ๋‹ฌ์„ฑํ•˜์˜€๋‹ค. ๋‘๋ฒˆ์งธ๋กœ, ๋ณด์šฐ ๋ ˆ์ดํŠธ ์œ„์ƒ ๊ฒ€์ถœ๊ธฐ๊ฐ€ ์žˆ๋Š” 40 nm CMOS ์ˆ˜์‹ ๊ธฐ๊ฐ€ ์ œ์•ˆ๋˜์—ˆ๋‹ค. ์ˆ˜์‹ ๊ธฐ์—๋Š” ๋‘๊ฐœ์˜ ๋ณด์šฐ ๋ ˆ์ดํŠธ ์œ„์ƒ ๊ฒ€์ถœ๊ธฐ๋ฅผ ํฌํ•จํ•œ๋‹ค. ํ•˜๋‚˜๋Š” ํ™•๋ฅ ๋ก ์  ๊ธฐ๋ฒ•์„ ์‚ฌ์šฉํ•˜๋Š” ๋ณด์šฐ ๋ ˆ์ดํŠธ ์œ„์ƒ ๊ฒ€์ถœ๊ธฐ์ด๋‹ค. ๋ณด์šฐ ๋ ˆ์ดํŠธ ํด๋Ÿญ ๋ฐ์ดํ„ฐ ๋ณต์›๊ธฐ์˜ ์žฅ์  ๋•๋ถ„์— ์—์ง€ ์ƒ˜ํ”Œ๋ง ํด๋Ÿญ์„ ์‚ฌ์šฉํ•˜์ง€ ์•Š์Œ์œผ๋กœ์„œ ํŒŒ์›Œ์˜ ์†Œ๋ชจ์™€ ํ•˜๋“œ์›จ์–ด์˜ ๋ณต์žก์„ฑ์„ ์ค„์˜€๋‹ค. ๋˜ํ•œ ํ™•๋ฅ ์  ์œ„์ƒ ๊ฒ€์ถœ๊ธฐ๋Š” ์ˆ˜์ง ์•„์ด ์˜คํ”„๋‹์„ ์ตœ๋Œ€ํ™”ํ•˜๋Š” ์ตœ์ ์˜ ์œ„์ƒ ์ง€์ ์„ ์ฐพ์„ ์ˆ˜ ์žˆ์—ˆ๋‹ค. ๋‹ค๋ฅธ ์œ„์ƒ ๊ฒ€์ถœ๊ธฐ๋Š” ๋‹ค์ค‘ ๋ ˆ๋ฒจ ์‹ ํ˜ธ์— ์ ํ•ฉํ•œ ๋ฐฉ์‹์ด๋‹ค. ์‹ฌ๋ณผ ๊ฐ„ ๊ฐ„์„ญ์ด ๋‹ค์ค‘ ๋ ˆ๋ฒจ ์‹ ํ˜ธ์— ๋งค์šฐ ์ทจ์•ฝํ•œ ๋ฌธ์ œ๊ฐ€ ์žˆ๋”๋ผ๋„ ์ œ์•ˆ๋œ ๋‹ค์ค‘ ๋ ˆ๋ฒจ ์‹ ํ˜ธ์šฉ ๋ณด์šฐ ๋ ˆ์ดํŠธ ์œ„์ƒ ๊ฒ€์ถœ๊ธฐ๋Š” ์ˆ˜์ง ์•„์ด ๋งˆ์ง„์„ ํ™•๋ณดํ•œ๋‹ค. ๊ฒŒ๋‹ค๊ฐ€ ์ œ์•ˆ๋œ ๋ณด์šฐ ๋ ˆ์ดํŠธ ์œ„์ƒ ๊ฒ€์ถœ๊ธฐ๋Š” ๊ธฐ์กด์˜ ๋ฎฌ๋Ÿฌ-๋ฎ๋Ÿฌ ์œ„์ƒ ๊ฒ€์ถœ๊ธฐ์™€ ๋‹ฌ๋ฆฌ ์ ์‘ํ˜• ๊ฒฐ์ • ํ”ผ๋“œ๋ฐฑ ๋“ฑํ™”๊ธฐ๊ฐ€ ์žˆ๋”๋ผ๋„ ์œ ์ผํ•œ ๋ฝ ์ง€์ ์„ ๊ฐ–๋Š”๋‹ค. ํ”„๋กœํ† ํƒ€์ž… ์นฉ์€ 0.24mm2์˜ ๋ฉด์ ์„ ๊ฐ€์ง„๋‹ค. ์ œ์•ˆ๋œ PAM-4 ์ˆ˜์‹ ๊ธฐ๋Š” 48 Gb/s์˜ ์†๋„์—์„œ 10-11 ๋ฏธ๋งŒ์˜ BER์„ ๊ฐ€์ง€๊ณ , 2.42 pJ/b์˜ FoM์„ ๊ฐ€์ง„๋‹ค.CHAPTER 1 INTRODUCTION 1 1.1 MOTIVATION 1 1.2 THESIS ORGANIZATION 5 CHAPTER 2 BACKGROUNDS 6 2.1 BASIC ARCHITECTURE IN SERIAL LINK 6 2.1.1 SERIAL COMMUNICATION 6 2.1.2 CLOCK AND DATA RECOVERY 8 2.1.3 MULTI-LEVEL PULSE-AMPLITUDE MODULATION 10 2.2 EQUALIZER 12 2.2.1 EQUALIZER OVERVIEW 12 2.2.2 DECISION-FEEDBACK EQUALIZER 15 2.2.3 ADAPTIVE EQUALIZER 18 2.3 CLOCK RECOVERY 21 2.3.1 2X OVERSAMPLING PD ALEXANDER PD 22 2.3.2 BAUD-RATE PD MUELLER MULLER PD 25 CHAPTER 3 AN ADAPTIVE OFFSET CANCELLATION SCHEME AND SHARED SUMMER ADAPTIVE DFE 28 3.1 OVERVIEW 28 3.2 AN ADAPTIVE OFFSET CANCELLATION SCHEME AND SHARED-SUMMER ADAPTIVE DFE FOR LOW POWER RECEIVER 31 3.3 SHARED SUMMER DFE 37 3.4 RECEIVER IMPLEMENTATION 42 3.5 MEASUREMENT RESULTS 45 CHAPTER 4 PAM-4 BAUD-RATE DIGITAL CDR 51 4.1 OVERVIEW 51 4.2 OVERALL ARCHITECTURE 53 4.2.1 PROPOSED BAUD-RATE CDR ARCHITECTURE 53 4.2.2 PROPOSED ANALOG FRONT-END STRUCTURE 59 4.3 STOCHASTIC PHASE DETECTION PAM-4 CDR 64 4.3.1 PROPOSED STOCHASTIC PHASE DETECTION 64 4.3.2 COMPARISON OF THE STOCHASTIC PD WITH SS-MMPD 70 4.4 PHASE DETECTION FOR MULTI-LEVEL SIGNALING 73 4.4.1 PROPOSED BAUD-RATE PHASE DETECTOR FOR MULTI-LEVEL SIGNAL 73 4.4.2 DATA LEVEL AND DFE COEFFICIENT ADAPTATION 79 4.4.3 PROPOSED PHASE DETECTOR 84 4.5 MEASUREMENT RESULT 88 4.5.1 MEASUREMENT OF THE PROPOSED STOCHASTIC BAUD-RATE PHASE DETECTION 94 4.5.2 MEASUREMENT OF THE PROPOSED BAUD-RATE PHASE DETECTION FOR MULTI-LEVEL SIGNAL 97 CHAPTER 5 CONCLUSION 103 BIBLIOGRAPHY 105 ์ดˆ ๋ก 109๋ฐ•

    Performance analysis of pre-equalized multilevel partial response schemes

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    In order to achieve high speed on electrical interconnects, channel attenuation at high frequencies must be dealt with by proper transceiver design. In this paper we investigate finite-complexity MMSE pre-equalization under an average transmit power constraint, to compensate for channel distortion in the case of both full-response and precoded partial response signaling with L-PAM mapping, and consider the resulting error performance for symbol-by-symbol detection and sequence detection. For