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dc.contributor.author Seol, Taeryoung -
dc.contributor.author Kim, Geunha -
dc.contributor.author Lee, Sehwan -
dc.contributor.author Kim, Samhwan -
dc.contributor.author Kim, Dong Wook -
dc.contributor.author Wie, Jeongyoon -
dc.contributor.author Shin, Yeon Jae -
dc.contributor.author Kang, Hongki -
dc.contributor.author Jang, Jae Eun -
dc.contributor.author George, Arup Kocheethra -
dc.contributor.author Lee, Junghyup -
dc.date.accessioned 2025-01-31T22:40:15Z -
dc.date.available 2025-01-31T22:40:15Z -
dc.date.created 2024-04-01 -
dc.date.issued 2024-02-21 -
dc.identifier.isbn 9798350306200 -
dc.identifier.issn 0193-6530 -
dc.identifier.uri http://hdl.handle.net/20.500.11750/57831 -
dc.description.abstract As the precise acquisition of continuous ExG (ENG, ECG, etc.) and biocurrent (chemical, PPG, etc.) signals provides further insights into chronic health conditions [1,2], a lowpower readout system capable of simultaneously recording ExG and biocurrent signals with high precision is beneficial (Fig. 33.11.1(a)). Such a system requires BW>5kHz, noise floor ~100nV/√Hz, and FOMSNDR>170dB to cover the entire ExG spectrum. Also, an input range (IR)>100mVPP is necessary to prevent saturation. Likewise, for biocurrent acquisition, a system has to meet BW>1kHz, noise floor ~1pArms/√Hz, and DR>100dB to detect small charge perturbations without saturation from large baseline currents. Extensive effort has been conducted to design a simultaneous V & I monitoring system (Fig. 33.11.1(b)). For instance, [1] allows the design of a simultaneous V & I monitoring system based on simple integration of individual readout schemes. However, this system consumes power >100μW and is unsuitable for simultaneous ExG and biocurrent signals due to the limited BW. Although [2] achieves wide BW for both signals, it cannot record V & I simultaneously due to the time-division manner and also has narrow IRs. On the other hand, [3] employing frequency division, achieves simultaneous readout while consuming low power. However, it is vulnerable to artifacts, while the BW of each V & I readout limits the other. This paper presents a simultaneous V & I recording system using a single 2nd-order continuous-time ΔΣ modulator (CT-DSM). Such simultaneous recording is achieved by using a highly linear hybrid GmC integrator with a triplet VCObased quantizer, where the differential voltage and single-ended current are combined into differential and common mode signals (Fig. 33.11.1 (c)). © 2024 IEEE. -
dc.language English -
dc.publisher IEEE Solid-State Circuits Society -
dc.relation.ispartof Digest of Technical Papers - IEEE International Solid-State Circuits Conference -
dc.title A Hybrid Recording System with 10kHz-BW 630mVPP84.6dB-SNDR 173.3dB-FOMSNDRand 5kHz-BW 114dB-DR for Simultaneous ExG and Biocurrent Acquisition -
dc.type Conference Paper -
dc.identifier.doi 10.1109/ISSCC49657.2024.10454270 -
dc.identifier.scopusid 2-s2.0-85188113162 -
dc.identifier.bibliographicCitation Seol, Taeryoung. (2024-02-21). A Hybrid Recording System with 10kHz-BW 630mVPP84.6dB-SNDR 173.3dB-FOMSNDRand 5kHz-BW 114dB-DR for Simultaneous ExG and Biocurrent Acquisition. International Solid-State Circuits Conference, 562–564. doi: 10.1109/ISSCC49657.2024.10454270 -
dc.identifier.url https://www.isscc.org/past-conferences -
dc.citation.conferenceDate 2024-02-18 -
dc.citation.conferencePlace US -
dc.citation.conferencePlace San Francisco -
dc.citation.endPage 564 -
dc.citation.startPage 562 -
dc.citation.title International Solid-State Circuits Conference -
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Department of Electrical Engineering and Computer Science

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