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Surface Effects in Irradiation Damage: A Review of Underlying Multi-Scale Mechanisms and Cross-System Behaviors

  • Jiapeng Yue
  • , Yaqian Huang
  • , Xiao Wang
  • , Yingmin Zhu
  • , Tarek Ragab
  • , Kyle Jiang
  • , Haiyan Zhang*
  • , Ji Zhang*
  • *Corresponding author for this work

Research output: Contribution to journalReview articlepeer-review

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Abstract

Structural materials in nuclear energy, aerospace, and electronics face long-term irradiation by high-energy particles, triggering microscopic defect evolution and macroscopic performance degradation that limits service safety. This review provides a systematic overview of irradiation damage mechanisms, with particular emphasis on the role of surfaces. The discussion traces the evolution from initial defect generation through energy deposition and displacement cascades to the migration and aggregation of defects toward surfaces, culminating in their interactions with near-surface microstructures. A comparative analysis of damage behaviors in metals, ceramics, silicon-based materials, and polymers is presented, elucidating how distinct mechanisms arise from fundamental differences in crystal structure and chemical bonding. The integration of multiscale simulation techniques with advanced in situ characterization is highlighted as a critical approach for deciphering the cross-scale processes. Current strategies for enhancing radiation resistance including composition optimization, microstructure regulation, and interface design are summarized. Finally, the review outlines key challenges such as multi-field coupling damage characterization and long-term predictive modeling. Future research directions are foreseen to emphasize closer simulation–experiment integration and the design of smart, self-adapting materials, thereby providing comprehensive theoretical and technical support for the development of next-generation radiation-tolerant materials.
Original languageEnglish
Article number40
Number of pages24
JournalSurfaces
Volume9
Issue number2
Early online date28 Apr 2026
DOIs
Publication statusPublished - Jun 2026

Keywords

  • surface effects
  • irradiation damage
  • radiation resistance strategies
  • macroscopic performance degradation
  • microscopic defect evolution

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