a representative electrical interconnect, we point out that the constellation size (2-PAM or 4-PAM), the type of signaling (full response or partial response), the detection method (symbol-by-symbol detection or sequence detection) and the number of pre-equalizer taps should be carefully selected in order to achieve satisfactory error performance at high data rates. For several scenarios, precoded duobinary 4-PAM is found to yield the best error performance for given average transmit power

    Equalization of multi-Gb/s chip-to-chip interconnects affected by manufacturing tolerances

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    Electrical chip-to-chip interconnects suffer from considerable intersymbol interference at multi-Gb/s data rates, due to the frequency-dependent attenuation. Hence, reliable communication at high data rates requires equalization, to compensate for the channel response. As these interconnects are prone to manufacturing tolerances, the equalizer must be adjusted to each specific channel realization to perform optimally. We adopt a reduced-complexity equalization scheme where (part of) the equalizer is fixed, by involving the channel statistics into the equalizer derivation. For a 10โ€ฏcm on-board microstrip interconnect with a 10% tolerance on its parameters, we point out that 2-PAM transmission using a fixed prefilter and an adjustable feedback filter, both with few taps, yields only a moderate bit error rate degradation, compared to the all-adjustable equalizer; at a bit error rate of 1e-12 these degradations are about 1.1โ€ฏ dB and 3โ€ฏ dB, when operating at 20 Gb/s and 80 Gb/s, respectively

    High-speed equalization and transmission in electrical interconnections

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    The relentless growth of data traffic and increasing digital signal processing capabilities of integrated circuits (IC) are demanding ever faster chip-to-chip / chip-to-module serial electrical interconnects. As data rates increase, the signal quality after transmission over printed circuit board (PCB) interconnections is severely impaired. Frequency-dependent loss and crosstalk noise lead to a reduced eye opening, a reduced signal-to-noise ratio and an increased inter-symbol interference (ISI). This, in turn, requires the use of improved signal processing or PCB materials, in order to overcome the bandwidth (BW) limitations and to improve signal integrity. By applying an optimal combination of equalizer and receiver electronics together with BW-efficient modulation schemes, the transmission rate over serial electrical interconnections can be pushed further. At the start of this research, most industrial backplane connectors, meeting the IEEE and OIF specifications such as manufactured by e.g. FCI or TE connectivity, had operational capabilities of up to 25 Gb/s. This research was mainly performed under the IWT ShortTrack project. The goal of this research was to increase the transmission speed over electrical backplanes up to 100 Gb/s per channel for next-generation telecom systems and data centers. This requirement greatly surpassed the state-ofthe-art reported in previous publications, considering e.g. 25 Gb/s duobinary and 42.8 Gb/s PAM-4 