基于 CMOS 的 1V 以下电压基准设计

IF 0.5 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Electrical Systems Pub Date : 2024-05-08 DOI:10.52783/jes.3538
Garima Kapur
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引用次数: 0

摘要

本综述论文分析了 1V 以下电压基准的最新进展,以满足现代集成电路 (IC) 对超低功耗和高精度日益增长的需求。电压基准是物联网设备、可穿戴电子设备和能量收集系统等众多应用中的关键元件,在这些应用中,能效和精度至关重要。报告简要讨论了在如此低的电压下设计电压基准所面临的挑战,如有限的净空、降低的噪声裕量和工艺变化。主题包括高阶曲率补偿、改进的差分对配置以及用于集成能量收集的高能效解决方案。这些进步提高了低压电路的精度和可靠性,为现代数字领域的可持续、低功耗电子器件和紧凑型设备铺平了道路。论文强调了根据功耗、线路调节、温度稳定性和电源电压抑制比 (PSRR) 等标准对不同设计进行基准测试的重要性。论文包括对最先进的 1V 以下电压基准设计的深入分析、设计权衡的识别以及对未来研究方向的建议。它强调了电压基准设计不断创新以满足超低功耗电子产品不断发展的要求的重要性。本研究为详细分析 1V 以下电压基准的最新发展奠定了基础。
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CMOS Based Voltage Reference Designs for Sub - 1V
This review paper presents an analysis of the most recent advancements in sub-1V voltage references, addressing the growing demand for ultra-low power consumption and high precision in modern integrated circuits (ICs). Voltage references are critical components in numerous applications, including IoT devices, wearable electronics, and energy-harvesting systems, where power efficiency and accuracy are paramount. It briefly discusses the challenges associated with designing voltage references at such low voltages, such as limited headroom, reduced noise margin, and process variations. Topics include high-order curvature compensation, modified differential pair configurations, and energy-efficient solutions for integrated energy harvesting. These advancements enhance precision and reliability in low-voltage circuits, paving the way for sustainable, low-power electronics and compact devices in the modern digital landscape. It emphasizes the importance of benchmarking different designs against criteria such as power consumption, line regulation, temperature stability, and supply voltage rejection ratio (PSRR). The paper include insights into the state-of-the-art sub-1V voltage reference designs, identification of design trade-offs, and recommendations for future research directions. It underscores the importance of continuous innovation in voltage reference design to address the evolving requirements of ultra-low power electronics. The study here is setting the stage for a detailed analysis of the latest developments in sub-1V voltage references.
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来源期刊
Journal of Electrical Systems
Journal of Electrical Systems ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
1.10
自引率
25.00%
发文量
0
审稿时长
10 weeks
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