Related Experiment Video
Updated: Apr 7, 2026

Probing C84-embedded Si Substrate Using Scanning Probe Microscopy and Molecular Dynamics
Published on: September 28, 2016
Synergistic Experimental and Molecular Dynamics Study on the Si Ion Irradiation-Induced Mechanical Degradation in SiC
Xiaoyu Yang1, Jie Wang1, Mengxiong Liu2
1Department of Engineering Mechanics, Center for Nano and Micro Mechanics, Applied Mechanics Lab, and State Key Laboratory of Flexible Electronics Technology, Tsinghua University, Beijing 100084, China.
Abstract:
Investigating irradiation-induced mechanical degradation in silicon carbide (SiC) nanowires (NWs) remains challenging. Here, we combine in situ tensile testing within a scanning electron microscope (SEM) and molecular dynamics (MD) simulations to systematically investigate damage evolution in 3C-SiC NWs under Si+ irradiation. Experiments reveal a pronounced reduction in Young's modulus and fracture strength even at low doses (<0.2 dpa). MD simulations reveal distinct degradation mechanisms: strength is governed by surface-defect-induced stress concentration, whereas modulus decay results from the synergistic effects of surface amorphization and internal defect accumulation. A Tensile Core-Shell Model is established to quantify this evolution, revealing that interface-driven defect recombination thickens a mechanically ineffective shell while preserving the crystalline core. Notably, SiC NWs maintain brittle fracture across all doses and exhibit superior amorphization resistance. These findings link atomic-scale defects to macroscopic stiffness decay, providing a robust framework for predictive modeling and radiation-tolerant design of nanodevices.
More Related Videos
08:31Sample Preparation and Experimental Design for In Situ Multi-Beam Transmission Electron Microscopy Irradiation Experiments
Published on: June 27, 2022
09:26In Situ Time-dependent Dielectric Breakdown in the Transmission Electron Microscope: A Possibility to Understand the Failure Mechanism in Microelectronic Devices
Published on: June 26, 2015