• Title/Summary/Keyword: Current-mode CMOS

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A Low-Power Current-Mode CMOS Voltage Reference Circuit (저전력 전류모드 CMOS 기준전압 발생 회로)

  • 권덕기;오원석
    • Proceedings of the IEEK Conference
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    • 1998.10a
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    • pp.1077-1080
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    • 1998
  • In this paper, a simple low-power current-mode CMOS wotage reference circuit is proposed. The reference circuit of enhancement-mode MOS transistors and resistors. Temperature compensation is made by adding a current component proportional to a thermal voltage to a current component proportional to a threshold voltage. The designed circuit has been simulated using a $0.65\mu\textrm{m}$ n-well CMOS process parameters. The simulation results show that the reference circuit has a temperature coefficient less than $7.8ppm/^{\circ}C$ and a power-supply(VDD) coefficient less than 0.079%/V for a temperature range from $-30^{\circ}C$ to $130^{\circ}C$ and a VDD range from 4.0V to 12V. The power consumption is 105㎼ for VDD=5V and $T=30^{\circ}C.$ The proposed reference circuit can be designed to generate a wide range of reference voltages owing to its current-mode operation.

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Design of 3V a Low-Power CMOS Analog-to-Digital Converter (3V 저전력 CMOS 아날로그-디지털 변환기 설계)

  • 조성익;최경진;신홍규
    • Journal of the Korean Institute of Telematics and Electronics C
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    • v.36C no.11
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    • pp.10-17
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    • 1999
  • In this paper, CMOS IADC(Current-mode Analog-to-Digital Converter) which consists of only CMOS transistors is proposed. Each stages is made up 1.5-bit bit cells composed of CSH(Current-mode Sample-and-Hold) and CCMP(Current Comparator). The differential CSH which designed to eliminate CFT(Clock Feedthrough), to meet at least 9-bit resolution, is placed at the front-end of each bit cells, and each stages of bit cell ADSC (Analog-to-Digital Subconverter) is made up two latch CCMPs. With the HYUNDAI TEX>$0.65\mu\textrm{m}$ CMOS parameter, the ACAD simulation results show that the proposed IADC can be operated with 47 dB of SINAD(Signal to Noise- Plus-Distortion), 50dB(8-bit) of SNR(Signal-to-Noise) and 37.7 mW of power consumption for input signal of 100 KHz at 20 Ms/s.

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Design of A Voltage-controlled Frequency Tunable Integrator and 3rd-order Chebyshev CMOS Current-mode Filter (전압제어 주파수가변 적분기 및 3차 체비세프 CMOS 전류모드 필터 설계)

  • Bang, Jun-Ho;Lee, Woo-Choun
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.11 no.10
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    • pp.3905-3910
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    • 2010
  • In this paper, a 3rd-order Chebyshev current-mode filter in 1.8V-$0.18{\mu}m$ CMOS parameter is designed. The core circuit of the current-mode filter is composed with the proposed voltage-controlled frequency tunable current-mode integrator. Using the proposed current-mode integrator, the cutoff frequency of the filter can be controlled and also total power consumption can be reduced. HSPICE simulation results show the cutoff frequency of the filter is controlled between 1.2MHz and 10.1MHz, and the power consumption is 2.85mW at Vdd=1.8V.

Design of a 10 bit Low-power current-mode CMOS A/D converter with Current predictors (전류예측기를 이용한 10비트 저전력 전류구동 CMOS A/D 변환기 설계)

  • 심성훈;권용복;윤광섭
    • Journal of the Korean Institute of Telematics and Electronics C
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    • v.35C no.10
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    • pp.22-29
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    • 1998
  • In this paper, an 10 bit current-mode CMOS A/D converter with a current predictor is designed with a CMOS process to be integrated into a portable image signal processing system. A current predictor let the number of comparator reduce to 70 percent compared with the two step flash architecture. The current magnitude of current reference is reduced to 68 percent with a modular current reference. The designed 10 bit Low-power current-mode CMOS A/D converter with a current predictor is simulated with HSPICE using 0.6$\mu\textrm{m}$ N-well single-poly triple-metal CMOS process parameters. It results in a conversion rate of 10MSamples/s. A power consumption is measured to be 94.4mW at single +5V supply voltage. The 10 bit A/D converter fabricated using the same process occupies the chip area of 1.8mm x 2.4mm.

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Design of an 8 bit CMOS low power and high-speed current-mode folding and interpolation A/D converter (8비트 저전력 고속 전류구동 폴딩.인터폴레이션 CMOS A/D 변환기 설계)

  • 김경민;윤황섭
    • Journal of the Korean Institute of Telematics and Electronics C
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    • v.34C no.6
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    • pp.58-70
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    • 1997
  • In this paper, an 8bit CMOS low power, high-speed current-mode folding and interpolation A/D converter is designed with te LG semicon $0.8\mu\textrm{m}$ N-well single-poly/double-metal CMOS process to be integrated into a portable image signal processing system such as a digital camcoder. For good linearity and low power consumption, folding amplifiers and for high speed performance of the A/D converter, analog circuitries including folding block, current-mode interpolation circuit and current comparator are designed as a differential-mode. The fabricated 8 bit A/D converter occupies the active chip area of TEX>$2.2mm \times 1.6mm$ and shows DNL of $\pm0.2LSB$, INL of <$\pm0.5LSB$, conversion rate of 40M samples/s, and the measured maximum power dissipation of 33.6mW at single +5V supply voltage.

