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Semiconducting Properties of Delaminated Titanium Nitride Ti 4 N 3 T x MXene with Gate-Tunable Electrical Conductivity.

Tufail HassanJihyun KimHung Ngo ManhAamir IqbalZhenguo GaoHyerim KimNoushad HussainShabbir Madad NaqviShakir ZamanMugilan NarayanasamySang Uck LeeJoohoon KangChong Min Koo
Published in: ACS nano (2024)
MXenes have garnered significant attention due to their atomically thin two-dimensional structure with metallic electronic properties. However, it has not yet been fully achieved to discover semiconducting MXenes to implement them into gate-tunable electronics such as field-effect transistors and phototransistors. Here, a semiconducting Ti 4 N 3 T x MXene synthesized by using a modified oxygen-assisted molten salt etching method under ambient conditions, is reported. The oxygen-rich synthesis environment significantly enhances the etching reaction rate and selectivity of Al from a Ti 4 AlN 3 MAX phase, resulting in well-delaminated and highly crystalline Ti 4 N 3 T x MXene with minimal defects and high content of F and O, which led to its improved hydrophobicity and thermal stability. Notably, the synthesized Ti 4 N 3 T x MXene exhibited p-type semiconducting characteristics, including gate-tunable electrical conductivity, with a current on-off ratio of 5 × 10 3 and a hole mobility of ∼0.008 cm 2 V -1 s -1 at 243 K. The semiconducting property crucial for thin-film transistor applications is evidently associated with the surface terminations and the partial substitution of oxygen in the nitrogen lattice, as corroborated by density functional theory (DFT) calculations. Furthermore, the synthesized Ti 4 N 3 T x exhibits strong light absorption characteristics and photocurrent generation. These findings highlight the delaminated Ti 4 N 3 T x as an emerging two-dimensional semiconducting material for potential electronic and optoelectronic applications.
Keyphrases
  • density functional theory
  • molecular dynamics
  • air pollution
  • particulate matter
  • gold nanoparticles
  • energy transfer
  • light emitting
  • oxide nanoparticles