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1
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11044236143
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ZnO Nanowire Growth and Devices
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Y. W. Heo, D. P. Norton, L. C. Tien, Y. Kwon, B. S. Kang, F. Ren, S. J. Pearton, and, J. R. LaRoche, " ZnO Nanowire Growth and Devices," Mater. Sci. Eng. R, 47 [ 1 ] 1-47 (2004).
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Mater. Sci. Eng. R
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Heo, Y.W.1
Norton, D.P.2
Tien, L.C.3
Kwon, Y.4
Kang, B.S.5
Ren, F.6
Pearton, S.J.7
Laroche, J.R.8
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2
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58149213876
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Controlled Synthesis and Properties of ZnO Nanostructures Grown by Metalorganic Chemical Vapor Deposition: A Review
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W. I. Park, " Controlled Synthesis and Properties of ZnO Nanostructures Grown by Metalorganic Chemical Vapor Deposition: A Review," Met. Mater. Int., 14 [ 6 ] 659-65 (2008).
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(2008)
Met. Mater. Int.
, vol.14
, Issue.6
, pp. 659-665
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Park, W.I.1
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3
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68749092839
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Fabrication of ZnO/CdS core/shell nanowire arrays for efficient solar energy conversion
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Y. Tak, S. J. Hong, J. S. Lee, and, K. J. Yong, " Fabrication of ZnO/CdS core/shell nanowire arrays for efficient solar energy conversion," J. Mater. Chem., 19, 5945-51 (2009).
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J. Mater. Chem.
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Tak, Y.1
Hong, S.J.2
Lee, J.S.3
Yong, K.J.4
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4
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84872698645
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Facile Synthesis of Ultratine ZnO Nanotubes with Well-Organized Hexagonal Nanowalls and Sealed Layouts: Applications for Lithium Ion Battery Anodes
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K. T. Park, F. Xia, S. W. Kim, S. B. Kim, T. Song, U. Paik, and, W. I. Park, " Facile Synthesis of Ultratine ZnO Nanotubes with Well-Organized Hexagonal Nanowalls and Sealed Layouts: Applications for Lithium Ion Battery Anodes," J. Phys. Chem. C, 117 [ 2 ] 1037-43 (2013).
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(2013)
J. Phys. Chem. C
, vol.117
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, pp. 1037-1043
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Park, K.T.1
Xia, F.2
Kim, S.W.3
Kim, S.B.4
Song, T.5
Paik, U.6
Park, W.I.7
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5
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17044380667
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ZnO Nanorods: Synthesis, Characterization and Applications
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G. C. Yi, C. R. Wang, and, W. I. Park, " ZnO Nanorods: Synthesis, Characterization and Applications," Semicond. Sci. Technol., 20, S22-34 (2005).
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(2005)
Semicond. Sci. Technol.
, vol.20
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Yi, G.C.1
Wang, C.R.2
Park, W.I.3
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6
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0036568765
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A 5% Efficient Photoelectrochemical Solar Cell Based on Nanostructured ZnO Electrodes, Solar Energy Materials and Solar Cells
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K. Keis, E. Magnusson, H. Lindström, S. E. Lindquist, and, A. Hagfeldt, " A 5% Efficient Photoelectrochemical Solar Cell Based on Nanostructured ZnO Electrodes, Solar Energy Materials and Solar Cells," Sol. Energy Mater. Sol. Cells, 73 [ 1 ] 51-8 (2002).
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Sol. Energy Mater. Sol. Cells
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, pp. 51-58
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Keis, K.1
Magnusson, E.2
Lindström, H.3
Lindquist, S.E.4
Hagfeldt, A.5
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7
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84858070957
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Metal Oxides Mono-Dimensional Nanostructures for Gas Sensing and Light Emission
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C. Soldano, E. Comini, C. Baratto, M. Ferroni, G. Faglia, and, G. Sberveglieri, " Metal Oxides Mono-Dimensional Nanostructures for Gas Sensing and Light Emission," J. Am. Ceram. Soc., 95 [ 3 ] 831-50 (2012).
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J. Am. Ceram. Soc.
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Soldano, C.1
Comini, E.2
Baratto, C.3
Ferroni, M.4
Faglia, G.5
Sberveglieri, G.6
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8
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1042289088
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Electroluminescence in n-ZnO Nanorod Arrays Vertically Grown on p-GaN
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W. I. Park, and, G. C. Yi, " Electroluminescence in n-ZnO Nanorod Arrays Vertically Grown on p-GaN," Adv. Mater., 16 [ 1 ] 87-90 (2004).
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(2004)
Adv. Mater.
