Wafer-scale high-κ dielectrics for two-dimensional circuits via van der Waals integration.

Lu, Zheyi; Chen, Yang; Dang, Weiqi; Kong, Lingan; Tao, Quanyang; Ma, Likuan; Lu, Donglin; Liu, Liting et al. · Nat Commun · 2023

basic_science · Level V

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Abstract

The practical application of two-dimensional (2D) semiconductors for high-performance electronics requires the integration with large-scale and high-quality dielectrics-which however have been challenging to deposit to date, owing to their dangling-bonds-free surface. Here, we report a dry dielectric integration strategy that enables the transfer of wafer-scale and high-κ dielectrics on top of 2D semiconductors. By utilizing an ultra-thin buffer layer, sub-3 nm thin Al<sub>2</sub>O<sub>3</sub> or HfO<sub>2</sub> dielectrics could be pre-deposited and then mechanically dry-transferred on top of MoS<sub>2</sub> monolayers. The transferred ultra-thin dielectric film could retain wafer-scale flatness and uniformity without any cracks, demonstrating a capacitance up to 2.8 μF/cm<sup>2</sup>, equivalent oxide thickness down to 1.2 nm, and leakage currents of ~10<sup>-7 </sup>A/cm<sup>2</sup>. The fabricated top-gate MoS<sub>2</sub> transistors showed intrinsic properties without doping effects, exhibiting on-off ratios of ~10<sup>7</sup>, subthreshold swing down to 68 mV/dec, and lowest interface states of 7.6×10<sup>9 </sup>cm<sup>-2</sup> eV<sup>-1</sup>. We also show that the scalable top-gate arrays can be used to construct functional logic gates. Our study provides a feasible route towards the vdW integration of high-κ dielectric films using an industry-compatible ALD process with well-controlled thickness, uniformity and scalability.