Integrating Theoretical and Experimental Approaches To Unveil the Mechanical Properties of Cusbse<sub>2</Sub> Thin Films
Loading...
Date
2024
Journal Title
Journal ISSN
Volume Title
Publisher
Iop Publishing Ltd
Open Access Color
Green Open Access
Yes
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
An exhaustive investigation of the mechanical characteristics of CuSbSe2 thin films is conducted in this study by combining experimental nanoindentation methods with theoretical simulations. The Ab-initio Molecular Dynamics (AIMD) calculations are performed with the machine learning (ML) force fields. By employing the Vienna Ab-initio Simulation Package (VASP) based on Density Functional Theory (DFT), theoretical inquiries are carried out to identify crucial parameters, such as bonding characteristics, elastic constants, hardness, bulk modulus, shear modulus, Young's modulus, and Poisson's ratio. Experimental validation is conducted using nanoindentation to investigate load-dependent hardness and Young's modulus in a manner that closely matches the theorized predictions. The anomalies between experimental and theoretical outcomes are ascribed to anisotropic behavior and grain boundaries. Furthermore, an investigation is conducted into the directional dependence of sound wave velocities in the CuSbSe2 films, leading to the revelation of intricate elastic property details. By employing an integrated theoretical-experimental approach, the present attempt not only increases the knowledge concerning CuSbSe2 films but also fortifies the relationship between theory and experiment, thereby bolstering the dependability of our results. The insights provided as a result of this paper facilitate the development of CuSbSe2 film applications in a variety of technological fields in the future.
Description
Keywords
nanoindentation, density functional theory, ab-initio molecular dynamics (AIMD), machine-learning force fields (MLFF), mechanical properties, ab-initio molecular dynamics (AIMD), machine-learning force fields (MLFF), nanoindentation, mechanical properties, density functional theory
Fields of Science
02 engineering and technology, 0210 nano-technology, 01 natural sciences, 0104 chemical sciences
Citation
WoS Q
Q2
Scopus Q
Q3

OpenCitations Citation Count
N/A
Source
Physica Scripta
Volume
99
Issue
12
Start Page
125978
End Page
PlumX Metrics
Citations
Scopus : 0
Captures
Mendeley Readers : 2
Web of Science™ Citations
2
checked on Mar 18, 2026
Page Views
4
checked on Mar 18, 2026
Downloads
4
checked on Mar 18, 2026
Google Scholar™


