| Literature DB >> 28250713 |
Teresa Muñoz-Écija1, Benjamín Vargas-Quesada1, Zaida Chinchilla-Rodríguez2.
Abstract
The aim of this paper is to make manifest the intellectual and cognitive structure of nanoscience and nanotechnology (NST) by means of visualization techniques. To this end, we used data from the Web of Science (WoS), delimiting the data to the category NST during the period of 2000-2013, retrieving a total of 198,275 documents. Through direct author citation of these works, we identified their origins and the seminal papers, and through word co-occurrence extracted from the titles and abstracts, the main lines of research were identified. In view of both structures, we may affirm that NST is a young scientific discipline in constant expansion, needing time to establish its foundations but showing a strongly interdisciplinary character; its development is furthermore dependent upon knowledge from other disciplines, such as physics, chemistry, or material sciences. We believe that this information may be very useful for the NST scientific community, as it reflects a large-scale analysis of the research lines of NST and how research has changed over time in the diverse areas of NST. This study is moreover intended to offer a useful tool for the NST scientific community, revealing at a glance the main research lines and landmark papers. Finally, the methodology used in this study can be replicated in any other field of science to explore its intellectual and cognitive structure.Entities:
Keywords: Co-words; Direct citation; Historical roots; Intellectual structure; Nanoscience & Nanotechnology; Research trends; Scientometrics
Year: 2017 PMID: 28250713 PMCID: PMC5306344 DOI: 10.1007/s11051-016-3732-3
Source DB: PubMed Journal: J Nanopart Res ISSN: 1388-0764 Impact factor: 2.253
Fig. 1NST-retrieved documents from WoS and relevant terms
Fig. 2The 80 most cited document networks in NST. Available in high resolution at: http://www.ugr.es/local/benjamin/maps/Figure-2.png
Fig. 3Nanochemistry and Nanomedicine. Available in high resolution at: http://www.ugr.es/local/benjamin/maps/Figure-3.png
Fig. 4Nanomaterial characteristics and manufacturing techniques Available in high resolution at: http://www.ugr.es/local/benjamin/maps/Figure-4.png
Fig. 5Physics and Chemistry. Available in high resolution at: http://www.ugr.es/local/benjamin/maps/Figure-5.png
Fig. 6Carbon nanomaterials. Available in high resolution at: http://www.ugr.es/local/benjamin/maps/Figure-6.png
Science maps NST
aAvailable in high resolution at: http://www.ugr.es/local/benjamin/maps/N&N-2000-2003.png
bAvailable in high resolution at: http://www.ugr.es/local/benjamin/maps/N&N-2004-2007.png
cAvailable in high resolution at: http://www.ugr.es/local/benjamin/maps/N&N-2008-2010.png
dAvailable in high resolution at: http://www.ugr.es/local/benjamin/maps/N&N-2011-2013.png
Identified clusters between 2000 and 2013
| 2000–2003 | 2004–2007 | 2008–2010 | 2011–2013 |
|---|---|---|---|
| Microelectronics engineering and top-down processes | Microelectronics engineering and top-down processes | Microelectronics engineering and top-down processes | Microelectronics engineering and top-down processes + Organic electronics |
| Synthesis of nanomaterials and bottom-up processes + Biotechnology and Biomedicine | Synthesis of nanomaterials and bottom-up processes | Synthesis of nanomaterials and bottom-up processes + Optics and Electronics | Synthesis of nanomaterials and bottom-up processes + Optics and Electronics |
