Dielectric and gate metal engineering for threshold voltage modulation in enhancement mode monolayer MoS2 field effect transistors
Lixin Liu, Han Yan, Leyi Loh, Kamal Kumar Paul, Soumya Sarkar, Deepnarayan Biswas, Tien-Lin Lee, Takashi Taniguchi, Kenji Watanabe, Manish Chhowalla, Yan Wang

TL;DR
This study investigates how dielectric and gate metal engineering can modulate threshold voltage in monolayer MoS2 FETs, emphasizing interface properties and material choices to achieve enhancement mode operation.
Contribution
It identifies key dielectric/semiconductor interface properties and demonstrates ZrO2 as a scalable high-k dielectric enabling effective Vth modulation in MoS2 FETs.
Findings
ZrO2 dielectric enables Vth tuning via gate metal work function.
HfO2 exhibits Vth pinning due to defect states.
Achieved subthreshold swing of 87 mV/dec and Vth of 0.1 V.
Abstract
Excellent gate electrostatics in field effect transistors (FETs) based on two-dimensional transition metal dichalcogenide (2D TMD) channels can dramatically decrease static power dissipation. Energy efficient FETs operate in enhancement mode with small and positive threshold voltage (Vth) for n-type devices. However, most state-of-the-art FETs based on monolayer MoS2 channel operate in depletion mode with negative Vth due to doping from the underlying dielectric substrate. In this work, we identify key properties of the semiconductor/dielectric interface (MoS2 on industrially relevant high dielectric constant (k) HfO2, ZrO2 and hBN for reference) responsible for realizing enhancement-mode operation of 2D MoS2 channel FETs. We find that hBN and ZrO2 dielectric substrates provide low defect interfaces with MoS2 that enables effective modulation of the Vth using gate metals of different…
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Taxonomy
Topics2D Materials and Applications · Ferroelectric and Negative Capacitance Devices · Advanced Memory and Neural Computing
