{"title":"基于电流域混合变焦的140db - dr光-数字转换器的基线抵消和干扰补偿","authors":"Chang Yao;Zhen Lu;Liheng Liu;Yaohua Pan;Wenhui Qin;Shaoyu Ma;Yun Sheng;Zhiliang Hong;Jiawei Xu","doi":"10.1109/JSSC.2024.3503281","DOIUrl":null,"url":null,"abstract":"Noninvasive optical sensing techniques, such as photoplethysmography (PPG) and functional near-infrared spectroscopy (fNIRS), provide great user comfort and obtain rich hemodynamic information in term of pulse oximetry, blood flow velocity, and blood vessel stiffness. Conventional optical sensor readouts have evolved toward higher dynamic range (DR) and power-efficiency. In addition to quasi-static baseline input signals, fast-varying interferences due to motion artifacts (MAs) or environment changes can also cause saturation. How to compensate or tolerate these disturbances efficiently is one of the prominent properties required in emerging optical sensors. This article presents a high DR, energy-efficient light-to-digital converter (LDC). The proposed LDC utilizes a second-order incremental delta-sigma modulator (I-DSM) for high resolution, while a power-scaling OTA is utilized to reduce power consumption of the main integrator. The current-domain static zoom (SZ) is exploited to cancel baseline currents for high DR, while the dynamic zoom (DZ) tracks and compensates the residual ac input current to prevent fast-varying interference from saturating the analog-front-end (AFE) during fine quantization. Fabricated in a standard <inline-formula> <tex-math>$0.18~\\mu $ </tex-math></inline-formula>m CMOS process, the LDC achieves a very high DR of 140 dB in a 2 kHz bandwidth. Thanks to the power-scaling OTA, the signal-to-noise and distortion-ratio (SNDR) of the ac path reaches 94.55 dB with only <inline-formula> <tex-math>$44~\\mu $ </tex-math></inline-formula>W from a 1.2 V supply. The benefits of SZ and DZ have been validated by chest PPG measurement with significant MAs.","PeriodicalId":13129,"journal":{"name":"IEEE Journal of Solid-state Circuits","volume":"60 3","pages":"826-837"},"PeriodicalIF":5.6000,"publicationDate":"2024-12-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"A 140 dB-DR Light-to-Digital Converter Using Current-Domain Hybrid Zoom for Baseline Cancellation and Interference Compensation\",\"authors\":\"Chang Yao;Zhen Lu;Liheng Liu;Yaohua Pan;Wenhui Qin;Shaoyu Ma;Yun Sheng;Zhiliang Hong;Jiawei Xu\",\"doi\":\"10.1109/JSSC.2024.3503281\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Noninvasive optical sensing techniques, such as photoplethysmography (PPG) and functional near-infrared spectroscopy (fNIRS), provide great user comfort and obtain rich hemodynamic information in term of pulse oximetry, blood flow velocity, and blood vessel stiffness. Conventional optical sensor readouts have evolved toward higher dynamic range (DR) and power-efficiency. In addition to quasi-static baseline input signals, fast-varying interferences due to motion artifacts (MAs) or environment changes can also cause saturation. How to compensate or tolerate these disturbances efficiently is one of the prominent properties required in emerging optical sensors. This article presents a high DR, energy-efficient light-to-digital converter (LDC). The proposed LDC utilizes a second-order incremental delta-sigma modulator (I-DSM) for high resolution, while a power-scaling OTA is utilized to reduce power consumption of the main integrator. The current-domain static zoom (SZ) is exploited to cancel baseline currents for high DR, while the dynamic zoom (DZ) tracks and compensates the residual ac input current to prevent fast-varying interference from saturating the analog-front-end (AFE) during fine quantization. Fabricated in a standard <inline-formula> <tex-math>$0.18~\\\\mu $ </tex-math></inline-formula>m CMOS process, the LDC achieves a very high DR of 140 dB in a 2 kHz bandwidth. Thanks to the power-scaling OTA, the signal-to-noise and distortion-ratio (SNDR) of the ac path reaches 94.55 dB with only <inline-formula> <tex-math>$44~\\\\mu $ </tex-math></inline-formula>W from a 1.2 V supply. 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引用次数: 0
摘要
光体积脉搏波描记(PPG)和功能近红外光谱(fNIRS)等无创光学传感技术为用户提供了极大的舒适性,并在脉搏血氧测量、血流速度和血管刚度方面获得了丰富的血液动力学信息。传统的光学传感器读出已经向更高的动态范围(DR)和功率效率发展。除了准静态基线输入信号外,由运动伪影(MAs)或环境变化引起的快速变化干扰也会导致饱和。如何有效地补偿或容忍这些干扰是新兴光学传感器所要求的突出性能之一。本文介绍了一种高DR、高能效的光-数转换器(LDC)。所提出的LDC采用二阶增量δ - σ调制器(I-DSM)实现高分辨率,而功率缩放OTA则用于降低主积分器的功耗。电流域静态变焦(SZ)用于消除高DR时的基线电流,而动态变焦(DZ)跟踪和补偿剩余的交流输入电流,以防止在精细量化过程中快速变化的干扰使模拟前端(AFE)饱和。在标准的0.18~\mu $ m CMOS工艺中制造,LDC在2khz带宽下实现了140 dB的高DR。由于功率缩放OTA,交流通路的信噪比和失真比(SNDR)达到94.55 dB,仅从1.2 V电源输出44~ $ mu $ W。SZ和DZ的益处已通过显著MAs的胸部PPG测量得到验证。
A 140 dB-DR Light-to-Digital Converter Using Current-Domain Hybrid Zoom for Baseline Cancellation and Interference Compensation
Noninvasive optical sensing techniques, such as photoplethysmography (PPG) and functional near-infrared spectroscopy (fNIRS), provide great user comfort and obtain rich hemodynamic information in term of pulse oximetry, blood flow velocity, and blood vessel stiffness. Conventional optical sensor readouts have evolved toward higher dynamic range (DR) and power-efficiency. In addition to quasi-static baseline input signals, fast-varying interferences due to motion artifacts (MAs) or environment changes can also cause saturation. How to compensate or tolerate these disturbances efficiently is one of the prominent properties required in emerging optical sensors. This article presents a high DR, energy-efficient light-to-digital converter (LDC). The proposed LDC utilizes a second-order incremental delta-sigma modulator (I-DSM) for high resolution, while a power-scaling OTA is utilized to reduce power consumption of the main integrator. The current-domain static zoom (SZ) is exploited to cancel baseline currents for high DR, while the dynamic zoom (DZ) tracks and compensates the residual ac input current to prevent fast-varying interference from saturating the analog-front-end (AFE) during fine quantization. Fabricated in a standard $0.18~\mu $ m CMOS process, the LDC achieves a very high DR of 140 dB in a 2 kHz bandwidth. Thanks to the power-scaling OTA, the signal-to-noise and distortion-ratio (SNDR) of the ac path reaches 94.55 dB with only $44~\mu $ W from a 1.2 V supply. The benefits of SZ and DZ have been validated by chest PPG measurement with significant MAs.
期刊介绍:
The IEEE Journal of Solid-State Circuits publishes papers each month in the broad area of solid-state circuits with particular emphasis on transistor-level design of integrated circuits. It also provides coverage of topics such as circuits modeling, technology, systems design, layout, and testing that relate directly to IC design. Integrated circuits and VLSI are of principal interest; material related to discrete circuit design is seldom published. Experimental verification is strongly encouraged.