| Mechanical characteristics of materials | Mechanical characteristics of materials + Physical characteristics of materials | Mechanical characteristics of materials + Physical characteristics of materials | Mechanical characteristics of materials + Physical characteristics of materials |
| Optics and Electronics | Optics and Electronics | Biotechnology and Biomedicine: Biosensing | Biotechnology and Biomedicine: Biosensing |
| Physical characteristics of materials | Biotechnology and Biomedicine | Biotechnology and Biomedicine: Therapeutic biomedicine | Biotechnology and Biomedicine: Therapeutic biomedicine |
| Organic electronics |
Most relevant terms of Optics and Electronics cluster
| 2000–2003 | Score | 2004–2007 | Score | 2008–2010 (joined SNBUP) | Score | 2011–2013 (joined SNBUP) | Score |
|---|---|---|---|---|---|---|---|
| External voltage | 7.00 | Nanoscale morphology | 16.58 | Electric vehicle | 11.16 | Semiconductor photocatalysis | 13.09 |
| Lasing action | 5.59 | Charge collection | 15.00 | Pulverization | 9.64 | MoSe2 | 12.83 |
| Individual single walled carbon nanotube | 5.32 | Improved performance | 11.29 | Graphite anode | 9.30 | mAh g1 | 9.79 |
| Quantum rod | 4.55 | Polymer solar cell | 10.49 | Battery electrode | 9.16 | Visible light photocatalytic hydrogen | 8.98 |
| Logic function | 4.29 | Bulk heterojunction solar cell | 10.04 | Rechargeable lithium battery | 8.53 | Advanced electrode material | 8.89 |
| Kilowatts per square centimeter | 3.60 | Donor acceptor interface | 9.61 | Charge capacity | 8.13 | Robust adhesion | 8.42 |
| Electrical transport measurement | 3.55 | Charge generation | 9.54 | Energy storage device | 7.48 | Asymmetric supercapacitor | 8.35 |
| Transport study | 3.39 | Biological labeling | 9.12 | Cycle life | 7.41 | Flexible energy storage device | 8.21 |
| Low temperature growth | 3.31 | Plastic solar cell | 8.30 | Fascinating property | 7.39 | Superior cyclability | 8.21 |
| Modules for experiments in stellar astrophysics | 3.06 | Graphene nanoribbon | 8.05 | Supercapacitor electrode material | 7.09 | High energy lithium ion battery | 8.11 |
| Density of states | 3.02 | Poly3 hexylthiophene butyric acid methyl ester | 7.95 | High charge storage capacity | 6.81 | Capacitive energy storage | 7.88 |
| Laser emission | 3.02 | Semiconducting polymer | 7.94 | Electrochemical energy storage | 6.80 | New electrode material | 7.87 |
| CdSe quantum dot | 2.80 | Solid state lighting | 7.69 | Hydrocarbon fuel | 6.77 | Excellent mechanical strength | 7.70 |
| Dimensional plasmon | 2.77 | Overall conversion efficiency | 7.10 | Capacity fading | 6.75 | High performance libs | 7.66 |
| Miniband transport | 2.77 | Multiple exciton generation | 7.06 | Gradual reduction | 6.64 | Nanostructured electrode material | 7.27 |
Most relevant terms of Synthesis of nanomaterials and bottom-up processes cluster
| 2000–2003 (Joined Biotechnology and Biomedicine) | Score | 2004–2007 | Score | 2008–2010 (Joined Optics and Electronics) | Score | 2011–2013 (Joined Optics and Electronics) | Score |
|---|---|---|---|---|---|---|---|
| ZnO nanowire | 20.81 | Nanometer wall thickness | 11.13 | Electric vehicle | 11.16 | Semiconductor photocatalysis | 13.09 |
| Acid methyl ester | 16.34 | Cd2 ion | 9.85 | Pulverization | 9.64 | MoSe2 | 12.83 |
| Sensitization | 16.28 | TiO2 nanotube array | 9.22 | Graphite anode | 9.30 | mAh g1 | 9.79 |
