Baraghani Saba, Barani Zahra, Ghafouri Yassamin, Mohammadzadeh Amirmahdi, Salguero Tina T, Kargar Fariborz, Balandin Alexander A
Nano-Device Laboratory and Phonon Optimized Engineered Materials Center, Department of Electrical and Computer Engineering, University of California, Riverside, California 92521, United States.
Department of Chemical and Environmental Engineering, University of California, Riverside, California 92521, United States.
ACS Nano. 2022 Apr 26;16(4):6325-6333. doi: 10.1021/acsnano.2c00378. Epub 2022 Mar 24.
We report on the preparation of inks containing fillers derived from quasi-two-dimensional charge-density-wave materials, their application for inkjet printing, and the evaluation of their electronic properties in printed thin-film form. The inks were prepared by liquid-phase exfoliation of CVT-grown 1T-TaS crystals to produce fillers with nm-scale thickness and μm-scale lateral dimensions. Exfoliated 1T-TaS was dispersed in a mixture of isopropyl alcohol and ethylene glycol to allow fine-tuning of filler particles thermophysical properties for inkjet printing. The temperature-dependent electrical and current fluctuation measurements of printed thin films demonstrated that the charge-density-wave properties of 1T-TaS are preserved after processing. The functionality of the printed thin-film devices can be defined by the nearly commensurate to the commensurate charge-density-wave phase transition of individual exfoliated 1T-TaS filler particles rather than by electron-hopping transport between them. The obtained results are important for the development of printed electronics with diverse functionality achieved by the incorporation of quasi-two-dimensional van der Waals quantum materials.
我们报告了含有源自准二维电荷密度波材料的填料的油墨的制备、其在喷墨打印中的应用以及对其印刷薄膜形式的电子性能的评估。这些油墨是通过对化学气相传输(CVT)生长的1T-TaS晶体进行液相剥离制备的,以生产出厚度为纳米级、横向尺寸为微米级的填料。将剥离后的1T-TaS分散在异丙醇和乙二醇的混合物中,以便对填料颗粒的热物理性质进行微调,以用于喷墨打印。对印刷薄膜进行的温度相关电性能和电流波动测量表明,1T-TaS的电荷密度波性质在加工后得以保留。印刷薄膜器件的功能可以由单个剥离的1T-TaS填料颗粒从近相称到相称的电荷密度波相变来定义,而不是由它们之间的电子跳跃传输来定义。所获得的结果对于通过掺入准二维范德华量子材料实现具有多样功能的印刷电子学的发展具有重要意义。