Shuai Lang, Xinru Xu, Kai Shi, Shun Song, Shaoqiang Guo, Haishan Zhang, Juan Lyu, Jian Gong
The relentless scaling of transistors has intensified power dissipation challenges in modern integrated circuits, necessitating devices that operate below the fundamental Boltzmann limit of 60 mV/dec subthreshold swing (SS). Here, we propose a cold-source field-effect transistor (CS-FET) based on a van der Waals (vdW) heterostructure, comprising theoretically proposed monolayer boron antimonide (BSb) as the source electrode and indium selenide (InSe) as the channel. Through first-principles density functional theory (DFT) and quantum transport simulations, we demonstrate that the BSb/InSe FET intrinsically enables cold-source operation without intentional source doping. Specifically, the unique electronic band structure of the BSb electrode acts as a natural energy filter, truncating the high-energy tail of the Fermi-Dirac distribution and effectively suppressing the injection of thermally excited hot electrons into the channel. Driven by this carrier-cooling mechanism, the device achieves an ultralow SS of 38.14 mV/dec at room temperature, outperforming conventional metal-oxide-semiconductor field-effect transistors (MOSFETs) and state-of-the-art graphene-based CS-FETs (68.74 mV/dec). Furthermore, it delivers outstanding on-state currents of 1295.33 nA/nm for high-performance and 907.42 nA/nm for low-power applications, fully satisfying the International Roadmap for Devices and Systems (IRDS) 2028 targets. This work establishes BSb as a compelling, doping-free alternative to graphene for next-generation cold-source electrodes, providing a theoretical framework for ultralow-power 2D logic electronics.