| Solar energy conversion | 14.13 | Gold nanocage | 8.76 | Battery electrode | 9.16 | Visible light photocatalytic hydrogen | 8.98 |
| Catalytic growth | 13.28 | Nanometer pore diameter | 8.76 | Rechargeable lithium battery | 8.53 | Advanced electrode material | 8.89 |
| Butyric acid methyl ester | 12.95 | Silver nanocube | 8.47 | Charge capacity | 8.13 | Robust adhesion | 8.42 |
| Shell thickness | 12.77 | Polyaniline nanofiber | 8.31 | Energy storage device | 7.48 | Asymmetric supercapacitor | 8.35 |
| Core shell particle | 9.93 | Potentiostatic anodization | 8.21 | Cycle life | 7.41 | Flexible energy storage device | 8.21 |
| ZnO nanorod | 9.83 | Photoanode | 7.42 | Fascinating property | 7.39 | Superior cyclability | 8.21 |
| Electrospinning | 9.55 | Liberation | 7.15 | Supercapacitor electrode material | 7.09 | High energy lithium ion battery | 8.11 |
| Nanobelt | 8.93 | Titania nanotube array | 6.80 | High charge storage capacity | 6.81 | Capacitive energy storage | 7.88 |
| Silver nanowire | 8.81 | Block truncation coding | 6.79 | Electrochemical energy storage | 6.80 | New electrode material | 7.87 |
| Novel nanostructure | 8.81 | Chemical activity | 6.46 | Hydrocarbon fuel | 6.77 | Excellent mechanical strength | 7.70 |
| Soil | 8.59 | Lithium ion secondary battery | 6.23 | Capacity fading | 6.75 | High performance libs | 7.66 |
| Polyfluorene | 8.42 | Same chemical composition | 6.16 | Gradual reduction | 6.64 | Nanostructured electrode material | 7.27 |
Most relevant terms of Biotechnology and Biomedicine cluster
| 2000–2003 (joined SNBUP) | Score | 2004–2007 | Score | 2008–2010 (Biosensing) | Score | 2008–2010 (Therapeutic biomedicine) | Score | 2011–2013 (Biosensing) | Score | 2011–2013 (Therapeutic biomedicine) | Score |
|---|---|---|---|---|---|---|---|---|---|---|---|
| ZnO nanowire | 20.81 | Photothermal therapy | 9.97 | Novel glucose biosensor | 6.66 | Abdominal cavity | 8.63 | Chemical class | 10.07 | Marine organism | 6.91 |
| Acid methyl ester | 16.34 | Unique optical property | 8.85 | Biotechnology application | 6.32 | Significant obstacle | 7.28 | Complex biological environment | 5.82 | Biological identity | 6.00 |
| Sensitization | 16.28 | Mesoporous silica nanoparticle | 8.81 | Droplet microfluidic | 5.47 | Harm | 7.11 | Luminogen | 5.31 | Cellular machinery | 5.48 |
| Solar energy conversion | 14.13 | Protein engineering | 8.18 | Excellent platform | 5.25 | Implantable medical device | 6.23 | Care diagnostic device | 5.20 | Tissue penetration depth | 5.41 |
| Catalytic growth | 13.28 | Nanometer nanoparticle | 7.97 | Graphene oxide surface | 4.72 | Surrogate | 6.02 | Existing camera unit | 5.13 | Unique size | 5.22 |
| Butyric acid methyl ester | 12.95 | Electrospun nanofiber | 7.10 | Norepinephrine | 4.66 | Vivo delivery | 5.32 | Dioxetane | 5.04 | Ce6 | 5.08 |
| Shell thickness | 12.77 | Cellular toxicity | 6.93 | Complementary dna strand | 4.55 | Asbestos | 5.25 | Phosphoryloxy | 5.04 | Photodynamic therapy efficacy | 4.72 |
| Core shell particle | 9.93 | Arsenal | 6.63 | TNT detection | 4.10 | Apparent cytotoxicity | 5.18 | Powerful technology | 4.26 | Diseased cell | 4.69 |
| ZnO nanorod | 9.83 | S aureus | 6.45 | Bioelectronic | 4.04 | Novel form | 5.15 | Microfluidic paper | 4.25 | Modern medicine | 4.65 |
| Electrospinning | 9.55 | Gram-negative bacterium | 6.42 | Background fluorescence | 4.03 | Endosomal compartment | 5.12 | Resource limited setting | 4.15 | ICP MS analysis | 4.48 |
