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Accelerating Physics-Based BTI Modeling for Arbitrary Workloads Using Defect Ensemble and Time Compression Techniques

 
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cris.virtual.orcid0000-0002-0356-0973
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cris.virtualsource.orcid5d1a73c2-f82f-43a0-9af2-32fb15f176bf
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dc.contributor.authorEerdekens, Jonas
dc.contributor.authorTyaginov, Stanislav
dc.contributor.authorDegraeve, Robin
dc.contributor.authorCoenen, David
dc.contributor.authorSaraza Canflanca, Pablo
dc.contributor.authorKaczer, Ben
dc.contributor.authorVandemaele, Michiel
dc.contributor.authorClaes, Dieter
dc.contributor.authorMercelis, Siegfried
dc.date.accessioned2026-09-14T13:02:22Z
dc.date.available2026-09-14T13:02:22Z
dc.date.createdwos2026
dc.date.issued2026
dc.description.abstractWe present a methodology to simulate bias temperature instability (BTI) for long-term reliability predictions and alternating current (AC) conditions. Our focus is on repetitive structure within the applied gate voltage (Vg) pulse. Throughout this work, we develop a set of different methodologies to simplify and substantially reduce computational demand for predictive BTI modeling on longer times scales than previously numerically feasible. To achieve this goal, we employ a compact representation of transition rates for complex sequences of subsequently applied gate voltages. This simplification enables efficient simulation of the threshold voltage shift ΔVth for periodical (with a possible extension to arbitrary) workloads. Besides this compression over time, we develop compression techniques over the defect ensemble, further accelerating simulation for periodical Vg signals. Using commercial quality planar nFETs subjected to BTI stress with a periodical gate voltage signal, we reproduce experimental ΔVth(t) traces (t is time), and achieve good agreement between experimental and simulation data with a significant speed-up compared to conventional BTI modeling. As a consequence, these methods are suitable for both practical, large-scale reliability simulations involving realistic lifetime workloads.
dc.identifier.doi10.1109/irps61424.2026.11499267
dc.identifier.isbn979-8-3315-8972-1
dc.identifier.issn1541-7026
dc.identifier.urihttps://imec-publications.be/handle/20.500.12860/60356
dc.language.isoeng
dc.provenance.editstepusergreet.vanhoof@imec.be
dc.publisherIEEE
dc.relation.ispartofseriesInternational Reliability Physics Symposium
dc.source.beginpage1
dc.source.conferenceIEEE International Reliability Physics Symposium (IRPS)
dc.source.conferencedate2026-03-22
dc.source.conferencelocationTucson
dc.source.endpage10
dc.source.journal2026 IEEE INTERNATIONAL RELIABILITY PHYSICS SYMPOSIUM, IRPS
dc.source.numberofpages10
dc.title

Accelerating Physics-Based BTI Modeling for Arbitrary Workloads Using Defect Ensemble and Time Compression Techniques

dc.typeProceedings paper
dspace.entity.typePublication
imec.internal.crawledAt2026-05-08
imec.internal.sourcecrawler
imec.internal.wosCreatedAt2026-09-11
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