High Performance P-Channel Transistor Based on Amorphous Tellurium Trioxide

  • Seungho Bang
  • , Chaewon Lee
  • , Deogkyu Choi
  • , Dae Young Park
  • , Dong Hyeon Kim
  • , Dohyeon Lee
  • , Dong Joon Yi
  • , Jungeun Song
  • , Seok Joon Yun
  • , Dong Wook Kim
  • , Mun Seok Jeong

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

The development of high-performance p-channel transistors remains a critical challenge in complementary logic circuits, despite significant advances in n-channel transistor technologies. While amorphous oxide semiconductors have revolutionized n-type transistors, achieving comparable performance for p-type counterparts has proven elusive. Here, this study demonstrates a breakthrough in p-channel technology by transforming crystalline 2D tellurium (2D-Te) into amorphous tellurium trioxide (a-TeO3) through UV ozone treatment. This structural transformation, directly observed via high-resolution transmission electron microscopy, induces dramatic changes in electronic properties, including significant bandgap widening and enhanced work function. The resulting a-TeO3-based p-channel transistors demonstrate remarkable improvements over crystalline 2D-Te transistors, featuring reduced hysteresis, superior on/off characteristics, and distinctive mobility behavior at different temperatures and gate fields. Most notably, these transistors achieve exceptionally low barrier height (10 meV) and sheet resistance values, while combining high hole mobility with excellent switching properties. The work not only introduces a novel high-performance p-channel semiconductor but also opens new avenues for phase engineering in advanced semiconductor development.

Original languageEnglish
Article number2504948
JournalAdvanced Materials
Volume37
Issue number35
DOIs
StatePublished - 4 Sep 2025

Bibliographical note

Publisher Copyright:
© 2025 The Author(s). Advanced Materials published by Wiley-VCH GmbH.

Keywords

  • amorphous oxide semiconductor
  • oxidation
  • p-channel transistor
  • structural transformation
  • tellurium trioxide

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