| Nanobelt | 8.93 | Cancer treatment | 6.36 | Non-enzymatic glucose sensor | 4.01 | Early onset | 4.81 | Aggregation-induced emission characteristics | 4.07 | High photothermal conversion efficiency | 4.25 |
| Silver nanowire | 8.81 | Cancer diagnosis | 6.23 | Wide linear response | 3.89 | Nanoparticle type | 4.76 | Microfluidic paper based analysis devices | 4.06 | New era | 4.17 |
| Novel nanostructure | 8.81 | Related technology | 6.10 | Epinephrine | 3.82 | Protein corona | 4.66 | Fluorogen | 4.03 | Controlled drug delivery | 4.15 |
| Soil | 8.59 | Antibacterial property | 6.04 | Novel graphene | 3.78 | Human exposure | 4.48 | Catecholamine | 3.96 | Vivo biocompatibility | 4.08 |
| Polyfluorene | 8.42 | Cancer diagnostic | 5.85 | Good electrocatalytic activity | 3.75 | Human cancer cell | 4.41 | Efficient platform | 3.89 | GelMA | 4.07 |
Most relevant terms of Microelectronics engineering and top-down processes cluster
| 2000–2003 | Score | 2004–2007 | Score | 2008–2010 | Score | 2011–2013 | Score |
|---|---|---|---|---|---|---|---|
| Organic thin film transistor | 11.50 | Hydrophilic polymer | 7.36 | Few layer graphene films | 16.71 | Rich physic | 16.04 |
| Non-volatile memory | 8.60 | Novel nanoscale | 7.17 | Transparent conducting film | 15.10 | WSe2 | 12.19 |
| Optical application | 7.43 | Superhydrophilicity | 5.95 | Exciting potential | 13.48 | PTB7 | 11.65 |
| Design consideration | 5.52 | New architecture | 5.66 | Scalable technique | 13.45 | MoS2 monolayer | 11.02 |
| Ferroelectricity | 5.36 | Microscale device | 5.36 | Graphene electrode | 12.58 | Bilayer MoS2 | 10.10 |
| Optical switch | 4.95 | Superhydrophobic coating | 5.12 | Nitrogen-doped graphene | 12.14 | Entire visible spectrum | 9.65 |
| Luminescence efficiency | 4.20 | High gain | 4.94 | Arbitrary substrates | 11.20 | Standard AM | 9.47 |
| Molecular monolayer | 3.78 | Superhydrophobicity | 4.75 | Large-scale growth | 10.99 | MoS2 transistor | 9.08 |
| Alkyl | 3.71 | Further optimization | 4.57 | Liquid phase exfoliation | 10.80 | Ionic motion | 8.71 |
| Energy consumption | 3.61 | Optical coherence tomography | 4.19 | Individual graphene sheet | 10.62 | Terminology | 8.57 |
| Carbon nanotube field effect transistor | 3.44 | Continuous flow separation | 4.14 | Large area graphene | 10.18 | Efficiency limitation | 8.31 |
| Strontium titanate | 3.36 | Enhanced mixing | 4.06 | Optoelectronic property | 10.02 | Valley polarization | 8.14 |
| Atomic force microscopy cantilever | 3.34 | Crust | 4.03 | Thick sheet | 9.17 | Efficient polymer solar cell | 8.03 |
| Conductive substrate | 3.19 | Bath temperature | 3.99 | Graphene oxide film | 9.04 | Reduced charge recombination | 7.92 |
| Charge fluctuation | 2.97 | Lithographic approach | 3.85 | Single sheet | 8.93 | PEC water splitting | 7.80 |
Most relevant terms of Physical and mechanical characteristics of materials cluster
| 2000–2003 (Mechanical) | Score | 2000–2003 (Physical) | Score | 2004–2007 | Score | 2008–2010 | Score | 2011–2013 | Score |
|---|---|---|---|---|---|---|---|---|---|
| Solid oxide fuel cell | 5.11 | Magnesium alloy AZ31 | 5.66 | Mechanical reinforcement | 5.95 | Enhanced strength | 6.99 | Local property | 5.76 |
| Stage process | 3.66 | Continuous dynamic recrystallization | 3.96 | Simultaneous increase | 5.07 | Effective reinforcement | 3.74 | Video recording | 5.20 |
| High capacity | 3.54 | Ultrafine grained | 3.94 | Annealing time t | 3.24 | Watt per meter Kelvin | 2.92 | Strong size dependence | 3.73 |
