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Published on: November 22, 2021
Au@void@AgAu Yolk-Shell Nanoparticles with Dominant Strain Effects: A Molecular Dynamics Simulation
Hamed Akbarzadeh1, Esmat Mehrjouei1, Amir Nasser Shamkhali2
1Department of Chemistry, Faculty of Basic Sciences, Hakim Sabzevari University , 96179-76487 Sabzevar, Iran.
Simulated gold-silver yolk-shell nanoparticles (Au@void@AgAu) are unstable and collapse into core-shell structures at room temperature. Nanoparticle stability is primarily determined by size, with morphology influencing thermodynamic stability through strain and surface energy effects.
Area of Science:
- Materials Science
- Nanotechnology
- Computational Chemistry
Background:
- Yolk-shell nanoparticles offer unique properties for various applications.
- Understanding the stability of bimetallic nanostructures is crucial for their practical use.
- Previous studies have explored nanoparticle stability, but the specific behavior of Au@void@AgAu structures requires further investigation.
Purpose of the Study:
- To investigate the structural stability of Au@void@AgAu yolk-shell nanoparticles with varying morphologies.
- To elucidate the factors governing the thermodynamic stability of these nanostructures.
- To compare simulation findings with experimental data for validation.
Main Methods:
- Classical molecular dynamics simulations were employed to model Au@void@AgAu nanoclusters.
- Simulations were conducted at room temperature to observe structural evolution.
- Thermodynamic stability was assessed by analyzing the competition between strain and surface energy effects.
Main Results:
- All simulated yolk-shell nanoclusters (approximately 3.8 nm) were found to be unstable at room temperature.
- Shell atoms collapsed into the void, forming more stable Au@AgAu core-shell structures.
- The thermodynamic stability of the resulting core-shell structures was morphology-dependent, with icosahedral structures showing the highest stability due to minimal strain.
- Strain energy effects were found to be dominant over surface energy effects in determining stability.
Conclusions:
- Au@void@AgAu yolk-shell nanoparticles of approximately 3.8 nm are unstable and spontaneously transform into core-shell structures.
- Nanoparticle size is the critical factor controlling stability, outweighing morphological influences.
- The icosahedral morphology exhibits superior thermodynamic stability in the resulting core-shell structures due to reduced strain energy.
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