Integrated Low‐Dimensional Semiconductors for Scalable Low‐power CMOS Logic

Author:

Chuang Meng‐Hsi1,Chiu Kuan‐Chang12,Lin Yu‐Ting1,Tulevski George2,Chen Po‐Han1,Pezeshki Atiye1,Chen Chung‐Jen1,Chen Po‐Yen1,Chen Lih‐Juann13,Han Shu‐Jen2,Lee Yi‐Hsien13ORCID

Affiliation:

1. Department of Materials Science and Engineering National Tsing Hua University Hsinchu 30013 Taiwan

2. IBM T. J. Watson Research Center Yorktown Heights New York NY 10598 USA

3. Frontier Research Center on Fundamental and Applied Sciences of Matters National Tsing Hua University Hsinchu 30013 Taiwan

Abstract

AbstractScalable nanoelectronics with energy‐efficient logic technology is crucial for next‐generation edge devices. Low‐dimensional semiconductors, such as transition metal dichalcogenides and single‐walled carbon nanotubes (SWCNTs), have tunable properties with reduced short‐channel effects. The unique properties of each material can be utilized owing to the heterogeneous integration of multiple semiconducting channels to form complementary metal‐oxide‐semiconductor (CMOS) logic. However, the integration remains challenging. This study reveals the realization of low static power hetero‐CMOS inverters by the integration of n‐type monolayer MoS2 and p‐type SWCNT networks. The balanced inverter exhibits a large peak gain of ≈67 at a supply voltage of 2 V with the customized design of the wafer‐scale synthetic process and channel integration. An ultralow standby power consumption of ≈5 pW and a practical peak gain of ≈7 at a reduced supply voltage of 0.25 V are achieved. A high noise margin (>70%) validates the circuit's tolerance to external noises and the dynamic analysis of the inverting amplifier in push–pull configuration exhibits a large AC gain. This work paves the way toward the wafer‐scale integration of low‐dimensional materials for low‐power nanoelectronics.

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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