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Efficient Gate Modulation in a Screening-Engineered MoS2/Single-Walled Carbon Nanotube Network Heterojunction Vertical Field-Effect Transistor.

Thanh Luan PhanQuoc An VuYoung Rae KimYong Seon ShinIl Min LeeMinh Dao TranJinbao JiangDinh Hoa LuongLei LiaoYoung Hee LeeWoo Jong Yu
Published in: ACS applied materials & interfaces (2019)
In this report, a screening-engineered carbon nanotube (CNT) network/MoS2/metal heterojunction vertical field effect transistor (CNT-VFET) is fabricated for an efficient gate modulation independent of the drain voltage. The gate field in the CNT-VFET transports through the empty space of the CNT network without any screening layer and directly modulates the MoS2 semiconductor energy band, while the gate field from the Si back gate is mostly screened by the graphene layer. Consequently, the on/off ratio of CNT-VFET maintained 103 in overall drain voltages, which is 10 times and 1000 times higher than that of the graphene (Gr) VFET at Vsd = 0.1 (ratio = 81.9) and 1 V (ratio = 3), respectively. An energy band diagram simulation shows that the Schottky barrier modulation of CNT/MoS2 contact along the sweeping gate bias is independent of the drain voltage. On the other hand, the gate modulation of Gr/MoS2 is considerably reduced with increased drain voltage because more electrons are drawn into the graphene electrode and screens the gate field by applying a higher drain voltage to the graphene/MoS2/metal capacitor.
Keyphrases
  • carbon nanotubes
  • room temperature
  • quantum dots
  • visible light
  • reduced graphene oxide
  • ionic liquid
  • transition metal
  • high throughput
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  • dna methylation
  • gold nanoparticles
  • network analysis
  • single cell