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A 376-μW per-Channel, Drift-Tolerant Translocation Recording Frontend With Event Detection for Nanopore Sensor Arrays

 
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dc.contributor.authorDas, Auro
dc.contributor.authorLin, Qiuyang
dc.contributor.authorHu, Yixiong
dc.contributor.authorSijbers, Wim
dc.contributor.authorBeamish, Eric
dc.contributor.authorVan Hoof, Chris
dc.contributor.authorGielen, Georges
dc.contributor.authorVan Helleputte, Nick
dc.contributor.imecauthorDas, Aurojyoti
dc.contributor.imecauthorLin, Qiuyang
dc.contributor.imecauthorHu, Yixiong
dc.contributor.imecauthorSijbers, Wim
dc.contributor.imecauthorBeamish, Eric
dc.contributor.imecauthorVan Hoof, Chris
dc.contributor.imecauthorGielen, Georges
dc.contributor.imecauthorVan Helleputte, Nick
dc.contributor.orcidimecLin, Qiuyang::0000-0002-7422-5793
dc.contributor.orcidimecHu, Yixiong::0009-0002-0961-6082
dc.contributor.orcidimecSijbers, Wim::0000-0003-2015-785X
dc.contributor.orcidimecBeamish, Eric::0000-0002-6492-104X
dc.contributor.orcidimecVan Hoof, Chris::0000-0002-4645-3326
dc.contributor.orcidimecVan Helleputte, Nick::0000-0002-7511-1923
dc.date.accessioned2025-06-06T04:50:09Z
dc.date.available2025-06-06T04:50:09Z
dc.date.issued2025
dc.description.abstractThe molecular sensing of protein and DNA molecules with nanopore sensor arrays necessitates high-speed readout interfaces. This leads to high output data rates, while only a very small portion of the recorded data contains useful translocation data. The high data rate creates a bottleneck for the design of high-density arrays of nanopores. This article addresses the issue by proposing an event-based recording approach. In this approach, the transmembrane current is monitored in all nanopores, and it is recorded only from the nanopores, in which a translocation event is detected. A prototype is presented, in which the proposed translocation event recording approach is implemented for a 16-nanopore array along with a resistive feedback transimpedance amplifier (TIA) and an successive approximation reduction (SAR) analog-to-digital converter (ADC). The TIA achieves 0.646-nArms noise performance and a 0.92-MHz bandwidth with the electrical model of a typical solid-state nanopore. The SAR ADC samples the TIA output at 2 MS/s and achieves 9.1 ENOB. The experiments to test the event detection approach with solid-state nanopores and barcoded DNA are also presented with the results.
dc.identifier.doi10.1109/JSSC.2025.3570935
dc.identifier.issn0018-9200
dc.identifier.urihttps://imec-publications.be/handle/20.500.12860/45760
dc.publisherIEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
dc.source.beginpage2319
dc.source.endpage2329
dc.source.issue7
dc.source.journalIEEE JOURNAL OF SOLID-STATE CIRCUITS
dc.source.numberofpages11
dc.source.volume60
dc.subject.keywordsDNA TRANSLOCATION
dc.subject.keywordsHIGH-SPEED
dc.subject.keywordsDESIGN
dc.subject.keywordsNOISE
dc.title

A 376-μW per-Channel, Drift-Tolerant Translocation Recording Frontend With Event Detection for Nanopore Sensor Arrays

dc.typeJournal article
dspace.entity.typePublication
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