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Original Articles

Shrinking kinetics by vacancy diffusion of hollow binary alloy nanospheres driven by the Gibbs–Thomson effect

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Pages 1525-1541 | Received 18 Mar 2008, Accepted 16 May 2008, Published online: 28 Jul 2008

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Györgyi Glodán, Csaba Cserháti & Dezső L. Beke. (2012) Temperature-dependent formation and shrinkage of hollow shells in hemispherical Ag/Pd nanoparticles. Philosophical Magazine 92:31, pages 3806-3812.
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A.M. Gusak, F. Hodaj & T.V. Zaporozhets. (2011) Thermodynamics of void nucleation in nanoparticles. Philosophical Magazine Letters 91:12, pages 741-750.
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Articles from other publishers (13)

Zeyu Deng, Tara P. Mishra, Weihang Xie, Daanyal Ahmed Saeed, Gopalakrishnan Sai Gautam & Pieremanuele Canepa. (2023) kMCpy: A python package to simulate transport properties in solids with kinetic Monte Carlo. Computational Materials Science 229, pages 112394.
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Amit Kumar, Soumen Dutta, Seonock Kim, Taewan Kwon, Santosh S. Patil, Nitee Kumari, Sampathkumar Jeevanandham & In Su Lee. (2022) Solid-State Reaction Synthesis of Nanoscale Materials: Strategies and Applications. Chemical Reviews 122:15, pages 12748-12863.
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Sharmin Sharna, Mounib Bahri, Corinne Bouillet, Virgile Rouchon, Arnold Lambert, Anne-Sophie Gay, David Chiche & Ovidiu Ersen. (2021) In situ STEM study on the morphological evolution of copper-based nanoparticles during high-temperature redox reactions . Nanoscale 13:21, pages 9747-9756.
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See Wee Chee, Zicong Marvin Wong, Zhaslan Baraissov, Shu Fen Tan, Teck Leong Tan & Utkur Mirsaidov. (2019) Interface-mediated Kirkendall effect and nanoscale void migration in bimetallic nanoparticles during interdiffusion. Nature Communications 10:1.
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Csaba Cserháti, Györgyi Glodán & Dezső L. Beke. (2014) Hollow Hemisphere Shell Formation by Pure Kirkendall Porosity. Diffusion Foundations 1, pages 61-73.
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Bryan D. Anderson & Joseph B. Tracy. (2014) Nanoparticle conversion chemistry: Kirkendall effect, galvanic exchange, and anion exchange. Nanoscale 6:21, pages 12195-12216.
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Kai-Yang Niu, Jungwon Park, Haimei Zheng & A. Paul Alivisatos. (2013) Revealing Bismuth Oxide Hollow Nanoparticle Formation by the Kirkendall Effect. Nano Letters 13:11, pages 5715-5719.
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John A. Medford, Aaron C. Johnston-Peck & Joseph B. Tracy. (2013) Nanostructural transformations during the reduction of hollow and porous nickel oxide nanoparticles. Nanoscale 5:1, pages 155-159.
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T. V. Zaporozhets’, A. M. Gusak & O. M. Podolyan. (2012) Evolution of Pores in Nanoshells — a Competition of Direct and Inverse Kirkendall Effects, Frenkel and Gibbs–Thomson Effects: the Phenomenological Description and Computer Simulation. Uspehi Fiziki Metallov 13:1, pages 1-70.
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Zoltán Erdélyi & Dezső L. Beke. (2011) Nanoscale volume diffusion. Journal of Materials Science 46:20, pages 6465-6483.
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Györgyi Glodán, Csaba Cserháti, Imre Beszeda & Dezső L. Beke. (2010) Production of hollow hemisphere shells by pure Kirkendall porosity formation in Au/Ag system. Applied Physics Letters 97:11.
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Tatyana V. Zaporozhets & Andriy M. Gusak. 2010. Diffusion-Controlled Solid State Reactions. Diffusion-Controlled Solid State Reactions 189 257 .
Hui-Chia Yu, Dong-Hee Yeon, Xiaofan Li & K. Thornton. (2009) Continuum simulations of the formation of Kirkendall-effect-induced hollow cylinders in a binary substitutional alloy. Acta Materialia 57:18, pages 5348-5360.
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