Origin of Hole‐Trapping States in Solution‐Processed Copper(I) Thiocyanate and Defect‐Healing by I2 Doping

Abstract

Solution‐processed copper(I) thiocyanate (CuSCN) typically exhibits low crystallinity with short‐range order; the defects result in a high density of trap states that limit the device's performance. Despite the extensive electronic applications of CuSCN, its defect properties are not understood in detail. Through X‐ray absorption spectroscopy, pristine CuSCN prepared from the standard diethyl sulfide‐based recipe is found to contain under‐coordinated Cu atoms, pointing to the presence of SCN− vacancies. A defect passivation strategy is introduced by adding solid I2 to the processing solution. At small concentrations, the iodine is found to exist as I− which can substitute for the missing SCN− ligand, effectively healing the defective sites and restoring the coordination around Cu. Computational study results also verify this point. Applying I2‐doped CuSCN as a p‐channel in thin‐film transistors shows that the hole mobility increases by more than five times at the optimal doping concentration of 0.5 mol.%. Importantly, the on/off current ratio and the subthreshold characteristics also improve as the I2 doping method leads to the defect‐healing effect while avoiding the creation of detrimental impurity states. An analysis of the capacitance‐voltage characteristics corroborates that the trap state density is reduced upon I2 addition.

Document Details

Document Type
Pub Defense Publication
Publication Date
Mar 16, 2023
Source ID
10.1002/adfm.202209504

Entities

People

  • Adisak Boonchun
  • Hideki Nakajima
  • Pichaya Pattanasattayavong
  • Pimpisut Worakajit
  • Pinit Kidkhunthod
  • Saran Waiprasoet
  • Taweesak Sudyoadsuk
  • Thanasee Thanasarnsurapong
  • Vinich Promarak

Organizations

  • Air Force Office of Scientific Research
  • Kasetsart University
  • National Research Council of Thailand
  • Thailand Science Research and Innovation
  • Vidyasirimedhi Institute of Science and Technology

Tags

Fields of Study

  • Materials science

Readers

  • Applied Combinatorial Optimization and Logic Circuit Design.
  • Semiconductor Device Technology
  • Thin Film Deposition Science.

Technology Areas

  • Microelectronics
  • Microelectronics - Graphene