, vol.16
, Issue.1
, pp. 87-90
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Park, W.I.1
Yi, G.C.2
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9
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33645810366
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Piezoelectric Nanogenerators Based on Zinc Oxide Nanowire Arrays
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Z. L. Wang, and, J. H. Song, " Piezoelectric Nanogenerators Based on Zinc Oxide Nanowire Arrays," Science, 312, 242-6 (2006).
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(2006)
Science
, vol.312
, pp. 242-246
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Wang, Z.L.1
Song, J.H.2
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10
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79956363443
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Vertically-Aligned ZnO Nanorods and Graphene Hybrid Architectures for High-Sensitive Flexible Gas Sensors
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J. Yi, J. M. Lee, and, W. I. Park, " Vertically-Aligned ZnO Nanorods and Graphene Hybrid Architectures for High-Sensitive Flexible Gas Sensors," Sens. Actuators, B, 155, 264-9 (2011).
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(2011)
Sens. Actuators, B
, vol.155
, pp. 264-269
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Yi, J.1
Lee, J.M.2
Park, W.I.3
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11
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0041305911
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Low-Temperature Wafer-Scale Production of ZnO Nanowire Arrays
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L. E. Greene, M. Law, J. Goldberger, F. Kim, J. C. Johnson, Y. Zhang, R. J. Saykally, and, P. Yang, " Low-Temperature Wafer-Scale Production of ZnO Nanowire Arrays," Angew. Chem. Int. Ed., 42, 3031-4 (2003).
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Angew. Chem. Int. Ed.
, vol.42
, pp. 3031-3034
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Greene, L.E.1
Law, M.2
Goldberger, J.3
Kim, F.4
Johnson, J.C.5
Zhang, Y.6
Saykally, R.J.7
Yang, P.8
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12
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33745959794
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Growth of ZnO Nanorods by the Chemical Solution Method with Assisted Electrical Field
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J. Zhao, Z.G. Jin, T. Li, X. X. Liu, and, Z. F. Liu, " Growth of ZnO Nanorods by the Chemical Solution Method with Assisted Electrical Field," J. Am. Ceram. Soc., 89 [ 8 ] 2654-9 (2006).
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J. Am. Ceram. Soc.
, vol.89
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Zhao, J.1
Jin, Z.G.2
Li, T.3
Liu, X.X.4
Liu, Z.F.5
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13
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57349101398
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Surface Polarity and Shape-Controlled Synthesis of ZnO Nanostructures on GaN Thin Films Based on Catalyst Free MOVPE
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T. Song, J. W. Choung, J. G. Park, W. I. Park, J. A. Rogers, and, U. Paik, " Surface Polarity and Shape-Controlled Synthesis of ZnO Nanostructures on GaN Thin Films Based on Catalyst Free MOVPE," Adv. Mater., 20 [ 23 ] 4464-9 (2008).
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Adv. Mater.
, vol.20
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Song, T.1
Choung, J.W.2
Park, J.G.3
Park, W.I.4
Rogers, J.A.5
Paik, U.6
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14
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84862908735
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Surface Polarity-Dependent Cathodoluminescence in Hydrothermally Grown ZnO Hexagonal Rods
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W. W. Lee, S. B. Kim, J. Yi, W. T. Nichols, and, W. I. Park, " Surface Polarity-Dependent Cathodoluminescence in Hydrothermally Grown ZnO Hexagonal Rods," J. Phys. Chem. C, 116, 456-60 (2012).
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(2012)
J. Phys. Chem. C
, vol.116
, pp. 456-460
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Lee, W.W.1
Kim, S.B.2
Yi, J.3
Nichols, W.T.4
Park, W.I.5
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15
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84865274840
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Simple, Large-Scale Patterning of Hydrophobic ZnO Nanorod Arrays
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S. B. Kim, W. W. Lee, J. Yi, W. I. Park, J. S. Kim, and, W. T. Nichols, " Simple, Large-Scale Patterning of Hydrophobic ZnO Nanorod Arrays," ACS Appl. Mater. Interfaces, 4, 3910-5 (2012).
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(2012)
ACS Appl. Mater. Interfaces
, vol.4
, pp. 3910-3915
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Kim, S.B.1
Lee, W.W.2
Yi, J.3
Park, W.I.4
Kim, J.S.5
Nichols, W.T.6
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17
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38049125199
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Physical Mechanism of Blue-Shift of UV Luminescence of a Single Pencil-Like ZnO Nanowire
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Y. H. Yang, X. Y. Chen, Y. Feng, and, G. W. Yang, " Physical Mechanism of Blue-Shift of UV Luminescence of a Single Pencil-Like ZnO Nanowire," Nano Lett., 7 [ 12 ] 3879-83 (2007).
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Nano Lett.