transmission over a low-loss Megtron 6 electrical backplane using off-line processing. The successful implementation of the integrated transmitter (TX) and receiver (RX) (1) , clearly shows the feasibility of single lane interconnections beyond 80 Gb/s and opens the potential of realizing industrial 100 Gb/s links using a recent IC technology process. Besides the advancement of the state-of-the-art in the field of high-speed transceivers and backplane transmission systems, which led to several academic publications, the output of this work also attracts a lot of attention from the industry, showing the potential to commercialize the developed chipset and technologies used in this research for various applications: not only in high-speed electrical transmission links, but also in high-speed opto-electronic communications such as access, active optical cables and optical backplanes. In this dissertation, the background of this research, an overview of this work and the thesis organization are illustrated in Chapter 1. In Chapter 2, a system level analysis is presented, showing that the channel losses are limiting the transmission speed over backplanes. In order to enhance the serial data rate over backplanes and to eliminate the signal degradation, several technologies are discussed, such as signal equalization and modulation techniques. First, a prototype backplane channel, from project partner FCI, implemented with improved backplane connectors is characterized. Second, an integrated transversal filter as a feed-forward equalizer (FFE) is selected to perform the signal equalization, based on a comprehensive consideration of the backplane channel performance, equalization capabilities, implementation complexity and overall power consumption. NRZ, duobinary and PAM-4 are the three most common modulation schemes for ultra-high speed electrical backplane communication. After a system-level simulation and comparison, the duobinary format is selected due to its high BW efficiency and reasonable circuit complexity. Last, different IC technology processes are compared and the ST microelectronics BiCMOS9MW process (featuring a fT value of over 200 GHz) is selected, based on a trade-off between speed and chip cost. Meanwhile it also has a benefit for providing an integrated microstrip model, which is utilized for the delay elements of the FFE. Chapter 3 illustrates the chip design of the high-speed backplane TX, consisting of a multiplexer (MUX) and a 5-tap FFE. The 4:1 MUX combines four lower rate streams into a high-speed differential NRZ signal up to 100 Gb/s as the FFE input. The 5-tap FFE is implemented with a novel topology for improved testability, such that the FFE performance can be individually characterized, in both frequency- and time-domain, which also helps to perform the coefficient optimization of the FFE. Different configurations for the gain cell in the FFE are compared. The gilbert configuration shows most advantages, in both a good high-frequency performance and an easy way to implement positive / negative amplification. The total chip, including the MUX and the FFE, consumes 750mW from a 2.5V supply and occupies an area of 4.4mm ร— 1.4 mm. In Chapter 4, the TX chip is demonstrated up to 84 Gb/s. First, the