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  1. 1801
    por Rasheed, Muhibur, Bajaj, Chandrajit
    Publicado 2015
    “…Such tiling arrangements or congruently tiled meshed shapes, are frequently found in chemical forms (fullerenes or Bucky balls, crystals, quasi-crystals, virus nano shells or capsids), and synthetic shapes (cages, sports domes, modern architectural facades). …”
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  2. 1802
    “…Moreover, other nanomaterials (carbon nanotubes, fullerenes, graphene, chitosan, etc.) have also been studied for their antimicrobial effects in order ensure their application in widespread domains. …”
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  3. 1803
    “…Metallic and metal oxide nanoparticles (NPs), including titanium dioxide NPs, among polymeric NPs, liposomes, micelles, quantum dots, dendrimers, or fullerenes, are becoming more and more important due to their potential use in novel medical therapies. …”
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  4. 1804
    “…In contrast, the properties of C(3)N nanobuds produced by attaching an increasing number of C(60) fullerenes gradually decreased. Moreover, considering C(3)NNTs with different types of defects revealed that two-atom vacancies resulted in the greatest reduction of all the properties studied, while Stone–Wales defects had the lowest effect on them.…”
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  5. 1805
    “…In particular, carbon nanotubes (CNTs), nanodiamonds, graphene, and fullerenes serve as scaffolds for the immobilization of biomolecules at their surface and are also used as transducers for the conversion of signals associated with the recognition of biological analytes. …”
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  6. 1806
    “…It is possible to identify new structural forms of carbon within, and other valuable properties of, shungite substance, which will make it possible to create effective technologies for the practical use of shungite rocks, particularly in the production of fullerenes and other carbon nanoclusters.…”
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  7. 1807
    “…The carbonaceous materials were utilized as stand-alone catalysts or as supports of (nano)metals are various types of activated micro/mesoporous carbons, graphene/graphite and the chemically modified counterparts like graphite oxide and reduced graphite oxide, carbon nanotubes, carbon quantum dots, graphitic carbon nitride, and fullerenes.…”
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  8. 1808
    “…In this work, we present recent progress on the fabrication, structural design, functional tailoring, and gas adsorption applications of CMBAs, which are prepared by precursor materials, such as polymer-derived carbon, carbon nanotubes, carbon nanofibers, graphene, graphene-like carbides, fullerenes, and carbon dots. To achieve this aim, first we introduce the fabrication methods of various aerogels, and, then, discuss the strategies for regulating the structures of CMBAs by adjusting the porosity and periodicity. …”
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  9. 1809
    “…We challenged Nicotiana benthamiana plants with GFP-tagged CCYV and observed morphological, physiological, and molecular changes in response to 21-d foliar exposure to nanoscale Fe and Zn and C(60) fullerenes at 100 mg/L concentration for 21 days. We observed that in response to C(60) (100 mg/L) treatment, plants displayed a normal phenotype while the viral infection was not seen until 5 days post-inoculation. …”
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  10. 1810
    “…According to the π–π interactional difference between carbon rings of fullerenes and benzene rings of DR, C(60) and C(70) were also well separated in the HPLC column packed with DR-modified P(S-DVB) particles.…”
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  11. 1811
    “…Molecular nanoparticles including polyoxometalates, proteins, fullerenes and polyhedral oligosiloxane (POSS) are nanosized objects with atomic precision, among which POSS derivatives are the smallest nanosilicas. …”
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  12. 1812
    “…Interactions between fullerenes and cells and effects on the main transition of lipid bilayers have attracted much attention in biophysics in recent years. …”
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  13. 1813
    “…In the past two and a half decades or so, conjugated carbon nanomaterials, especially carbon nanotubes, fullerenes, activated carbon and graphite have been used as energy materials due to their exclusive properties. …”
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  14. 1814
    “…By “plugging” the {POM}@SWNT material with C(60)-fullerenes, we demonstrate that the primary mode of charge balancing is proton transport through the graphenic lattice of the SWNT sidewalls. …”
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  15. 1815
    “…The new algorithms are tested for three sets of molecular structures including pillar[5]arene complexes with Li(+), C(100) fullerenes, and large unit cells of metal organic frameworks. …”
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  16. 1816
  17. 1817
    por Zdetsis, Aristides D
    Publicado 2011
    “…Such nanomaterias designed in silico include, among many others, Si-C, Sn-Bi, Si-C and Ge-C clusters, rings, nanowheels, nanorodes, nanocages and multidecker sandwiches, as well as silicon planar rings and fullerenes similar to the analogous sp(2 )bonding carbon structures. …”
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  18. 1818
    “…We report swift heavy ion (SHI) irradiation-induced annealing and purification effects in graphene films, similar to that observed in our studies on fullerenes and carbon nanotubes (CNTs). Raman studies after irradiation with 100-MeV Ag ions (fluences from 3 × 10(10) to 1 × 10(14) ions/cm(2)) show that the disorder parameter α, defined by I(D)/I(G) ratio, decreases at lower fluences but increases at higher fluences beyond 1 × 10(12) ions/cm(2). …”
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  19. 1819
    “…For carbon atoms without an attached hydrogen, a dipolar enhancement usually dominates as we illustrate for sp(2) hybridized carbons in the fullerenes, C(60) and C(70). However, the scalar interaction is dependent on a Fermi contact interaction which does not have the magnetic field dependence inherent in the dipolar interaction. …”
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  20. 1820
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