Graphene is a (2 + 1)-dimensional quantum electrodynamic system. The carriers have a vanishing mass and a relativistic velocity of 106 m/s, obeying charge-conjugate parity time symmetry. Graphene exhibits the Klein paradox, due to which, through spatial confinement, a bandgap can be opened in zigzag graphene nanoribbons for logic applications. The high Debye temperature of 2800 K ensures that phonons are frozen out and lattice scattering is suppressed at 300 K. The perfect crystallinity ensures that defect/impurity scattering is suppressed. The two together give very high electrical conductivity and electric mobility. This permits a current density of 108 A/cm2, about 100 times greater than that in copper. Single-layer graphene has a thermal conductivity of 3000–5000 (W/m)/K at 300 K, but graphite has K = 2000 (W/m)/K. This may open up few-layer graphene applications in thermal management of nanoelectronics. The half-integer quantum Hall effect and non-zero Berry phase have been verified in the laboratory. These magneto-transport properties are a result of the exceptional topology of the graphene band structure. Ballistic transport observable up to 300 K makes graphene an ideal replacement for silicon (Si) electronics. The optical response of graphene is determined by the fine-structure constant over a wide band of the visible spectrum, and hence, it is ideal for high-speed optical modulators. This paper describes a commercially significant process for synthesizing large-area fold-free and defect-free graphene.
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1 October 2020
Research Article|
June 29 2020
Graphene: an exotic condensed matter and its impact on technology
Bijay Kumar Sharma, PhD
Electronics and Communication Engineering Department, National Institute of Technology Patna, Patna, India
Electrical Engineering Department, Indian Institute of Technology Patna, Patna, India
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Publisher: Emerald Publishing
Received:
October 18 2016
Accepted:
May 27 2020
Online ISSN: 2046-0155
Print ISSN: 2046-0147
ICE Publishing: All rights reserved
2020
Emerging Materials Research (2020) 9 (3): 564–617.
Article history
Received:
October 18 2016
Accepted:
May 27 2020
Citation
Sharma BK (2020), "Graphene: an exotic condensed matter and its impact on technology". Emerging Materials Research, Vol. 9 No. 3 pp. 564–617, doi: https://doi.org/10.1680/jemmr.16.00147
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