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Yang, Y.H.1
Chen, X.Y.2
Feng, Y.3
Yang, G.W.4
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18
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10444263785
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Wettability Interpretation of Oxygen Plasma Modified Poly(Methyl Methacrylate)
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J. Chai, F. Lu, B. Li, and, D. Y. Kwok, " Wettability Interpretation of Oxygen Plasma Modified Poly(Methyl Methacrylate)," Langmuir, 20, 10919-27 (2004).
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Langmuir
, vol.20
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Chai, J.1
Lu, F.2
Li, B.3
Kwok, D.Y.4
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19
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82955192414
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Morphology-Controlled Three-Dimensional Nanoarchitectures Produced by Exploiting Vertical and In-Plane Crystallographic Orientations in Hydrothermal ZnO Crystals
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W. W. Lee, J. Yi, S. B. Kim, Y. H. Kim, H. G. Park, and, W. I. Park, " Morphology-Controlled Three-Dimensional Nanoarchitectures Produced by Exploiting Vertical and In-Plane Crystallographic Orientations in Hydrothermal ZnO Crystals," Cryst. Growth Des., 11, 4927-32 (2011).
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Cryst. Growth Des.
, vol.11
, pp. 4927-4932
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Lee, W.W.1
Yi, J.2
Kim, S.B.3
Kim, Y.H.4
Park, H.G.5
Park, W.I.6
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20
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84863834629
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Bioinspired Morphogenesis of Highly Intricate and Symmetric Silica Nanostructures
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J. Yi, H. S. Jang, J. S. Lee, and, W. I. Park, " Bioinspired Morphogenesis of Highly Intricate and Symmetric Silica Nanostructures," Nano Lett., 12, 3743-8 (2012).
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(2012)
Nano Lett.
, vol.12
, pp. 3743-3748
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Yi, J.1
Jang, H.S.2
Lee, J.S.3
Park, W.I.4
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21
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0038110784
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Schottky Nanocontacts on ZnO Nanorod Arrays
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W. I. Park, G. C. Yi, J. W. Kim, and, S. M. Park, " Schottky Nanocontacts on ZnO Nanorod Arrays," Appl. Phys. Lett., 82 [ 24 ] 4358-60 (2003).
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(2003)
Appl. Phys. Lett.
, vol.82
, Issue.24
, pp. 4358-4360
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Park, W.I.1
Yi, G.C.2
Kim, J.W.3
Park, S.M.4
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22
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58449091568
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Shape-Controlled Nanoarchitectures Using Nanowalls
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Y. J. Hong, H. S. Jung, J. Yoo, Y. J. Kim, C. H. Lee, M. Kim, and, G. C. Yi, " Shape-Controlled Nanoarchitectures Using Nanowalls," Adv. Mater., 21, 222-6 (2009).
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Adv. Mater.
, vol.21
, pp. 222-226
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Hong, Y.J.1
Jung, H.S.2
Yoo, J.3
Kim, Y.J.4
Lee, C.H.5
Kim, M.6
Yi, G.C.7
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23
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37149054270
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Strong Surface Effect on Cathodoluminescence of an Individual Tapered ZnO Nanorod
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N. Pan, X. Wang, M. Li, F. Li, and, J. G. Hou, " Strong Surface Effect on Cathodoluminescence of an Individual Tapered ZnO Nanorod," J. Phys. Chem. C, 111, 17265-7 (2007).
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J. Phys. Chem. C
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, pp. 17265-17267
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Pan, N.1
Wang, X.2
Li, M.3
Li, F.4
Hou, J.G.5
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24
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77953561385
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Synthesis of ZnO Nanotubes and Nanotube-Nanorod Hybrid Hexagonal Networks by Hexagonally Close-Packed Colloidal Monolayer Template
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Y. B. Pyun, J. Yi, D. H. Lee, K. Son, G. Liu, D. K. Yi, U. Paik, and, W. I. Park, " Synthesis of ZnO Nanotubes and Nanotube-Nanorod Hybrid Hexagonal Networks by Hexagonally Close-Packed Colloidal Monolayer Template," J. Mater. Chem., 20, 5136-40 (2010).
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J. Mater. Chem.
, vol.20
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Pyun, Y.B.1
Yi, J.2
Lee, D.H.3
Son, K.4
Liu, G.5
Yi, D.K.6
Paik, U.7
Park, W.I.8
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26
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0035821197
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Excitonic Transitions in ZnO/MgZnO Quantum Well Heterostructures
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G. Coli, and, K. K. Bajaj, " Excitonic Transitions in ZnO/MgZnO Quantum Well Heterostructures," Appl. Phys. Lett., 78 [ 19 ] 2861-3 (2001).
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Appl. Phys. Lett.
, vol.78
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Coli, G.1
Bajaj, K.K.2
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