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A New Architecture of CMOS Current-Mode Analog-to-Digital Converter Using a 1.5-Bit Bit Cell (1.5-비트 비트 셀을 이용한 새로운 구조의 CMOS 전류모드 아날로그-디지털 변환기)

  • 최경진;이해길;나유찬;신홍규
    • The Journal of the Acoustical Society of Korea
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    • v.18 no.2
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    • pp.53-60
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    • 1999
  • In this paper, it is proposed to a new architecture of CMOS IADC(Current-Mode Analog-to-Digital Converter) using 1.5-bit bit cell of which consists a CSH(Current-Mode Sample-and-Hold) and CCMP(Current-Mode Comparator). In order to guarantee the entire linearity of IADC, the CSH is designed to cancel CFT(Clock Feedthrough) whose resolution is to meet at the least 9-bit which is placed in the front-end of each bit cell. In the proposed IADC, digital correction logic is simplified and power consumption is reduced because bit cell of each stage needs two latch CCMP. Also, it is available for a mixed-mode integrated circuit because all of block is designed with only MOS transistor. With the HYUNDAI 0.8㎛ CMOS parameter, the HSPICE simulation results show that the proposed IADC can be operated at 20Ms/s with SNR of 43 dB with which is satisfied 7-bit resolution for input signal at 100 ㎑, and its power consumption is 27㎽.

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Design of a 64×64-Bit Modified Booth Multiplier Using Current-Mode CMOS Quarternary Logic Circuits (전류모드 CMOS 4치 논리회로를 이용한 64×64-비트 변형된 Booth 곱셈기 설계)

  • Kim, Jeong-Beom
    • The KIPS Transactions:PartA
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    • v.14A no.4
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    • pp.203-208
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    • 2007
  • This paper proposes a $64{\times}64$ Modified Booth multiplier using CMOS multi-valued logic circuits. The multiplier based on the radix-4 algorithm is designed with current mode CMOS quaternary logic circuits. Designed multiplier is reduced the transistor count by 64.4% compared with the voltage mode binary multiplier. The multiplier is designed with Samsung $0.35{\mu}m$ standard CMOS process at a 3.3V supply voltage and unit current $5{\mu}m$. The validity and effectiveness are verified through the HSPICE simulation. The voltage mode binary multiplier is achieved the occupied area of $7.5{\times}9.4mm^2$, the maximum propagation delay time of 9.8ns and the average power consumption of 45.2mW. This multiplier is achieved the maximum propagation delay time of 11.9ns and the average power consumption of 49.7mW. The designed multiplier is reduced the occupied area by 42.5% compared with the voltage mode binary multiplier.

A Study on Circuit Design Method for Linearity and Range Improvement of CMOS Analog Current-Mode Multiplier (CMOS 아날로그 전류모드 곱셈기의 선형성과 동적범위 향상을 위한 회로설계 기법에 관한 연구)

  • Lee, Daniel Juhun;Kim, Hyung-Min;Park, So-Youn;Nho, Tae-Min;Kim, Seong-Kweon
    • The Journal of the Korea institute of electronic communication sciences
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    • v.15 no.3
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    • pp.479-486
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    • 2020
  • In this paper, we present a design method for improving the linearity and dynamic range of the analog current mode multiplier circuit, which is one of the key devices in an analog current mode AI processor. The proposed circuit consists of 4 quadrant translinear loops made up of NMOS transistors only, which minimizes physical mismatches of the transistors. The proposed circuit can be implemented at 117㎛ × 109㎛ in 0.35㎛ CMOS process and has a total harmonic distortion of 0.3%. The proposed analog current mode multiplier is expected to be useful as the core circuit of a current mode AI processor.

Design of a Full-Adder Using Current-Mode Multiple-Valued Logic CMOS Circuits (전류 모드 CMOS 다치 논리 회로를 이용한 전가산기 설계)

  • Won, Young-Uk;Kim, Jong-Soo;Kim, Jeong-Beom
    • Proceedings of the KIEE Conference
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    • 2003.11b
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    • pp.275-278
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    • 2003
  • This paper presents a full-adder using current-mode multiple valued logic CMOS circuits. This paper compares propagation delay, power consumption, and PDP(Power Delay Product) compared with conventional circuit. This circuit is designed with a samsung 0.35um n-well 2-poly 3-metal CMOS technology. Designed circuits are simulated and verified by HSPICE. Proposed full-adder has 2.25 ns of propagation delay and 0.21 mW of power consumption.

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(Implementation of Current-Mode CMOS Multiple-Valued Logic Circuits) (전류 모드 CMOS 다치 논리 회로의 구현)

  • Seong, Hyeon-Gyeong;Han, Yeong-Hwan;Sim, Jae-Hwan
    • Journal of the Institute of Electronics Engineers of Korea SC
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    • v.39 no.3
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    • pp.191-200
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    • 2002
  • In this paper, we present the method transforming the interval functions into the truncated difference functions for multi-variable multi-valued functions and implementing the truncated difference functions to the multiple valued logic circuits with uniform patterns using the current mirror circuits and the inhibit circuits by current-mode CMOS. Also, we apply the presented methods to the implementation of circuits for additive truth table of 2-variable 4-valued MOD(4) and multiplicative truth table of 2-variable 4-valued finite fields GF(4). These circuits are simulated under 2${\mu}{\textrm}{m}$ CMOS standard technology, 15$mutextrm{A}$ unit current, and 3.3V power supply voltage using PSpice. The simulation results have shown the satisfying current characteristics. Both implemented circuits using current-mode CMOS have the uniform Patterns and the regularity of interconnection. Also, it is expansible for the variables of multiple valued logic functions and are suitable for VLSI implementation.