1. a State Key Laboratory of Metastable Materials Science and Technology Yanshan University Qinhuangdao China
2. a State Key Laboratory of Metastable Materials Science and Technology Yanshan University
3. b Center for High Pressure Science and Technology Advanced Research
网络首发:2021-02-19,
纸质出版:2021
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Guowen Qin, Lailei Wu, Huiyang Gou. Diamane: design, synthesis, properties, and challenges[J]. Functional Diamond, 2021,1(1):83-92.
Guowen Qin, Lailei Wu, Huiyang Gou. Diamane: design, synthesis, properties, and challenges[J]. Functional Diamond2021, 1(1): 83-92.
Guowen Qin, Lailei Wu, Huiyang Gou. Diamane: design, synthesis, properties, and challenges[J]. Functional Diamond, 2021,1(1):83-92. DOI: 10.1080/26941112.2020.1869475.
Guowen Qin, Lailei Wu, Huiyang Gou. Diamane: design, synthesis, properties, and challenges[J]. Functional Diamond2021, 1(1): 83-92. DOI: 10.1080/26941112.2020.1869475.
Diamane
the two-dimensional counterpart of diamond
is achieved from bi-layer graphene (BLG) or few-layer graphene (FLG) through surface chemical adsorption or high-pressure technology. Diamane with interlayer
sp
3
bonding is found to have excellent heat transfer
ultra-low friction
high natural frequency
and tunable band gap
which shows the potential technological and industrial applications in nano-photonics
ultrasensitive resonator-based sensors
and improved wear resistance. In this review
we summarize the structure character
synthesis strategies
and physical properties of different diamanes
including hydrogenated diamane (HD)
fluorinated diamane (FD)
and pristine diamane (PD). In addition
we discuss the effect of functional groups
element doping
and stacking order on the physical properties of diamane. Finally
the remaining challenges and future opportunities for the further development of diamane are addressed.
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