Simultaneous growth mechanisms for Cu-seeded InP nanowires
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Karla Hillerich | Knut Deppert | Jonas Johansson | K. Dick | M. Messing | K. Deppert | J. Johansson | K. Hillerich | Kimberly A. Dick | Maria E. Messing
[1] George T. Wang,et al. Highly aligned, template-free growth and characterization of vertical GaN nanowires on sapphire by metal–organic chemical vapour deposition , 2006 .
[2] S. Kodambaka,et al. Germanium Nanowire Growth Below the Eutectic Temperature , 2007, Science.
[3] H. Lipsanen,et al. Catalyst-free fabrication of InP and InP(N) nanowires by metalorganic vapor phase epitaxy , 2007 .
[4] J. Hanson,et al. Reduction of CuO in H2: In Situ Time-Resolved XRD Studies , 2003 .
[5] J. Tersoff,et al. Formation of metastable liquid catalyst during subeutectic growth of germanium nanowires. , 2010, Nano letters.
[6] Gerhard Abstreiter,et al. Ga-assisted catalyst-free growth mechanism of GaAs nanowires by molecular beam epitaxy , 2008 .
[7] V. Dubrovskii,et al. General form of the dependences of nanowire growth rate on the nanowire radius , 2007 .
[8] P. Werner,et al. Fabrication of High-Quality InSb Nanowire Arrays by Chemical Beam Epitaxy , 2011 .
[9] J. Connell,et al. Growth of Ge Nanowires from Au−Cu Alloy Nanoparticle Catalysts Synthesized from Aqueous Solution , 2010 .
[10] Lars Samuelson,et al. Growth Mechanism of Self-Catalyzed Group III−V Nanowires , 2010, Nano letters.
[11] Ajeet Rohatgi,et al. Impurity effects in silicon for high efficiency solar cells , 1986 .
[12] K. Dick,et al. The use of gold for fabrication of nanowire structures , 2009 .
[13] M. Ek,et al. Changes in contact angle of seed particle correlated with increased zincblende formation in doped InP nanowires. , 2010, Nano letters.
[14] P. Yu,et al. Vertically aligned, catalyst-free InP nanowires grown by metalorganic chemical vapor deposition , 2005 .
[15] A. F. Morral. Gold-Free GaAs Nanowire Synthesis and Optical Properties , 2011, IEEE Journal of Selected Topics in Quantum Electronics.
[16] GaAs whiskers grown by metal-organic vapor-phase epitaxy using Fe nanoparticles , 2007 .
[17] J. Hanson,et al. Reduction of CuO and Cu2O with H2: H embedding and kinetic effects in the formation of suboxides. , 2003, Journal of the American Chemical Society.
[18] Philippe Caroff,et al. Gold-free GaAs/GaAsSb heterostructure nanowires grown on silicon , 2010 .
[19] M. Lazzarino,et al. Manganese-induced growth of GaAs nanowires. , 2006, Nano letters.
[20] Chennupati Jagadish,et al. Growth temperature and V/III ratio effects on the morphology and crystal structure of InP nanowires , 2010 .
[21] A. Ermakov,et al. Phosphine adsorption and the production of phosphide phases on Cu(0 0 1) , 2002 .
[22] G. B. Stringfellow,et al. A mass spectrometric study of the simultaneous reaction mechanism of TMIn and PH3 to grow InP , 1988 .
[23] Epitaxial InP nanowire growth from Cu seed particles , 2011 .
[24] P. Werner,et al. Ag-assisted CBE growth of ordered InSb nanowire arrays , 2011, Nanotechnology.
[25] H. Heinecke,et al. Evaluation of cracking efficiency of As and P precursors , 1997 .
[26] C. Thompson,et al. Influence of indium and phosphine on Au-catalyzed InP nanowire growth on Si substrates , 2009 .
[27] S. Kodambaka,et al. Formation of Compositionally Abrupt Axial Heterojunctions in Silicon-Germanium Nanowires , 2009, Science.
[28] K. Thelander. A review of nanowire growth promoted by alloys and non-alloying elements with emphasis on Au-assisted III-V nanowires , 2008 .
[29] K. Dick,et al. A comparative study of the effect of gold seed particle preparation method on nanowire growth , 2010 .
[30] G. U. Kulkarni,et al. Coexistence of vapor-liquid-solid and vapor-solid-solid growth modes in Pd-assisted InAs nanowires. , 2010, Small.
[31] Kang L. Wang,et al. Kinetic control of self-catalyzed indium phosphide nanowires, nanocones, and nanopillars. , 2009, Nano letters.