scholarly journals A 3-Bit Pseudo Flash ADC Based Low-Power CMOS Interface Circuit Design for Optical Sensor

2015 ◽  
Vol 11 (1) ◽  
pp. 93-102
Author(s):  
Maher Assaad ◽  
Mousa S. Mohsen ◽  
Dominique Ginhac ◽  
Fabrice Meriaudeau
2013 ◽  
Vol 13 (2) ◽  
pp. 610-617
Author(s):  
Maher Assaad ◽  
Israel Yohannes ◽  
Amine Bermak

2008 ◽  
Vol 55 (1) ◽  
pp. 84-95 ◽  
Author(s):  
Mi-Chang Chang ◽  
Chih-Sheng Chang ◽  
Chih-Ping Chao ◽  
Ken-Ichi Goto ◽  
Meikei Ieong ◽  
...  

Author(s):  
P.A. Gowri Sankar ◽  
G. Sathiyabama

The continuous scaling down of metal-oxide-semiconductor field effect transistors (MOSFETs) led to the considerable impact in the analog-digital mixed signal integrated circuit design for system-on-chips (SoCs) application. SoCs trends force ADCs to be integrated on the chip with other digital circuits. These trends present new challenges in ADC circuit design based on existing CMOS technology. In this paper, we have designed and analyzed a 3-bit high speed, low-voltage and low-power flash ADC at 32nm CNFET technology for SoC applications. The proposed ADC utilizes the Threshold Inverter Quantization (TIQ) technique that uses two cascaded carbon nanotube field effect transistor (CNFET) inverters as a comparator. The TIQ technique proposed has been developed for better implementation in SoC applications. The performance of the proposed ADC is studied using two different types of encoders such as ROM and Fat tree encoders. The proposed ADCs circuits are simulated using Synopsys HSPICE with standard 32nm CNFET model at 0.9 input supply voltage. The simulation results show that the proposed 3 bit TIQ technique based flash ADC with fat tree encoder operates up to 8 giga samples per second (GSPS) with 35.88µW power consumption. From the simulation results, we observed that the proposed TIQ flash ADC achieves high speed, small size, low power consumption, and low voltage operation compared to other low power CMOS technology based flash ADCs. The proposed method is sensitive to process, temperature and power supply voltage variations and their impact on the ADC performance is also investigated.


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