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Synthesis of Novel SnO_2 Quantum Cubes and Their Selfassembly

Synthesis of Novel SnO_2 Quantum Cubes and Their Selfassembly
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摘要 Nano-structured cubic SnO2 crystalines were successfully synthesized through solvothermal route.The obtained products were characterized by X-ray diffraction (XRD),transmission electron microscopy (TEM) and high resolution TEM (HRTEM).The study showed that,the SnO2 particles were rutile structured and almost uniformly cube shaped crystals in quantum size (3-8 nm).Self-assembly behavior of the cubic SnO2 quantum dots was also observed.The synthesis process can be defined as an nonhydrolysis (NH) hydroxylation reaction provided by the amide elimination of carboxylated precursors.The formation of cubic morphology of SnO2 can be ascribed to the mild reaction featured by high nucleation rate and low growth rate,surface energy difference of the crystallographic facets of SnO2 and the passivation effect of the starting material-dodecylamine which drastically reduced the dipole interation.The selfassembly of the cubic SnO2 quantum dots was driven by van der Waals force and capillary force. Nano-structured cubic SnO2 crystalines were successfully synthesized through solvothermal route.The obtained products were characterized by X-ray diffraction (XRD),transmission electron microscopy (TEM) and high resolution TEM (HRTEM).The study showed that,the SnO2 particles were rutile structured and almost uniformly cube shaped crystals in quantum size (3-8 nm).Self-assembly behavior of the cubic SnO2 quantum dots was also observed.The synthesis process can be defined as an nonhydrolysis (NH) hydroxylation reaction provided by the amide elimination of carboxylated precursors.The formation of cubic morphology of SnO2 can be ascribed to the mild reaction featured by high nucleation rate and low growth rate,surface energy difference of the crystallographic facets of SnO2 and the passivation effect of the starting material-dodecylamine which drastically reduced the dipole interation.The selfassembly of the cubic SnO2 quantum dots was driven by van der Waals force and capillary force.
出处 《Journal of Wuhan University of Technology(Materials Science)》 SCIE EI CAS 2011年第2期270-273,共4页 武汉理工大学学报(材料科学英文版)
基金 Funded by the PCSIRT,the National Natural Science Foundation of China (Nos.50532030 and 50625206) the Zhejiang Provincial Natural Science Foundation of China(No.Z4080021)
关键词 nanocube quantum dot crystal growth tin oxide nanocube quantum dot crystal growth tin oxide
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  • 1Batzill M, Diebold U. The Surface and Materials Science of Tin Oxide[J]. Prog. Surf. Sci., 2005, 79 (2-4): 47-154.
  • 2Kuang Q, Lao C, Wang Z L, Xie Z X, Zheng L S. High-Sensitivity Humidity Sensor Based on a Single SnO2 Nanowire[J]. J. Am. Chem. Soc., 2007, 129 (19): 6070-6071.
  • 3Hoa N D, Quy N V, Song H, Kang Y, Cho Y, Kim D. Tin Oxide Nanotube Structures Synthesized on a Template of Single-Walled Carbon Nanotubes[J]. J. Crys. Grow., 2009, 311 (3) 657-661.
  • 4Deng Z T, Peng B, Chen D, Tang F Q, Muscat A J. A New Route to Self-Assembled Tin Dioxide Nanospheres: Fabrication and Chacterization[J]. Langmuir, 2008, 24(19): 11089-11095.
  • 5Zhao Q R, Zhang Z G, Dong T, Xie Y. Facile Synthesis and Catalytic Property of Porous Tin Dioxide Nanostructures[J]. J. Phys. Chem. B, 2006, 110 (31): 15152-15156.
  • 6Lou X W, Yuan C L, Archer LA. Double-Walled SnO2 Nano-Cocoons with Movable Magnetic Cores[J]. Adv. Ma- ter., 2007, 19 (20): 3 328-3 332.
  • 7Slater B, Catlow C R A, Gay D H, Williams D E, Dusastre V J. Study of Surface Segregation of Antimony on SnO2 Surpfaces by Computer Simulation Techniques[J]. Phys. Chem. B, 1999, 103 (48): 10644.
  • 8Oviedo J, Gillan M J. Energetics and Structure of Stoichiometric SnO2 Surfaces Studied by First-Principles Calculations[J]. Surf. Sci., 2000, 463 (2): 93-101.
  • 9Leite E R, Giraldi T R, Pontes F M, Longo E, Beltran A, Andres J. Crystal Growth in Colloidal Tin Oxide Nanocrys- tals Induced by Coalescence at Room Temperature[J]. Appl. Phys. Lett., 2003, 83 (8): 1566-1568.
  • 10Cheng B, Russell J M, Shi W S, Zhang L, Samulski E T. Large-Scale, Solution-Phase Growth of Single-Crystalline SnO2 Nanorods[J]. J. Am. Chem. Soc., 2004, 126 (19): 5 972-5 976.

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