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Ta Phase Engineering for Defect-Controlled Reliable Switching in Ultrathin TaOx Memristors

  • Dong Hyun Lee
  • , Seunghoon Yang
  • , Won Il Lee
  • , Kim Kisslinger
  • , Xiao Tong
  • , Chang Yong Nam
  • Brookhaven National Laboratory

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Ultrathin TaOx resistive random-access memory (RRAM) and related memristor devices require precise control of oxygen stoichiometry to achieve reliable switching at nanometer-scale thicknesses. Here, we demonstrate that the crystallographic phase of the Ta electrode critically governs defect formation and switching reliability in UV-ozone (UVO)-treated TaOx devices. UVO oxidation of α-Ta forms a dense, near-stoichiometric switching layer with a controlled substoichiometric reservoir, whereas β-Ta leads to the formation of oxygen-deficient oxides with higher trap density. As a result, α-Ta-based devices exhibit significantly reduced device-to-device and cycle-to-cycle variability and improved endurance compared to β-Ta counterparts. Systematic structural, chemical, and electrical analyses reveal that phase-dependent defect distributions dictate filament evolution and switching stability. These findings establish electrode phase engineering as a key design parameter for achieving reliable ultrathin TaOx memristors suitable for in-memory and neuromorphic computing applications.

Original languageEnglish
Pages (from-to)35599-35610
Number of pages12
JournalACS Applied Materials and Interfaces
Volume18
Issue number25
DOIs
StatePublished - Jul 1 2026

Keywords

  • Ta phase
  • TaO
  • cycle-to-cycle variation
  • device-to-device variation
  • nonvolatile memory
  • von Neumann bottleneck

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