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High-Efficient, Ultra-Low-Power and High-Speed 4∶2 Compressor with a New Full Adder Cell for Bioelectronics Applications

机译:高效,超低功耗和高速4:2压缩机,具有新的全加法器电池,用于生物电子应用

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摘要

Size reduction in complementary metal-oxide-semiconductor integrated circuits (ICs) is a challenge. Carbon nanotube field effect transistor (CNTFET) technology with advantages such as low power, high mobility, and ballistic transmissions is an alternative. Based on the standard 32 nm CNTFET technology, a new 23-transistor full adder cell is proposed with combining advantages of gate diffusion input and transmission gate techniques, which are low power and full swing. Owing to small number of transistors and internal nodes, the delay time and activity factor decreased to 13.5 tau. Simulations of critical parameters variations like V-DD, temperature, and fan-out expose better performance of the proposed cell. Investigating the process voltage temperature with Monte Carlo simulation verified better stability, immunity, and tolerability of the cell in comparison with well-known full adder cells. Suggested full adder cell was implemented in 4:2 compressor with 9.0298 fJ of power delay product and minimum area occupation among the references. Based on real chip measurements, total die area occupation for proposed full adder and compressor is 0.505 mu m(2) and 1.092 mu m(2), respectively. Proposed circuits were applied to an 8-bit subtractor for orthopantomogram image processing to detect tooth core build up and restored with dental filling in order to maintain a crown restoration. Merits of proposed circuits both in IC design and image processing make these circuits suitable choice for bioelectronics chips.
机译:互补金属氧化物半导体集成电路(IC)的尺寸减小是一项挑战。碳纳米管场效应晶体管(CNTFET)技术具有低功率,高迁移率和弹道传输等优点是替代品。基于标准的32nm CNTFET技术,提出了一种新的23晶体管全加法器单元,采用栅极扩散输入和传输栅极技术的组合优势,这是低功率和全面摆动。由于少量的晶体管和内部节点,延迟时间和活动因子降低至13.5。模拟临界参数变化,如V-DD,温度和扇形曝光,暴露了所提出的细胞的更好性能。研究与蒙特卡罗模拟的过程电压温度验证了与众所周知的全加法细胞相比细胞的更好的稳定性,免疫力和耐受性。建议的完整加法器单元在4:2压缩机中实施,电力延迟产品9.0298 FJ,参考文献中的最低面积占领。基于真实芯片测量,提出的全芯片和压缩机的总模面占用分别为0.505μm(2)和1.092μm(2)。提出的电路用于8位减法器,用于矫正图图像处理,以检测牙齿填充并恢复牙齿填充物,以保持冠恢复。 IC设计和图像处理中提出的电路的优点使得这些电路适用于生物电子芯片。

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