范德瓦尔斯力
晶体管
材料科学
热离子发射
光电子学
数码产品
半导体
电介质
栅极电介质
场效应晶体管
逻辑门
缩放比例
纳米技术
绝缘体(电)
凝聚态物理
量子隧道
磁滞
极限(数学)
纳米电子学
泄漏(经济)
和大门
电场
工程物理
分子电子学
表征(材料科学)
介电强度
电压
微电子
物理
栅极电压
作者
Shuo Liu,Yongsi Liu,Xinyun Zhou,Wanglong Wu,Bingkun Wang,Ruiying Ma,Le Yuan,Lingjie Zhao,Mianzeng Zhong
摘要
The continued scaling of silicon-based transistors is increasingly constrained by severe short-channel effects. While high-mobility two-dimensional (2D) semiconductors offer a promising post-silicon pathway, their performance is fundamentally limited by the lack of high-dielectric-constant (high-κ) insulators capable of forming atomically smooth, defect-free interfaces. Here, we report the facile synthesis and characterization of single-crystalline layered GaPS4 as a robust van der Waals (vdWs) high-k dielectric. The GaPS4 crystals exhibit high breakdown field strengths (Ebd) exceeding 10 MV/cm and low gate leakage currents on the order of 10−6 A/cm2. Enabled by the atomically sharp vdW interface and efficient electrostatic coupling, top-gated GaPS4/MoS2 field-effect transistors (FETs) achieve near-ideal gate control, characterized by a thermionic-limit-approaching subthreshold swing of 60 mV/dec and negligible hysteresis ∼6 mV at room temperature. Such FETs can be integrated into functional logic gates. This study establishes two-dimensional GaPS4 as a promising gate dielectric candidate for next-generation high-speed nanoelectronics.
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