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Growth and microstructural characterization of catalyst-free ZnO nanostructures grown on sapphire and GaN by thermal evaporation

Published online by Cambridge University Press:  03 March 2011

Bo Hyun Kong
Affiliation:
School of Advanced Materials Science and Engineering, Sungkyunkwan University, Jangan-gu, Suwon, Gyeonggi-do 440-746, Korea
Hyung Koun Cho*
Affiliation:
School of Advanced Materials Science and Engineering, Sungkyunkwan University, Jangan-gu, Suwon, Gyeonggi-do 440-746, Korea
*
a) Address all correspondence to this author. e-mail: chohk@skku.edu
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Abstract

ZnO nanostructures were grown directly on sapphire substrates and GaN epilayers by thermal evaporation. Their morphologies and densities were found to be strongly dependent on the synthesis position and the kinds of substrate loaded into the reactor due to the different oxygen densities and the lattice mismatch, respectively. Scanning electron microscopy and transmission electron microscopy studies revealed that ZnO nanorods on sapphire substrates grew in four directions, one 〈0001〉Sapphire and three (1014)Sapphire directions. It was found that the in-plane lattice mismatch of inclined ZnO nanorods was remarkably reduced by forming the planar relationship of (0002)ZnO//(1014)Sapphire, compared to that of (1120)ZnO//(1010)Sapphire in the ZnO film. On the other hand, for the GaN epilayers, vertically well-aligned ZnO nanorods were grown after growing an epitaxial ZnO film due to reduced lattice mismatch. Electron energy-loss spectroscopy data showed that Zn-rich stoichiometry was responsible for the formation of ZnO nanostructures.

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Articles
Copyright
Copyright © Materials Research Society 2007

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References

REFERENCES

1Huang, M.H., Mao, S., Feick, H., Yan, H.Q., Wu, Y.Y., Kind, H., Weber, E., Russo, R., and Yang, P.D.: Room-temperature ultraviolet nanowire nanolasers. Science 292, 1897 (2001).CrossRefGoogle ScholarPubMed
2Wang, R-C., Liu, C-P., Huang, J-L., and Chen, S-J.: Growth and field-emission properties of single-crystalline conic ZnO nanotubes. Nanotechnology 17, 753 (2006).CrossRefGoogle Scholar
3Park, J.Y., Lee, D.J., and Kim, S.S.: Size control of ZnO nanorod arrays grown by metalorganic chemical vapour deposition. Nanotechnology 16, 2044 (2005).CrossRefGoogle ScholarPubMed
4Lee, C.Y., Li, S.Y., Lin, P., and Tseng, T.Y.: ZnO nanowires hydrothermally grown on PET polymer substrates and their characteristics. J. Nanosci. Nanotechnol. 5, 1088 (2005).CrossRefGoogle ScholarPubMed
5Xu, C.X., Sun, X.W., and Chen, B.J.: Field emission from gallium-doped zinc oxide nanofiber array. Appl. Phys. Lett. 84, 1540 (2004).CrossRefGoogle Scholar
6Kim, S.W., Fujita, S., and Fujita, S.: ZnO nanowires with high aspect ratios grown by metalorganic chemical vapor deposition using gold nanoparticles. Appl. Phys. Lett. 86, 153119 (2005).CrossRefGoogle Scholar
7Wagner, R.S. and Ellis, W.C.: Vapor-liquid-solid mechanism of single crystal growth. Appl. Phys. Lett. 4, 89 (1964).CrossRefGoogle Scholar
8Wan, Q., Yu, K., Wang, T.H., and Lin, C.L.: Low-field electron emission from tetrapod-like ZnO nanostructures synthesized by rapid evaporation. Appl. Phys. Lett. 83, 2253 (2003).CrossRefGoogle Scholar
9Chen, X., An, C., Liu, J., Wang, X., and Qian, Y.: Fabrication and characterization of hexagonal wire-like ZnO. J. Cryst. Growth 253, 357 (2003).CrossRefGoogle Scholar
10Ye, C., Fang, X., Hao, Y., Teng, X., and Zhang, L.: Field-effect transistors based on single semiconducting oxide nanobelts. J. Phys. Chem. B 107, 659 (2003).Google Scholar
11Kong, B.H. and Cho, H.K.: Formation of vertically aligned ZnO nanorods on ZnO templates with the preferred orientation through thermal evaporation. J. Cryst. Growth 289, 370 (2006).CrossRefGoogle Scholar
12Potin, V., Ruterana, P., and Nouet, G.: ZnO as a novel photonic material for the UV region. Mater. Sci. Eng., B 75, 190 (2000).Google Scholar
13Gong, J.R., Yeh, M.F., and Wang, C.L.: Growth and characterization of GaN and AlN films on (111) and (001) Si substrates. J. Cryst. Growth 247, 261 (2003).CrossRefGoogle Scholar
14Lee, D.J., Park, J.Y., Yun, Y.S., Hong, Y.S., Moon, J.H., Lee, B-T., and Kim, S.S.: Comparative studies on the growth behavior of ZnO nanorods by metalorganic chemical vapor deposition depending on the type of substrates. J. Cryst. Growth 276, 458 (2005).CrossRefGoogle Scholar
15Yun, Y.S., Park, J.Y., Oh, H., Kim, J.J., and Kim, S.S.: Electrical transport properties of size-tuned ZnO nanorods. J. Mater. Res. 21, 132 (2006).CrossRefGoogle Scholar
16Shen, G., Bando, Y., Chen, D., Liu, B., Zhi, C., and Golberg, D.: Zinc oxide nanostructures: Morphology derivation and evolution. J. Phys. Chem. B 110, 3973 (2006).CrossRefGoogle Scholar
17Jeong, J.S., Lee, J.Y., Cho, J.H., Lee, C.J., An, S-J., Yi, G-C., and Gronsky, R.: Growth behaviour of well-aligned ZnO nanowires on a Si substrate at low temperature and their optical properties. Nanotechnology 16, 2455 (2005).CrossRefGoogle ScholarPubMed
18Zhang, Y., Jia, H., Wang, R., Chen, C., Luo, X., Yu, D., and Lee, C.J.: Low-temperature growth and Raman scattering study of vertically aligned ZnO nanowires on Si substrate. Appl. Phys. Lett. 83, 4631 (2003).CrossRefGoogle Scholar
19Jung, Y-S., Kononenko, O., Kim, J-S., and Choi, W-K.: Two-dimensional growth of ZnO epitaxial films on c-Al2O3 (0001) substrates with optimized growth temperature and low-temperature buffer layer by plasma-assisted molecular-beam epitaxy. J. Cryst. Growth 274, 418 (2005).CrossRefGoogle Scholar
20Ye, J., Gu, S., Zhu, S., Chen, T., Hu, L., Qin, F., Zhang, R., Shi, Y., and Zheng, Y.: The growth and annealing of single crystalline ZnO films by low-pressure MOCVD. J. Cryst. Growth 243, 151 (2002).CrossRefGoogle Scholar
21Kong, B. H., Kim, Y. Y., and Cho, H. K.: Effects of ZnO template thickness on the synthesis of 1-D ZnO nanostructures. J. Korean Phys. Soc. 49, S741 (2006).Google Scholar
22 JCPDS Inorganic No. 5-0664 and No. 46-1212, International Center for Diffraction Data: Newton Square, PA, 2003.Google Scholar
23Singh, J., Srivastava, A., Tiwari, R.S., and Srivastava, O.N.: Nucleation and growth of catalyst-free zinc oxide nanostructures. J. Nanosci. Nanotechnol. 5, 2093 (2005).CrossRefGoogle ScholarPubMed