FFE performance is characterized in the frequency domain, showing that the FFE is able to work up to 84 Gb/s using duobinary formats. Second, the combination of the MUX and the FFE is tested. The equalized TX outputs are captured after different channels, for both NRZ and duobinary signaling at speeds from 64 Gb/s to 84 Gb/s. Then, by applying the duobinary RX 2, a serial electrical transmission link is demonstrated across a pair of 10 cm coax cables and across a 5 cm FX-2 differential stripline. The 5-tap FFE compensates a total loss between the TX and the RX chips of about 13.5 dB at the Nyquist frequency, while the RX receives the equalized signal and decodes the duobinary signal to 4 quarter rate NRZ streams. This shows a chip-to-chip data link with a bit error rate (BER) lower than 10โˆ’11. Last, the electrical data transmission between the TX and the RX over two commercial backplanes is demonstrated. An error-free, serial duobinary transmission across a commercial Megtron 6, 11.5 inch backplane is demonstrated at 48 Gb/s, which indicates that duobinary outperforms NRZ for attaining higher speed or longer reach backplane applications. Later on, using an ExaMAXยฎ backplane demonstrator, duobinary transmission performance is verified and the maximum allowed channel loss at 40 Gb/s transmission is explored. The eye diagram and BER measurements over a backplane channel up to 26.25 inch are performed. The results show that at 40 Gb/s, a total channel loss up to 37 dB at the Nyquist frequency allows for error-free duobinary transmission, while a total channel loss of 42 dB was overcome with a BER below 10โˆ’8. An overview of the conclusions is summarized in Chapter 5, along with some suggestions for further research in this field. (1) The duobinary receiver was developed by my colleague Timothy De Keulenaer, as described in his PhD dissertation. (2) Described in the PhD dissertation of Timothy De Keulenaer

    ๋ฉ”๋ชจ๋ฆฌ ์ธํ„ฐํŽ˜์ด์Šค๋ฅผ ์œ„ํ•œ 4 ๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์ฟผํ„ฐ ๋ ˆ์ดํŠธ ์ˆ˜์‹ ๊ธฐ ์„ค๊ณ„

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    ํ•™์œ„๋…ผ๋ฌธ(๋ฐ•์‚ฌ) -- ์„œ์šธ๋Œ€ํ•™๊ต๋Œ€ํ•™์› : ๊ณต๊ณผ๋Œ€ํ•™ ์ „๊ธฐยท์ •๋ณด๊ณตํ•™๋ถ€, 2022. 8. ๊น€์ˆ˜ํ™˜.๋ณธ ์—ฐ๊ตฌ์—์„œ๋Š” ๋ฉ”๋ชจ๋ฆฌ ์ธํ„ฐํŽ˜์ด์Šค๋ฅผ ์œ„ํ•œ 4 ๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ (PAM-4) ์ˆ˜์‹ ๊ธฐ์™€ ์ง๊ต ํด๋ก์„ ์ƒ์„ฑํ•˜๋Š” ์ง๊ต ์‹ ํ˜ธ ๋ณด์ •๊ธฐ๋ฅผ ์ œ์•ˆ๋œ๋‹ค. ๋ฐ์ดํ„ฐ ์„ผํ„ฐ์—์„œ ์ฆ๊ฐ€ํ•˜๋Š” IP ํŠธ๋ž˜ํ”ฝ์€ ๊ณ ์† ๋ฐ ์ €์ „๋ ฅ ๋ฉ”๋ชจ๋ฆฌ ์ธํ„ฐํŽ˜์ด์Šค์— ๋Œ€ํ•œ ์ˆ˜์š”๋ฅผ ์ฆ๊ฐ€์‹œ์ผœ์™”๋‹ค. ์ด๋Ÿฌํ•œ ์š”๊ตฌ๋ฅผ ๋งŒ์กฑ์‹œํ‚ค๊ธฐ ์œ„ํ•ด ํด๋Ÿญ ๋ฐ ๋‚˜์ดํ€ด์ŠคํŠธ ์ฃผํŒŒ์ˆ˜๋ฅผ ๋†’์ด์ง€ ์•Š๊ณ ๋„ ๋ฐ์ดํ„ฐ ์ „์†ก๋ฅ ์„ ๋†’์ผ ์ˆ˜ ์žˆ๋Š” PAM-4 ์‹ ํ˜ธ๊ฐ€ ์ฃผ๋ชฉ์„ ๋ฐ›๊ณ  ์žˆ๋‹ค. PAM-4 ์‹ ํ˜ธ๋Š” ์ œ๋กœ ๋น„ ๋ณต๊ท€ ์‹ ํ˜ธ (NRZ) ๋ณด๋‹ค 3๋ฐฐ ๋‚ฎ์€ ์ˆ˜์ง ๋งˆ์ง„์„ ๊ฐ€์ง€๋ฉฐ, ์ด๋Š” ๊ฒฐ์ • ํ”ผ๋“œ๋ฐฑ ์ดํ€„๋ผ์ด์ € ๋‚ด ์Šฌ๋ผ์ด์Šค์˜ ํด๋Ÿญ-ํ ๋”œ๋ ˆ์ด๋ฅผ ์ฆ๊ฐ€์‹œํ‚ค๋ฉฐ, ์ด๋กœ ์ธํ•ด PAM-4 ๊ฒฐ์ • ํ”ผ๋“œ๋ฐฑ ์ดํ€„๋ผ์ด์ €์˜ ์„ฑ๋Šฅ์„ ์ œํ•œํ•˜๋Š” ์š”์ธ์ด๋‹ค. ๋ณธ ์—ฐ๊ตฌ์—์„œ๋Š” ์ธ๋ฒ„ํ„ฐ ๊ธฐ๋ฐ˜์˜ ํ•ฉ์‚ฐ๊ธฐ๋ฅผ ์ด์šฉ, ์„ ํƒ์ ์œผ๋กœ ์‹ ํ˜ธ๋ฅผ ์ฆํญ์‹œํ‚ค๋Š” ๊ฒฐ์ • ํ”ผ๋“œ๋ฐฑ ์ดํ€„๋ผ์ด์ €๋ฅผ ์‚ฌ์šฉํ•จ์œผ๋กœ์จ ์Šฌ๋ผ์ด์„œ์˜ ์ „๋ ฅ ์†Œ๋ชจ๋ฅผ ์ฆ๊ฐ€์‹œํ‚ค์ง€ ์•Š์œผ๋ฉด์„œ ์Šฌ๋ผ์ด์„œ์˜ ํด๋Ÿญ-ํ ๋”œ๋ ˆ์ด๋ฅผ ์ค„์ผ ์ˆ˜ ์žˆ๋‹ค. ๋˜ํ•œ, ์ ์‘ํ˜• ์ง€์—ฐ ์ด๋“ ์ปจํŠธ๋กค๋Ÿฌ๋ฅผ ํฌํ•จํ•˜๋Š” ์ง๊ต ์‹ ํ˜ธ ๋ณด์ •๊ธฐ๋Š” ๋†’์€ ์ •ํ™•๋„์™€ ๋น ๋ฅธ ์Šคํ ๋ณด์ •์œผ๋กœ ์ฟผ๋“œ๋Ÿฌ์ฒ˜ ํด๋Ÿญ ๊ฐ„์˜ ์Šคํ๋ฅผ ๊ต์ •ํ•  ์ˆ˜ ์žˆ๋‹ค. ์„ ํƒ์  ๋ˆˆ ์ฆํญ ๊ฒฐ์ • ํ”ผ๋“œ๋ฐฑ ์ดํ€„๋ผ์ด์ €์™€ ์ ์‘ํ˜• ์ง€์—ฐ ์ด๋“ ์ปจํŠธ๋กค๋Ÿฌ๋ฅผ ํฌํ•จํ•˜๋Š” ์ง๊ต ์‹ ํ˜ธ ๋ณด์ •๊ธฐ์˜ ์„ฑ๋Šฅ์„ ๊ฒ€์ฆํ•˜๊ธฐ ์œ„ํ•ด ํ”„๋กœํ† ํƒ€์ž… ์นฉ์„ ์ œ์ž‘ํ•˜์˜€๋‹ค. ์ œ์ž‘๋œ ์นฉ์€ 65 nm CMOS ๊ณต์ •์œผ๋กœ ์ œ์ž‘๋˜์—ˆ๋‹ค. ํ”„๋กœํ† ํƒ€์ž… ์นฉ์€ 24 Gb/s/pin ์—์„œ 10-12 ์˜ ๋น„ํŠธ ์—๋Ÿฌ์œจ์„ 100 mUI ์˜ ์‹ ํ˜ธ ๋„ˆ๋น„๋กœ ๋‹ฌ์„ฑํ•˜์˜€๋‹ค. ํ”„๋กœํ† ํƒ€์ž… ์นฉ ๋‚ด PAM-4 ์ˆ˜์‹ ๊ธฐ๋Š” 0.73 pJ/b ์˜ ์—๋„ˆ์ง€ ํšจ์œจ์„ ๊ฐ–๋Š”๋‹ค. ๋˜ํ•œ ์ ์‘ํ˜• ์ง€์—ฐ ์ด๋“ ์ปจํŠธ๋กค๋Ÿฌ๋ฅผ ํฌํ•จํ•˜๋Š” ์ง๊ต ์‹ ํ˜ธ ๋ณด์ •๊ธฐ๋Š” 3 GHz ์ฟผ๋“œ๋Ÿฌ์ฒ˜ ํด๋Ÿญ ๊ฐ„ ์ตœ๋Œ€ 21.2 ps ์˜ ์Šคํ๋ฅผ 0.8 ps ๊นŒ์ง€ ์ค„์ผ ์ˆ˜ ์žˆ์œผ๋ฉฐ, ์ด ๋•Œ 76.9 ns ์˜ ๊ต์ • ์‹œ๊ฐ„์„ ๊ฐ–๋Š”๋‹ค. ์ œ์•ˆํ•˜๋Š” ์ง๊ต ์‹ ํ˜ธ ๋ณด์ •๊ธฐ๋Š” 3 GHz ์—์„œ 2.15 mW/GHz ์˜ ์ „๋ ฅ ํšจ์œจ์„ ๊ฐ–๋Š”๋‹ค.A four-level pulse amplitude modulation (PAM-4) receiver, and a quadrature signal corrector (QSC) that generates quadrature clocks for memory interfaces is presented. Increasing IP traffic in data centers has increased the demand for high-speed and low-power memory interfaces. To satisfy this demand, PAM-4 signaling, which can increase data-rate without increasing clock and Nyquist frequency, is received considerable attention. PAM- signaling has vertical which three times lower than non-return-to-zero (NRZ) signaling, which makes the clock-to-Q delay of the slicer in the decision feedback equalizer (DFE) increases. This makes the DFE difficult to satisfy the timing constraint. In this paper, by using a DFE with inverter-based summers, the clock-to-Q delay of the slicer can be reduced without increasing the power consumption of the slicers. Also, the QSC using an adaptive delay gain controller can correct the skew between the quadrature clock with low skew and short correction time. The prototype receiver including the DFE with the inverter-based summer and the QSC using the adaptive delay gain controller was fabricated in 65 nm CMOS process. The prototype chip can achieve a bit error rate (BER) of 10-12 at 24 Gb/s/pin, and at this time, an eye width of 100 mUI is secured. The efficiency of the receiver is 0.73 pJ/b. In addition, the QSC cna reduce the maximum 21.2 ps of skew between 3 GHz quadrature clocks to 0.8 ps and has a correction time of 76.9 ns. The efficiency of the QSC is 2.15 mW/GHz.ABSTRACT 1 CONTENTS 3 LIST OF FIGURES 5 LIST OF TABLE 9 CHAPTER 1 1 INTRODUCTION 1 1.1 MOTIVATION 1 1.2 PAM-4 SIGNALING 7 1.2.1 DESIGN CONSIDERATIONS ON PAM-4 RECEIVER 10 1.2.2 PRIOR WORKS 14 1.3 QUARTER-RATE ARCHITECTURE 18 1.3.1 DESIGN CONSIDERATION ON QUARTER-RATE ARCHITECTURE 20 1.3.2 PRIOR WORKS 25 1.4 SUMMARY 28 1.5 THESIS ORGANIZATION 30 CHAPTER 2 31 CONCEPTS OF DFE WITH INVERTER-BASED SUMMER 31 2.1 CONCEPTUAL ARCHITECTURE OF DFE WITH INVERTER-BASED SUMMER 32 2.2 DESIGN CONSIDERATION OF INVERTER-BASED SUMMER 37 CHAPTER 3 41 CONCEPTS OF QUADRATURE SIGNAL CORRECTOR USING ADAPTIVE DELAY GAIN CONTROLLER 41 3.1 OPERATION OF PROPOSED QUADRATURE SIGNAL CORRECTOR 42 3.2 LOOP FILTER INCLUDING ADAPTIVE DELAY GAIN CONTROLLER 45 CHAPTER 4 48 ARCHITECTURE AND IMPLEMENTATION 48 4.1 OVERALL ARCHITECTURE 49 4.2 ANALOG FRONT END 52 