Rational Design of Ti3C2Tx MXene Inks for Conductive, Transparent Films

  • Tiezhu Guo
  • , Di Zhou
  • , Shungui Deng
  • , Mohammad Jafarpour
  • , Jonathan Avaro
  • , Antonia Neels
  • , Jakob Heier
  • , Chuanfang Zhang

Research output: Contribution to journalArticlepeer-review

114 Scopus citations

Abstract

Transparent conductive electrodes (TCEs) with a high figure of merit (FOMe, defined as the ratio of transmittance to sheet resistance) are crucial for transparent electronic devices, such as touch screens, micro-supercapacitors, and transparent antennas. Two-dimensional (2D) titanium carbide (Ti3C2Tx), known as MXene, possesses metallic conductivity and a hydrophilic surface, suggesting dispersion stability of MXenes in aqueous media allowing the fabrication of MXene-based TCEs by solution processing. However, achieving high FOMe MXene TCEs has been hindered mainly due to the low intrinsic conductivity caused by percolation problems. Here, we have managed to resolve these problems by (1) using large-sized Ti3C2Tx flakes (∼12.2 μm) to reduce interflake resistance and (2) constructing compact microstructures by blade coating. Consequently, excellent optoelectronic properties have been achieved in the blade-coated Ti3C2Tx films, i.e., a DC conductivity of 19 325 S cm-1 at transmittances of 83.4% (≈6.7 nm) was obtained. We also demonstrate the applications of Ti3C2Tx TCEs in transparent Joule heaters and the field of supercapacitors, showing an outstanding Joule heating effect and high rate response, respectively, suggesting enormous potential applications in flexible, transparent electronic devices.

Original languageEnglish
Pages (from-to)3737-3749
Number of pages13
JournalACS Nano
Volume17
Issue number4
DOIs
StatePublished - 28 Feb 2023

Keywords

  • Joule heaters
  • TiCT MXene
  • blade coating
  • percolation
  • supercapacitors
  • transparent conductive electrodes

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