| Spark plasma | 3.52 | Accumulative roll bonding | 3.08 | Filler material | 2.98 | Dimensional finite element simulation | 2.84 | Tafel analysis | 3.09 |
| High temperature stability | 3.24 | Peak value | 2.96 | Nanotube polymer composite | 2.84 | Concrete | 2.54 | Random texture | 2.57 |
| Hall petch relationship | 3.21 | Nanocrystalline metal | 2.69 | MHz range | 2.59 | Ultimate strength | 2.50 | Si particle | 2.45 |
| Yttrium oxide | 3.17 | Recrystallization mechanism | 2.46 | Ultrafine grain size | 2.54 | Macromolecular structure | 2.47 | Relevant temperature range | 2.31 |
| Columnar grain structure | 3.03 | Flow instability | 2.45 | Low ductility | 2.41 | Disclination | 2.18 | Optimum balance | 2.25 |
| Coating property | 3.02 | Continuous recrystallization | 2.43 | Good electrical conductivity | 2.40 | Large strain | 2.09 | Primary focus | 2.20 |
| Coating stir weld | 2.97 | Route c | 2.43 | Ultrafine grained microstructure | 2.38 | Damaged region | 2.09 | Outstanding mechanical property | 2.16 |
| Solid matrix | 2.97 | High pressure torsion | 2.39 | Inducing | 2.31 | Minimally | 2.07 | Segregation behavior | 2.16 |
| Multicomponent system | 2.92 | Equal channel angular pressing | 2.34 | Surface mechanical attrition treatment | 2.29 | Major mechanism | 2.04 | Thick sheet | 2.10 |
| Fold symmetry | 2.90 | Silicon nanotube | 2.31 | Microwave sintering | 2.25 | Extrusion texture | 2.02 | Multistep | 2.08 |
| Load transfer | 2.86 | Hot deformation behavior | 2.30 | Deformability | 2.20 | Crystal form | 1.86 | LMC | 1.99 |
| Automotive industry | 2.85 | Grain size dependence | 2.19 | Rapid heating | 2.08 | Higher yield strength | 1.86 | Cyclic strain | 1.96 |
Most relevant terms of Organic electronics cluster
| 2008–2010 | Score |
|---|---|
| Minority carrier diffusion length | 11.72 |
| Polymer donor | 8.27 |
| Vertical phase separation | 8.19 |
| High absorption coefficient | 7.87 |
| Fullerene acceptor | 7.61 |
| Polymer morphology | 6.14 |
| Solvent-free ionic liquid electrolyte | 5.98 |
| Reduced graphene oxide film | 5.97 |
| Photoconversion efficiency | 5.76 |
| Solution processed | 5.75 |
| Electron pathway | 5.72 |
| Functionalized graphene | 5.52 |
| Bulk heterojunction solar cell | 5.49 |
| Particulate film | 5.46 |
| Diketopyrrolopyrrole | 5.46 |
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| Perdew | 1996 | Physical Review Letters | 3072 |
| Novoselov | 2004 | Science | 2856 |
| Geim | 2007 | Nature Materials | 2169 |
| Kresse | 1996 | Physical Review B | 1997 |
| Oregan | 1991 | Nature | 1779 |
| Xia | 2003 | Advanced Materials | 1531 |
| Kresse | 1999 | Physical Review B | 1529 |
| Frisch | 2004 | Gaussian 03 Revision | 1492 |
| Kresse | 1996 | Computational Materials Science | 1462 |
| Huang | 2001 | Science | 1444 |
| Monkhorst | 1976 | Physical Review B | 1441 |
| Blochl | 1994 | Physical Review B | 1438 |
| Kresge | 1992 | Nature | 1343 |
| Alivisatos | 1996 | Science | 1311 |
| Daniel | 2004 | Chemical Reviews | 1258 |
| Novoselov | 2005 | Nature | 1201 |
| Baughman | 2002 | Science | 1197 |
| Lee | 1988 | Physical Review B | 1196 |
| Becke | 1993 | Journal of Chemical Physics | 1172 |
| Hummers | 1958 | Journal of the American Chemical Society | 1135 |
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| Johnson | 1972 | Physical Review B | 1075 |
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