Welcome to Francis Academic Press

Academic Journal of Materials & Chemistry, 2023, 4(4); doi: 10.25236/AJMC.2023.040409.

Structural diagrams and thermodynamics relating to temperature and compositions of Ag561−nCun (n = 0-561) nanoalloys during cooling from atomic simulations

Author(s)

Yuanjiang Zhang1, Mingyuan Che1, Lin Zhang1,2

Corresponding Author:
Yuanjiang Zhang
Affiliation(s)

1Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education), Northeastern University, Shenyang, 110819, China

2School of Materials Science and Engineering, Northeastern University, Shenyang, 110819, China

Abstract

The packing changes of Ag561-nCun (n = 0-561) nanoparticles during cooling were studied by molecular dynamics simulations at atomic scale. Structural diagrams as well as packing images presented liquid, disordered, and some ordered patterns. Pair distribution functions were used to characterize some typical structures. Potential energy and shape factors identified the transition’s temperature regime and the effect of cooling on the shape’s changes of the alloyed particles. The simulation results show composition effect on the transition temperatures and complex structural patterns. For these Cu-Ag nanoalloys, which contain small amount of Cu or Ag atoms, they show alternating FCC and icosahedral packing patterns at low temperatures, and core-shell configurations prefer to occur in the Cu-rich particles, where the Cu occupy the interior of the particles. Compositions and degree of orderliness in packing contribute to the entropy of the alloyed nanoparticles.

Keywords

nanoalloys; molecular dynamics; entropy; atomic simulations

Cite This Paper

Yuanjiang Zhang, Mingyuan Che, Lin Zhang. Structural diagrams and thermodynamics relating to temperature and compositions of Ag561−nCun (n = 0-561) nanoalloys during cooling from atomic simulations. Academic Journal of Materials & Chemistry (2023) Vol. 4, Issue 4: 50-58. https://doi.org/10.25236/AJMC.2023.040409.

References

[1] Novak J P, Brousseau L C, Vance F W, et al. Nonlinear Optical Properties of Molecularly Bridged Gold Nanoparticle Arrays [J]. Journal of the American Chemical Society, 2015, 122(48):12029-12030. 

[2] Cho U R, Kai W, Kim G W, et al. Effects of Ag Seed on Synthesis of FeCo Nano-Particles Prepared via the Polyol Method [J]. Journal of Materials Science and Technology -Shenyang-, 2010, 26(7):660-664. 

[3] Lu L Y, Yu L N, Xu X G, et al. Monodisperse magnetic metallic nanoparticles: synthesis, performance enhancement, and advanced applications[J]. ChemInform, 2013, 45(4):323-331. 

[4] Perla V, Ejiofor J U, Webster T J, et al. Directed osteoblast adhesion at particle boundaries: promises for nanophase metals[J]. Biological and Bioinspired Materials and Devices, 2004, 823:207-212. 

[5] Haik Y. Chatterjee J. Chen CJ, et al.  Synthesis and stabilization of Fe-Nd-B nanoparticles for biomedical applications Journal of Nanoparticle Research, 2005, 7(6), 675-679. 

[6] Sun J, Chen M, Cao G, et al. The effect of nano-hydroxyapatite on the microstructure and properties of Mg-3Zn-0. 5Zr alloy[J]. Journal of Composite Materials, 2014, 48(7). 

[7] Luo J, Yin J, Loukrakpam R, et al. Design and electrochemical characterization of ternary alloy electrocatalysts for oxygen reduction reaction[J]. Journal of Electroanalytical Chemistry, 2013, 688: 196-206. 

[8] Mueller C M, Murthy R R, Bourgeois M R, et al. Thermodynamic Determination of Bimetallic Particle Geometry: Suitability of Poorly Miscible Alloys for Surface Enhanced Raman[J]. The Journal of Physical Chemistry C, 2020, 124(5),pp.3287-3296. 

[9] M Jahnatek, O Levy, GLW Hart, et al. Ordered phases in ruthenium binary alloys from high-throughput first-principles calculations [J]. Physical review, 2011, 84(21):p. 214110. 1-214110. 8. 

[10] Chiba M, Thanh M N, Hasegawa Y, et al. Synthesis of binary solid solution Cu-Pd nanoparticles by DMF reduction for enhanced photoluminescence properties [J]. Journal of Materials Chemistry C, 2014, 3(3):514-520. 

[11] Jiang S, Ma Y, Tao H, et al. Highly Dispersed Pt-Ni Nanoparticles on Nitrogen-Doped Carbon Nanotubes for Application in Direct Methanol Fuel Cells[J]. Journal of Nanoscience and Nanotechnology, 2010. 

[12] Noh SH Han B and Ohsaka T. First-principles computational study of highly stable and active ternary PtCuNi nanocatalyst for oxygen reduction reaction[J]. Nano Research, 2015. 8(10), 3394-3403. 

[13] Sun J. Ma HF. Gao F. General synthesis of binary PtM and ternary PtM1M2 alloy nanoparticles on graphene as advanced electrocatalysts for methanol oxidation [J]. Journal of Materials Chemistry A, 2021, 3(31), 15882-15888. 

[14] Bhanage B M, Bhosale M A. Silver Nanoparticles: Synthesis, Characterization and their Application as a Sustainable Catalyst for Organic Transformations[J]. Current Organic Chemistry, 2015, 19(8) 

[15] Hiroaki, Tatsumi, Yusuke, et al. Sintering Mechanism of Composite Ag Nanoparticles and its Application to Bonding Process Effects of Ag2CO3 Contents on Bondability[J]. Preprints of the National Meeting of JWS, 2007 f:356-356. 

[16] Yaxiong C, Xihaizhu D. Enhanced Photocatalytic Efficiency of TiO2 by Combining the Modification of Ag Nanoparticles with the Application of Anodic Bias[J]. China Chemical Express:English, 2003, 14(5):539-542

[17] Dai Min. Preparation and catalytic properties of bimetallic nanomaterials[D]. Nanjing University, 2014. 

[18]Gawande, Manoj B., Goswami, Anandarup, Felpin, Francois-Xavier, Asefa, Tewodros, Huang, Xiaoxi, Silva, Rafael. & Varma, Rajender S..Cu and Cu-Based Nanoparticles: Synthesis and Applications in Review Catalysis. Chemical Reviews, 2016(6).

[19] Lu P, Chandross M, Boyle T J, et al. Equilibrium Cu-Ag nanoalloy structure formation revealed by in situ scanning transmission electron microscopy heating experiments[J]. APL Materials, 2014, 2(2):1-980. 

[20] W. Z. Li, L. Kuai, Q. Qin and B. Y Geng, Ag-Au bimetallic nanostructures:Co-reduction synthesis and their component-dependent performance forenzyme- free H20z sensing, [J]. Mater. Chem. A, 2013, 1, 7111. 

[21] Zhang N, Chen F Y, Wu X Q. Global optimization and oxygen dissociation on polyicosahedral Ag32Cu6 core-shell cluster for alkaline fuel cells[J]. Rep, 2015, 5(1):11984. 

[22] Liu Jinhan. Atomic simulation of melting and condensation of Ag nanoclusters [D]. Northeastern University, 2019. DOI: 10. 27007/d. cnki. gdbeu. 2019. 001051. 

[23] Williams P L, Mishin Y, Hamilton J C. An embedded-atom potential for the Cu–Ag system[J]. Modelling & Simulation in Materials Science & Engineering, 2006, 14(5):817.