Graphene: A Comprehensive Review

被引:115
作者
Ghuge, Aditya D. [1 ]
Shirode, Abhay R. [1 ]
Kadam, Vilasrao J. [1 ]
机构
[1] Bharati Vidyapeeths Coll Pharm, CBD Belapur, Navi Mumbai 400614, Maharashtra, India
关键词
Drug targeting; graphene; honeycomb lattice; nanomaterial; one atom thickness; two-dimensional sheet; SENSORS; FILMS; OXIDE; GAS;
D O I
10.2174/1389450117666160709023425
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Graphene, a one-atom thick, two-dimensional sheets of sp(2) hybridized carbon atoms packed in a hexagonal lattice with a Caron-Carbon distance of about 0.142 nm. Its extended honeycomb network forms the basic building block of other important allotropes; it can be stacked to form 3-Dgraphite, rolled to form 1-D-nanotubes and wrapped to form 0-D-fullerenes. Long-range pi conjugation in graphene results in its extraordinary thermal, mechanical and electrical properties, which have been the interest of many theoretical studies and recently became an exciting area for scientists. Graphene is impermeable to gas and liquids, has excellent thermal conductivity and higher current density in comparison to other most effective materials. All of its exceptional properties have opened up new avenues for the use of graphene in nano-devices and nano-systems, which initiated its prominent use as a material for drug targeting. In addition, several fabrication techniques are outlined, starting from the mechanical exfoliation of high-quality graphene to the direct growth on silicon carbide or metal substrates and from the chemical routes utilizing graphene oxide to the newly developed approach at the molecular level. By this article reviewers intend to emphasize on unique properties, fabrication techniques and updated applications of graphene. In addition, we discuss about the potential of graphene in drug targeting in fields of nanotechnology, biomedical engineering and technology and its use for innovations in various fields such as electronics and photonics.
引用
收藏
页码:724 / 733
页数:10
相关论文
共 56 条
  • [1] Honeycomb Carbon: A Review of Graphene
    Allen, Matthew J.
    Tung, Vincent C.
    Kaner, Richard B.
    [J]. CHEMICAL REVIEWS, 2010, 110 (01) : 132 - 145
  • [2] Graphene: synthesis and applications
    Avouris, Phaedon
    Dimitrakopoulos, Christos
    [J]. MATERIALS TODAY, 2012, 15 (03) : 86 - 97
  • [3] Bae S, 2010, NAT NANOTECHNOL, V5, P574, DOI [10.1038/NNANO.2010.132, 10.1038/nnano.2010.132]
  • [4] Mechanical properties and biomedical applications of a nanotube hydroxyapatite-reduced graphene oxide composite
    Baradaran, S.
    Moghaddam, E.
    Basirun, W. J.
    Mehrali, M.
    Sookhakian, M.
    Hamdi, M.
    Moghaddam, M. R. Nakhaei
    Alias, Y.
    [J]. CARBON, 2014, 69 : 32 - 45
  • [5] Hamaker constants of inorganic materials
    Bergstrom, L
    [J]. ADVANCES IN COLLOID AND INTERFACE SCIENCE, 1997, 70 : 125 - 169
  • [6] Hydrodynamic theory of transport in doped graphene
    Bistritzer, R.
    MacDonald, A. H.
    [J]. PHYSICAL REVIEW B, 2009, 80 (08)
  • [7] Prospects and Challenges of Graphene in Biomedical Applications
    Bitounis, Dimitrios
    Ali-Boucetta, Hanene
    Hong, Byung Hee
    Min, Dal-Hee
    Kostarelos, Kostas
    [J]. ADVANCED MATERIALS, 2013, 25 (16) : 2258 - 2268
  • [8] Ultrahigh electron mobility in suspended graphene
    Bolotin, K. I.
    Sikes, K. J.
    Jiang, Z.
    Klima, M.
    Fudenberg, G.
    Hone, J.
    Kim, P.
    Stormer, H. L.
    [J]. SOLID STATE COMMUNICATIONS, 2008, 146 (9-10) : 351 - 355
  • [9] Temperature-dependent transport in suspended graphene
    Bolotin, K. I.
    Sikes, K. J.
    Hone, J.
    Stormer, H. L.
    Kim, P.
    [J]. PHYSICAL REVIEW LETTERS, 2008, 101 (09)
  • [10] Rayleigh imaging of graphene and graphene layers
    Casiraghi, C.
    Hartschuh, A.
    Lidorikis, E.
    Qian, H.
    Harutyunyan, H.
    Gokus, T.
    Novoselov, K. S.
    Ferrari, A. C.
    [J]. NANO LETTERS, 2007, 7 (09) : 2711 - 2717