Hu Y, Shicheng Zeng, Yi Wang, Jinshu Zhang, Zhu Y, Zhejia Zhang, Xiangqi Dong, Qicheng Sun, Mingrui Ao, Xinlong Guo, Jieya Shang, Yuexi Wang, Chao Liu, Yuchen Tian, HaoJie Chen, Xinliu He, Yufei Song, Yue Zhang, S Y Wang, J D Shi, Z X Sun, Zhengjie Sun, Jiahao Wang, Jichao Li, Lin Wang, Lin Wang, Chao Zhu, Zihan Xu, Saifei Gou, Yin Xia, Yin Xia, Xu Wang, Zhengzong Sun, Zhengzong Sun, Wenzhong Bao
Atomically thin two-dimensional (2D) semiconductors are promising candidates for next-generation electronics, which could effectively suppress short-channel effects and consequently reduce static power consumption. However, the lack of effective doping methods for 2D semiconductors remains a significant challenge, impeding the realization of homogeneous complementary metal-oxide-semiconductor (CMOS) integrated circuits (ICs). Here, we report the monolithic integration of wafer-scale homogeneous top-gated WSe2 CMOS circuit arrays. The p-type and n-type doping methods could effectively modulate carrier polarity and concentration for WSe2, enabling the fabrication of wafer-scale CMOS inverter arrays via a proposed bilayer hard mask process. A representative CMOS inverter exhibits a voltage gain of up to 396 V/V, with a low static power consumption of ~ 30 pW and a noise margin exceeding 90%. Furthermore, more complex CMOS circuits, like XOR and a multiplexer (MUX), are successfully fabricated. This demonstration of homogeneous CMOS integration shows a promising strategy for the practical deployment of 2D semiconductors in low-power large-scale ICs. The scarcity of effective doping strategies has so far limited the development of scalable complementary electronic circuits based on 2D semiconductors. Here, the authors report the fabrication of wafer-scale homogeneous top-gated complementary inverter arrays and logic circuits based on p-type and n-type doped 2D WSe2 semiconducting channels.