4.3 DECISION FEEDBACK EQUALIZER WITH INVERTER-BASED SUMMER 54 4.4 CLOCK PATH 62 4.5 QUADRATURE SIGNAL CORRECTOR WITH ADAPTIVE DELAY GAIN CONTROLLER 63 CHAPTER 5 70 EXPERIMENTAL RESULTS 70 5.1 EXPERIMENTAL SETUP 70 5.2 EXPERIMENTAL RESULTS 74 5.2.1 MEASUREMENT RESULTS OF PAM-4 RECEIVER WITH DECISION FEEDBACK EQUALIZER USING INVERTER-BASED SUMMER 74 5.2.2 MEASUREMENT RESULTS OF QUADRATURE SIGNAL CORRECTOR USING ADAPTIVE DELAY GAIN CONTROLLER 77 CHAPTER 6 83 CONCLUSION 83 BIBLIOGRAPHY 86๋ฐ•

    Advanced equalization and crosstalk suppression for high-speed communication

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    ์ฐจ์„ธ๋Œ€ ์ž๋™์ฐจ์šฉ ์นด๋ฉ”๋ผ ๋ฐ์ดํ„ฐ ํ†ต์‹ ์„ ์œ„ํ•œ ๋น„๋Œ€์นญ ๋™์‹œ ์–‘๋ฐฉํ–ฅ ์†ก์ˆ˜์‹ ๊ธฐ์˜ ์„ค๊ณ„

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    ํ•™์œ„๋…ผ๋ฌธ(๋ฐ•์‚ฌ) -- ์„œ์šธ๋Œ€ํ•™๊ต๋Œ€ํ•™์› : ๊ณต๊ณผ๋Œ€ํ•™ ์ „๊ธฐยท์ •๋ณด๊ณตํ•™๋ถ€, 2022.2. ์ •๋•๊ท .๋ณธ ํ•™์œ„ ๋…ผ๋ฌธ์—์„œ๋Š” ์ฐจ์„ธ๋Œ€ ์ž๋™์ฐจ์šฉ ์นด๋ฉ”๋ผ ๋งํฌ๋ฅผ ์œ„ํ•ด ๋†’์€ ์†๋„์˜ 4๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์‹ ํ˜ธ์™€ ๋‚ฎ์€ ์†๋„์˜ 2๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์‹ ํ˜ธ๋ฅผ ํ†ต์‹ ํ•˜๋Š” ๋น„๋Œ€์นญ ๋™์‹œ ์–‘๋ฐฉํ–ฅ ์†ก์ˆ˜์‹ ๊ธฐ์˜ ์„ค๊ณ„ ๊ธฐ์ˆ ์— ๋Œ€ํ•ด ์ œ์•ˆํ•˜๊ณ  ๊ฒ€์ฆ๋˜์—ˆ๋‹ค. ์ฒซ๋ฒˆ์งธ ํ”„๋กœํ† ํƒ€์ž… ์„ค๊ณ„์—์„œ๋Š”, 10B6Q ์ง๋ฅ˜ ๋ฐธ๋Ÿฐ์Šค ์ฝ”๋“œ๋ฅผ ํƒ‘์žฌํ•œ 4๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์†ก์‹ ๊ธฐ์™€ ๊ณ ์ •๋œ ๋ฐ์ดํ„ฐ์™€ ์ฐธ์กฐ ๋ ˆ๋ฒจ์„ ๊ฐ€์ง€๋Š” 4๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์ ์‘ํ˜• ์ˆ˜์‹ ๊ธฐ์— ๋Œ€ํ•œ ๋‚ด์šฉ์ด ๊ธฐ์ˆ ๋˜์—ˆ๋‹ค. 4๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์†ก์‹ ๊ธฐ์—์„œ๋Š” ๊ต๋ฅ˜ ์—ฐ๊ฒฐ ๋งํฌ ์‹œ์Šคํ…œ์— ๋Œ€์‘ํ•˜๊ธฐ ์œ„ํ•œ ๋ฉด์  ๋ฐ ์ „๋ ฅ ํšจ์œจ์„ฑ์ด ์ข‹์€ 10B6Q ์ฝ”๋“œ๊ฐ€ ์ œ์•ˆ๋˜์—ˆ๋‹ค. ์ด ์ฝ”๋“œ๋Š” ์ง๋ฅ˜ ๋ฐธ๋Ÿฐ์Šค๋ฅผ ๋งž์ถ”๊ณ  ์—ฐ์†์ ์œผ๋กœ ๊ฐ™์€ ์‹ฌ๋ณผ์„ ๊ฐ€์ง€๋Š” ๊ธธ์ด๋ฅผ 6๊ฐœ๋กœ ์ œํ•œ ์‹œํ‚จ๋‹ค. ๋น„๋ก ์—ฌ๊ธฐ์„œ๋Š” ์ž…๋ ฅ ๋ฐ์ดํ„ฐ ๊ธธ์ด 10๋น„ํŠธ๋ฅผ ์‚ฌ์šฉํ•˜์˜€์ง€๋งŒ, ์ œ์•ˆ๋œ ๊ธฐ์ˆ ์€ ์นด๋ฉ”๋ผ์˜ ๋‹ค์–‘ํ•œ ๋ฐ์ดํ„ฐ ํƒ€์ž…์— ๋Œ€์‘ํ•  ์ˆ˜ ์žˆ๋„๋ก ์ž…๋ ฅ ๋ฐ์ดํ„ฐ ๊ธธ์ด์— ๋Œ€ํ•œ ํ™•์žฅ์„ฑ์„ ๊ฐ€์ง„๋‹ค. ๋ฐ˜๋ฉด, 4๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์ ์‘ํ˜• ์ˆ˜์‹ ๊ธฐ์—์„œ๋Š”, ์ƒ˜ํ”Œ๋Ÿฌ์˜ ์˜ต์…‹์„ ์ตœ์ ์œผ๋กœ ์ œ๊ฑฐํ•˜์—ฌ ๋” ๋‚ฎ์€ ๋น„ํŠธ์—๋Ÿฌ์œจ์„ ์–ป๊ธฐ ์œ„ํ•ด์„œ, ๊ธฐ์กด์˜ ๋ฐ์ดํ„ฐ ๋ฐ ์ฐธ์กฐ ๋ ˆ๋ฒจ์„ ์กฐ์ ˆํ•˜๋Š” ๋Œ€์‹ , ์ด ๋ ˆ๋ฒจ๋“ค์€ ๊ณ ์ •์‹œํ‚ค๊ณ  ๊ฐ€๋ณ€ ๊ฒŒ์ธ ์ฆํญ๊ธฐ๋ฅผ ์ ์‘ํ˜•์œผ๋กœ ์กฐ์ ˆํ•˜๋„๋ก ํ•˜์˜€๋‹ค. ์ƒ๊ธฐ 10B6Q ์ฝ”๋“œ ๋ฐ ๊ณ ์ • ๋ฐ์ดํ„ฐ ๋ฐ ์ฐธ์กฐ๋ ˆ๋ฒจ ๊ธฐ์ˆ ์„ ๊ฐ€์ง„ ํ”„๋กœํ† ํƒ€์ž… ์นฉ๋“ค์€ 40 ๋‚˜๋…ธ๋ฏธํ„ฐ ์ƒํ˜ธ๋ณด์™„ํ˜• ๋ฉ”ํƒˆ ์‚ฐํ™” ๋ฐ˜๋„์ฒด ๊ณต์ •์œผ๋กœ ์ œ์ž‘๋˜์—ˆ๊ณ  ์นฉ ์˜จ ๋ณด๋“œ ํ˜•ํƒœ๋กœ ํ‰๊ฐ€๋˜์—ˆ๋‹ค. 10B6Q ์ฝ”๋“œ๋Š” ํ•ฉ์„ฑ ๊ฒŒ์ดํŠธ ์ˆซ์ž๋Š” 645๊ฐœ์™€ ํ•จ๊ป˜ ๋‹จ 0.0009 mm2 ์˜ ๋ฉด์  ๋งŒ์„ ์ฐจ์ง€ํ•œ๋‹ค. ๋˜ํ•œ, 667 MHz ๋™์ž‘ ์ฃผํŒŒ์ˆ˜์—์„œ ๋‹จ 0.23 mW ์˜ ์ „๋ ฅ์„ ์†Œ๋ชจํ•œ๋‹ค. 10B6Q ์ฝ”๋“œ๋ฅผ ํƒ‘์žฌํ•œ ์†ก์‹ ๊ธฐ์—์„œ 8-Gb/s 4๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์‹ ํ˜ธ๋ฅผ ๊ณ ์ • ๋ฐ์ดํ„ฐ ๋ฐ ์ฐธ์กฐ ๋ ˆ๋ฒจ์„ ๊ฐ€์ง€๋Š” ์ ์‘ํ˜• ์ˆ˜์‹ ๊ธฐ๋กœ 12-m ์ผ€์ด๋ธ” (22-dB ์ฑ„๋„ ๋กœ์Šค) ์„ ํ†ตํ•ด์„œ ๋ณด๋‚ธ ๊ฒฐ๊ณผ ์ตœ์†Œ ๋น„ํŠธ ์—๋Ÿฌ์œจ 108 ์„ ๋‹ฌ์„ฑํ•˜์˜€๊ณ , ๋น„ํŠธ ์—๋Ÿฌ์œจ 105 ์—์„œ๋Š” ์•„์ด ๋งˆ์ง„์ด 0.15 UI x 50 mV ๋ณด๋‹ค ํฌ๊ฒŒ ์ธก์ •๋˜์—ˆ๋‹ค. ์†ก์ˆ˜์‹ ๊ธฐ๋ฅผ ํ•ฉ์นœ ์ „๋ ฅ ์†Œ๋ชจ๋Š” 65.2 mW (PLL ์ œ์™ธ) ์ด๊ณ , ์„ฑ๊ณผ์˜ ๋Œ€ํ‘œ์ˆ˜์น˜๋Š” 0.37 pJ/b/dB ๋ฅผ ๋ณด์—ฌ์ฃผ์—ˆ๋‹ค. ์ฒซ๋ฒˆ์งธ ํ”„๋กœํ† ํƒ€์ž… ์„ค๊ณ„์„ ํฌํ•จํ•˜์—ฌ ๊ฐœ์„ ๋œ ๋‘๋ฒˆ์งธ ํ”„๋กœํ† ํƒ€์ž… ์„ค๊ณ„์—์„œ๋Š”, 12-Gb/s 4๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์ •๋ฐฉํ–ฅ ์ฑ„๋„ ์‹ ํ˜ธ์™€ 125-Mb/s 2๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์—ญ๋ฐฉํ–ฅ ์ฑ„๋„ ์‹ ํ˜ธ๋ฅผ ํƒ‘์žฌํ•œ ๋น„๋Œ€์นญ ๋™์‹œ ์–‘๋ฐฉํ–ฅ ์†ก์ˆ˜์‹ ๊ธฐ์— ๋Œ€ํ•ด ๊ธฐ์ˆ ๋˜๊ณ  ๊ฒ€์ฆ๋˜์—ˆ๋‹ค. ์ œ์•ˆ๋œ ๋„“์€ ์„ ํ˜• ๋ฒ”์œ„๋ฅผ ๊ฐ€์ง€๋Š” ํ•˜์ด๋ธŒ๋ฆฌ๋“œ๋Š” gmC ์ €๋Œ€์—ญ ํ†ต๊ณผ ํ•„ํ„ฐ์™€ ์—์ฝ” ์ œ๊ฑฐ๊ธฐ์™€ ํ•จ๊ป˜ ์•„์›ƒ๋ฐ”์šด๋“œ ์‹ ํ˜ธ๋ฅผ 24 dB ์ด์ƒ ํšจ์œจ์ ์œผ๋กœ ๊ฐ์†Œ์‹œ์ผฐ๋‹ค. ๋˜ํ•œ, ๋„“์€ ์„ ํ˜• ๋ฒ”์œ„๋ฅผ ๊ฐ€์ง€๋Š” ํ•˜์ด๋ธŒ๋ฆฌ๋“œ์™€ ํ•จ๊ป˜ ๊ฒŒ์ธ ๊ฐ์†Œ๊ธฐ๋ฅผ ํ˜•์„ฑํ•˜๊ฒŒ ๋˜๋Š” ์„ ํ˜• ๋ฒ”์œ„ ์ฆํญ๊ธฐ๋ฅผ ํ†ตํ•ด 4๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์‹ ํ˜ธ์˜ ์„ ํ˜•์„ฑ๊ณผ ์ง„ํญ์˜ ํŠธ๋ ˆ์ด๋“œ ์˜คํ”„ ๊ด€๊ณ„๋ฅผ ๊นจ๋Š” ๊ฒƒ์ด ๊ฐ€๋Šฅํ•˜์˜€๋‹ค. ๋™์‹œ ์–‘๋ฐฉํ–ฅ ์†ก์ˆ˜์‹ ๊ธฐ ์นฉ์€ 40 ๋‚˜๋…ธ๋ฏธํ„ฐ ์ƒํ˜ธ๋ณด์™„ํ˜• ๋ฉ”ํƒˆ ์‚ฐํ™” ๋ฐ˜๋„์ฒด ๊ณต์ •์œผ๋กœ ์ œ์ž‘๋˜์—ˆ๋‹ค. ์ƒ๊ธฐ ์„ค๊ณ„ ๊ธฐ์ˆ ๋“ค์„ ์ด์šฉํ•˜์—ฌ, 4๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ๋ฐ 2๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์†ก์ˆ˜์‹ ๊ธฐ ๋ชจ๋‘ 5m ์ฑ„๋„ (์ฑ„๋„ ๋กœ์Šค 15.9 dB) ์—์„œ 1E-12 ๋ณด๋‹ค ๋‚ฎ์€ ๋น„ํŠธ ์—๋Ÿฌ์œจ์„ ๋‹ฌ์„ฑํ•˜์˜€๊ณ , ์ด 78.4 mW ์˜ ์ „๋ ฅ ์†Œ๋ชจ๋ฅผ ๊ธฐ๋กํ•˜์˜€๋‹ค. ์ข…ํ•ฉ์ ์ธ ์†ก์ˆ˜์‹ ๊ธฐ๋Š” ์„ฑ๊ณผ ๋Œ€ํ‘œ์ง€ํ‘œ๋กœ 0.41 pJ/b/dB ์™€ ํ•จ๊ป˜ ๋™์‹œ ์–‘๋ฐฉํ–ฅ ํ†ต์‹  ์•„๋ž˜์—์„œ 4๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์‹ ํ˜ธ ๋ฐ 2๋ ˆ๋ฒจ ํŽ„์Šค ์ง„ํญ ๋ณ€์กฐ ์‹ ํ˜ธ ๊ฐ๊ฐ์—์„œ ์•„์ด ๋งˆ์ง„ 0.15 UI ์™€ 0.57 UI ๋ฅผ ๋‹ฌ์„ฑํ•˜์˜€๋‹ค. ์ด ์ˆ˜์น˜๋Š” ์„ฑ๊ณผ ๋Œ€ํ‘œ์ง€ํ‘œ 0.5 ์ดํ•˜๋ฅผ ๊ฐ€์ง€๋Š” ๊ธฐ์กด ๋™์‹œ ์–‘๋ฐฉํ–ฅ ์†ก์ˆ˜์‹ ๊ธฐ์™€์˜ ๋น„๊ต์—์„œ ์ตœ๊ณ ์˜ ์•„์ด ๋งˆ์ง„์„ ๊ธฐ๋กํ•˜์˜€๋‹ค.In this dissertation, design techniques of a highly asymmetric simultaneous bidirectional (SB) transceivers with high-speed PAM-4 and low-speed PAM-2 signals are proposed and demonstrated for the next-generation automotive camera link. In a first prototype design, a PAM-4 transmitter with 10B6Q DC balance code and a PAM-4 adaptive receiver with fixed data and threshold levels (dtLevs) are presented. In PAM-4 transmitter, an area- and power-efficient 10B6Q code for an AC coupled link system that guarantees DC balance and limited run length of six is proposed. Although the input data width of 10 bits is used here, the proposed scheme has an extensibility for the input data width to cover various data types of the camera. On the other hand, in the PAM-4 adaptive receiver, to optimally cancel the sampler offset for a lower BER, instead of adjusting dtLevs, the gain of a programmable gain amplifier is adjusted adaptively under fixed dtLevs. The prototype chips including above proposed 10B6Q code and fixed dtLevs are fabricated in 40-nm CMOS technology and tested in chip-on-board assembly. The 10B6Q code only occupies an active area of 0.0009 mm2 with a synthesized gate count of 645. It also consumes 0.23 mW at the operating clock frequency of 667 MHz. The transmitter with 10B6Q code delivers 8-Gb/s PAM-4 signal to the adaptive receiver using fixed dtLevs through a lossy 12-m cable (22-dB channel loss) with a BER of 1E-8, and the eye margin larger than 0.15 UI x 50 mV is measured for a BER of 1E-5. The proto-type chips consume 65.2 mW (excluding PLL), exhibiting an FoM of 