Ultrastrong yet Ductile 2D Titanium Nanomaterial for On-Skin Conformal Triboelectric Sensing

Minhyuk Park, Qing Yu, Qing Wang, Chaojie Chen, Zhibo Zhang, Ziyin Yang, Huan Chen, Qiaoshi Zeng, Yunlong Zi, Jun Fan*, Yong Yang*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

10 Citations (Scopus)

Abstract

Conventional titanium (e.g., bulk or thin films) is well-known for its relatively high mechanical strength, excellent corrosion resistance, and superior biocompatibility, which are suitable for biomedical engineering and wearable devices. However, the strength of conventional titanium often trades off its ductility, and their use in wearable devices has not been explored yet. In this work, we fabricated a series of large-sized 2D titanium nanomaterials with the method of polymer surface buckling enabled exfoliation (PSBEE), which possess a unique heterogeneous nanostructure containing nanosized titanium, titanium oxide, and MXene-like phases. As a result, these 2D titaniums exhibit both superb mechanical strength (6-13 GPa) and remarkable ductility (25-35%)at room temperature, outperforming all other titanium-based materials reported so far. More interestingly, we demonstrate that the 2D titanium nanomaterials also showed good performance in triboelectric sensing and can be used to fabricate self-powered, on-skin conformal triboelectric sensors with good mechanical reliability. © 2023 American Chemical Society.
Original languageEnglish
Pages (from-to)5802-5810
JournalNano Letters
Volume23
Issue number12
Online published14 Jun 2023
DOIs
Publication statusPublished - 28 Jun 2023

Funding

The research of Y.Y. is supported by the Research Grant Council (RGC) through the General Research Fund (GRF) with the Grants N_CityU 109/21, CityU11213118, and CityU11209317.

Research Keywords

  • titanium
  • 2D nanomaterial
  • mechanical properties
  • triboelectric sensing
  • HIGH-ENTROPY ALLOY
  • THIN METAL-FILMS
  • MXENE FILMS
  • STRENGTH
  • MICROSTRUCTURE
  • NANOGENERATOR
  • INTERFACE
  • GROWTH
  • TI

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