Improvement of FTJ on-current by work function engineering for massive parallel neuromorphic computing

Publikation: Beitrag in Buch/Konferenzbericht/Sammelband/GutachtenBeitrag in KonferenzbandBeigetragenBegutachtung

Beitragende

  • Suzanne Lancaster - , NaMLab - Nanoelectronic materials laboratory gGmbH (Autor:in)
  • Quang T. Duong - , NaMLab - Nanoelectronic materials laboratory gGmbH (Autor:in)
  • Erika Covi - , NaMLab - Nanoelectronic materials laboratory gGmbH (Autor:in)
  • Thomas Mikolajick - , Professur für Nanoelektronik, NaMLab - Nanoelectronic materials laboratory gGmbH (Autor:in)
  • Stefan Slesazeck - , NaMLab - Nanoelectronic materials laboratory gGmbH (Autor:in)

Abstract

HfO2-based ferroelectric tunnel junctions (FTJs) exhibit attractive properties for adoption in neuromorphic applications. The combination of ultra-low-power multi-level switching capability together with the low on-current density suggests the application in circuits for massive parallel computation. In this work, we discuss one example circuit of a differential synaptic cell featuring multiple parallel connected FTJ devices. Moreover, from the circuit requirements we deduce that the absolute difference in currents I-on - I-off is a more critical figure of merit than the tunneling electroresistance ratio (TER). Based on this, we discuss the potential of FTJ device optimization by means of electrode work function engineering in bilayer HZO/Al2O3 FTJs.

Details

OriginalspracheEnglisch
TitelESSCIRC 2022 - IEEE 48th European Solid State Circuits Conference, Proceedings
Herausgeber (Verlag)Institute of Electrical and Electronics Engineers (IEEE)
Seiten137-140
Seitenumfang4
ISBN (elektronisch)9781665484947
PublikationsstatusVeröffentlicht - 2022
Peer-Review-StatusJa

Publikationsreihe

ReiheEuropean Conference on Solid-State Circuits (ESSCIRC)

Konferenz

Titel52nd IEEE European Solid-State Device Research Conference & 48th IEEE European Solid-State Circuits Conference
UntertitelINTELLIGENT ELECTRONICS for a smarter and more inclusive Human Life
KurztitelESSDERC-ESSCIRC 2022
Dauer19 - 22 September 2022
Webseite
OrtUniversità degli Studi di Milano & Online
StadtMilan
LandItalien

Externe IDs

WOS 000886608500031
ORCID /0000-0003-3814-0378/work/142256260

Schlagworte

Fächergruppen, Lehr- und Forschungsbereiche, Fachgebiete nach Destatis

Schlagwörter

  • differential synaptic pair, ferroelectric tunneling junction, FTJ, work function engineering, Differential synaptic pair, Ferroelectric tunneling junction, Work function engineering, Ftj