0.37 pJ/b/dB. In a second prototype design advanced from the first prototypes, An asymmetric SB transceivers incorporating a 12-Gb/s PAM-4 forward channel and a 125-Mb/s PAM-2 back channel are presented and demonstrated. The proposed wide linear range (WLR) hybrid combined with a gmC low-pass filter and an echo canceller effectively suppresses the outbound signals by more than 24dB. In addition, linear range enhancer which forms a gain attenuator with WLR hybrid breaks the trade-off between the linearity and the amplitude of the PAM-4 signal. The SB transceiver chips are separately fabricated in 40-nm CMOS technology. Using above design techniques, both PAM-4 and PAM-2 SB transceivers achieve BER less than 1E-12 over a 5-m channel (15.9 dB channel loss), consuming 78.4 mW. The overall transceivers achieve an FoM of 0.41 pJ/b/dB and eye margin (at BER of 1E-12) of 0.15 UI and 0.57 UI for the forward PAM-4 and back PAM-2 signals, respectively, under SB communication. This is the best eye margin compared to the prior art SB transceivers with an FoM less than 0.5.CHAPTER 1 INTRODUCTION 1 1.1 MOTIVATION 1 1.2 DISSERTATION ORGANIZATION 4 CHAPTER 2 BACKGROUND ON AUTOMOTIVE CAMERA LINK 6 2.1 OVERVIEW 6 2.2 SYSTEM REQUIREMENTS 10 2.2.1 CHANNEL 10 2.2.2 POWER OVER DIFFERENTIAL LINE (PODL) 12 2.2.3 AC COUPLING AND DC BALANCE CODE 15 2.2.4 SIMULTANEOUS BIDIRECTIONAL COMMUNICATION 18 2.2.4.1 HYBRID 18 2.2.4.2 ECHO CANCELLER 20 2.2.5 ADAPTIVE RECEIVE EQUALIZATION 22 CHAPTER 3 AREA AND POWER EFFICIENT 10B6Q ENCODER FOR DC BALANCE 25 3.1 INTRODUCTION 25 3.2 PRIOR WORKS 28 3.3 PROPOSED AREA- AND POWER-EFFICIENT 10B6Q PAM-4 CODER 30 3.4 DESIGN OF THE 10B6Q CODE 33 3.4.1 PAM-4 DC BALANCE 35 3.4.2 PAM-4 TRANSITION DENSITY 35 3.4.3 10B6Q DECODER 37 3.5 IMPLEMENTATION AND MEASUREMENT RESULTS 40 CHAPTER 4 PAM-4 TRANSMITTER AND ADAPTIVE RECEIVER WITH FIXED DATA AND THRESHOLD LEVELS 45 4.1 INTRODUCTION 45 4.2 PRIOR WORKS 47 4.3 ARCHITECTURE AND IMPLEMENTATION 49 4.2.1 PAM-4 TRANSMITTER 49 4.2.2 PAM-4 ADAPTIVE RECEIVER 52 4.3 MEASUREMENT RESULTS 62 CHAPTER 5 ASYMMETRIC SIMULTANEOUS BIDIRECTIONAL TRANSCEIVERS USING WIDE LINEAR RANGE HYBRID 68 5.1 INTRODUCTION 68 5.2 PRIOR WORKS 70 5.3 WIDE LINEAR RANGE (WLR) HYBRID 75 5.3 IMPLEMENTATION 78 5.3.1 SERIALIZER (SER) DESIGN 78 5.3.2 DESERIALIZER (DES) DESIGN 79 5.4 HALF CIRCUIT ANALYSIS OF WLR HYBRID AND LRE 82 5.5 MEASUREMENT RESULTS 88 CHAPTER 6 CONCLUSION 97 BIBLIOGRAPHY 99 ์ดˆ ๋ก 106๋ฐ•

    56+ Gb/s serial transmission using duo-binary signaling

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    In this paper we present duobinary signaling as an alternative for signaling schemes like PAM4 and Ensemble NRZ that are currently being considered as ways to achieve data rates of 56 Gb/s over copper. At the system level, the design includes a custom transceiver ASIC. The transmitter is capable of equalizing 56 Gb/s non-return to zero (NRZ) signals into a duobinary response at the output of the channel. The receiver includes dedicated hardware to decode the duobinary signal. This transceiver is used to demonstrate error-free transmission for different PCB channel lengths including a state-of-the-art Megtron 6 backplane demonstrator
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