Amorphization-Mediated Si-I to Si-V Phase Transition and Reversible Amorphous Si-V Phase Memory in Silicon Nanoparticles

Abstract An experiment has shown that ∼10 nm Si nanoparticles undergo a Si–I (diamond cubic) to Si–V (simple hexagonal) phase transition under compression, in contrast to the Si–I to Si–II (tetragonal) transition observed in bulk silicon. However, the atomistic mechanism underlying this size-dependent transition pathway remains unclear. Here, we employ molecular dynamics simulations with a machine learning interatomic potential to reveal a stress triaxiality-driven, two-step Si–I to Si–V transition pathway in a spherical Si nanoparticle subjected to an idealized triaxial contact loading model. An intermediate amorphous phase nucleates at the nanoparticle surface and propagates inward around the Si–I core in regions of low stress triaxiality dominated by shear. Within this amorphous shell, Si–V recrystallizes at locations with increased stress triaxiality and hydrostatic pressure. Upon unloading, the Si–V structure transforms into an amorphous state. A subsequent loading–unloading cycle applied to this amorphous nanoparticle reveals a reversible amorphous-to-Si–V transformation, demonstrating a nanoscale phase memory effect.

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Publication Details

Journal
Nano Letters
Published
2026-09-15
DOI
https://doi.org/10.1021/acs.nanolett.6c02592
Primary Topic
Silicon Nanostructures and Photoluminescence
Type
article
Field-Weighted Citation Impact
0.00

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Amorphization-Mediated Si-I to Si-V Phase Transition and Reversible Amorphous Si-V Phase Memory in Silicon Nanoparticles

Reza Namakian, Wei Gao
Nano Letters
Silicon Nanostructures and Photoluminescence
article

Amorphization-Mediated Si-I to Si-V Phase Transition and Reversible Amorphous Si-V Phase Memory in Silicon Nanoparticles

Reza Namakian, Wei Gao
article en

Abstract

Abstract An experiment has shown that ∼10 nm Si nanoparticles undergo a Si–I (diamond cubic) to Si–V (simple hexagonal) phase transition under compression, in contrast to the Si–I to Si–II (tetragonal) transition observed in bulk silicon. However, the atomistic mechanism underlying this size-dependent transition pathway remains unclear. Here, we employ molecular dynamics simulations with a machine learning interatomic potential to reveal a stress triaxiality-driven, two-step Si–I to Si–V transition pathway in a spherical Si nanoparticle subjected to an idealized triaxial contact loading model. An intermediate amorphous phase nucleates at the nanoparticle surface and propagates inward around the Si–I core in regions of low stress triaxiality dominated by shear. Within this amorphous shell, Si–V recrystallizes at locations with increased stress triaxiality and hydrostatic pressure. Upon unloading, the Si–V structure transforms into an amorphous state. A subsequent loading–unloading cycle applied to this amorphous nanoparticle reveals a reversible amorphous-to-Si–V transformation, demonstrating a nanoscale phase memory effect.

Nano Letters
Texas A&M University (US)
National Science Foundation, University of Texas at Austin, University of Warwick, High Performance Research Computing, Texas A and M University, Division of Civil, Mechanical and Manufacturing Innovation
Openalex Percentile: Top 100%
Silicon Nanostructures and Photoluminescence
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Amorphization-Mediated Si-I to Si-V Phase Transition and Reversible Amorphous Si-V Phase Memory in Silicon Nanoparticles — Reza Namakian, Wei Gao · Nano Letters (2026) | TGRS Research Map | TGRS