4.8 Article

Improving Contact Interfaces in Fully Printed Carbon Nanotube Thin-Film Transistors

期刊

ACS NANO
卷 10, 期 5, 页码 5221-5229

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.6b00877

关键词

thin-film transistor (TFT); contact resistance; carbon nanotube (CNT); aerosol jet printing; nanomaterials

资金

  1. Fetch Automotive Design Group, LLC.

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Single-walled carbon nanotubes (CNTs) printed into thin films have been shown to yield high mobility, thermal conductivity, mechanical flexibility, and chemical stability as semiconducting channels in field-effect, thin-film transistors (TFTs). Printed CNT-TFTs of many varieties have been studied; however, there has been limited effort toward improving overall CNT-TFT performance. In particular, contact resistance plays a dominant role in determining the performance and degree of variability in the TFTs, especially in fully printed devices where the contacts and channel are both printed. In this work, we have systematically investigated the contact resistance and overall performance of fully printed CNT-TFTs employing three different printed contact materials-Ag nanoparticles, Au nanoparticles, and metallic CNTs each in the following distinct contact geometries: top, bottom, and double. The active channel for each device was printed from the dispersion of high purity (>99%) semiconducting CNTs, and all printing was carried out using an aerosol jet printer. Hundreds of devices with different channel lengths (from 20 to 500 fun) were fabricated for extracting contact resistance and determining related contact effects. Printed bottom contacts are shown to be advantageous compared to the more common top contacts, regardless of contact material. Further, compared to single (top or bottom) contacts, double contacts offer a significant decrease (>35%) in contact resistance for all types of contact materials, with the metallic CNTs yielding the best overall performance. These findings underscore the impact of printed contact materials and structures when interfacing with CNT thin films, providing key guidance for the further development of printed nanomaterial electronics.

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