Hanbin Cho, Jing Huang, Seonguk Yang, Subin Im, Sangwoo Park, Jeongin Yeo, Sungyeon Kim, Gilhwan Do, Wenxuan Zhu, Soobeom Shin, Jongwon Lee, Yongjoon Shin, Do-Sun Lee, Hu Young Jeong, Tae-Eon Park, Jun Kang, Kyungmin Ko, Joonki Suh
Two-dimensional (2D) semiconductors are poised to extend logic technology to the atomic-thickness limit, yet monolayer complementary metal-oxide-semiconductor (CMOS) has been largely hampered by polarity-dependent, thermionic-emission-dominated contacts that preclude a unified injection solution. Here, we introduce degenerately doped, crystalline SnSe2 as a universal source-side van der Waals (vdW) injector capable of enforcing all-tunneling carrier injection into both p- and n-type monolayer channels. The combination of a large electron affinity (∼5.1 eV), degenerate carrier density (>1019 cm-3), and atomically uniform vdW interfacial coupling enables polarity-tailored tunneling mechanisms while effectively suppressing interfacial gap states. In p-type WSe2, a type-III (broken gap) alignment drives efficient band-to-band tunneling, yielding a >1000-fold enhancement in drive current over conventional metal electrodes. In n-type MoS2, the SnSe2 injector forms a type-I heterojunction within the sub-depletion-width monolayer body, enabling a gate-tunable injection that evolves from field-controlled Fowler-Nordheim-like tunneling to thickness-limited tunneling, achieving an on/off ratio > 109 and a subthreshold swing below 70 mV dec-1. Integrating this single-material injector, we demonstrate a monolayer CMOS inverter with a maximum voltage gain of ∼340 at VDD = 2 V, establishing degenerate SnSe2 as a dual-polarity vdW injector and providing a platform for high-performance, low-power 2D integrated circuits.