Integrated wafer-scale ultra-flat graphene by gradient surface energy modulation

Author:

Gao Xin,Zheng Liming,Luo Fang,Qian Jun,Wang JingyueORCID,Yan Mingzhi,Wang Wendong,Wu Qinci,Tang Junchuan,Cao Yisen,Tan Congwei,Tang Jilin,Zhu Mengjian,Wang Yani,Li Yanglizhi,Sun LuzhaoORCID,Gao Guanghui,Yin JianboORCID,Lin LiORCID,Liu ZhongfanORCID,Qin Shiqiao,Peng HailinORCID

Abstract

AbstractThe integration of large-scale two-dimensional (2D) materials onto semiconductor wafers is highly desirable for advanced electronic devices, but challenges such as transfer-related crack, contamination, wrinkle and doping remain. Here, we developed a generic method by gradient surface energy modulation, leading to a reliable adhesion and release of graphene onto target wafers. The as-obtained wafer-scale graphene exhibited a damage-free, clean, and ultra-flat surface with negligible doping, resulting in uniform sheet resistance with only ~6% deviation. The as-transferred graphene on SiO2/Si exhibited high carrier mobility reaching up ~10,000 cm2 V−1 s−1, with quantum Hall effect (QHE) observed at room temperature. Fractional quantum Hall effect (FQHE) appeared at 1.7 K after encapsulation by h-BN, yielding ultra-high mobility of ~280,000 cm2 V−1 s−1. Integrated wafer-scale graphene thermal emitters exhibited significant broadband emission in near-infrared (NIR) spectrum. Overall, the proposed methodology is promising for future integration of wafer-scale 2D materials in advanced electronics and optoelectronics.

Funder

National Natural Science Foundation of China

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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