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Article

Atomic Bond Strain: A New Strain Measure Displaying Nearly Perfect Linear Correlation with Stress Throughout Plastic Deformation of Single-Crystal FCC Metals

by
Donghua Xu
1,2,*,
Tittaya Thaiyanurak
1,2 and
Noushin Salsabil
1,2
1
Materials Science Program, Oregon State University, Corvallis, OR 97331, USA
2
School of Mechanical, Industrial and Manufacturing Engineering, Oregon State University, Corvallis, OR 97331, USA
*
Author to whom correspondence should be addressed.
Submission received: 16 November 2025 / Revised: 13 December 2025 / Accepted: 6 January 2026 / Published: 6 January 2026

Abstract

Atomic-scale strain is the basis of a material’s macroscopic deformation behavior. The current measure of atomic-scale strain in the form of the Green–Lagrange tensor loses its physical meaning beyond the yield point, as atomic neighborhoods undergo significant reconstructions. We have recently introduced a new atomic-scale strain measure, namely, atomic bond strain, through our study of bond behavior in multicomponent metallic glasses. Here, we apply this new strain measure to uniaxial tensile tests (simulated using molecular dynamics) of several representative single-crystal FCC (face-centered cubic) metals under varied strain rates. We show that this new strain measure displays remarkable near-linear correlation with stress, not only in the elastic regime, but also in the plastic regime where complex dislocation dynamics (nucleation, bursting, motion, annihilation, regeneration) and stress fluctuations take place. This suggests that the overall stress of the materials even in the plastic regime is predominantly determined by the degree of bond stretching among all atoms. This appears to contradict the common conceptions that the plastic flow stress of a crystalline material is governed by dislocation events involving only a small fraction of atoms around dislocations, and that the stress–strain relationship is highly non-linear for plastic deformation. The contradictions can be reconciled by considering the causal sequence: dislocation events alter bond stretching, and bond stretching directly determines the stress. This brings a novel insight into the nature of plastic deformation, owing to the newly introduced atomic bond strain. How well the near-linear correlation between the stress and the atomic bond strain holds in other materials (e.g., non-FCC single crystals, polycrystals, quasicrystals, elements, alloys, and compounds) is an intriguing and important topic for future investigation, following the example of this work.
Keywords: metals; FCC crystal; plastic deformation; atomic strain; atomic bonds; stress metals; FCC crystal; plastic deformation; atomic strain; atomic bonds; stress

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MDPI and ACS Style

Xu, D.; Thaiyanurak, T.; Salsabil, N. Atomic Bond Strain: A New Strain Measure Displaying Nearly Perfect Linear Correlation with Stress Throughout Plastic Deformation of Single-Crystal FCC Metals. Solids 2026, 7, 5. https://doi.org/10.3390/solids7010005

AMA Style

Xu D, Thaiyanurak T, Salsabil N. Atomic Bond Strain: A New Strain Measure Displaying Nearly Perfect Linear Correlation with Stress Throughout Plastic Deformation of Single-Crystal FCC Metals. Solids. 2026; 7(1):5. https://doi.org/10.3390/solids7010005

Chicago/Turabian Style

Xu, Donghua, Tittaya Thaiyanurak, and Noushin Salsabil. 2026. "Atomic Bond Strain: A New Strain Measure Displaying Nearly Perfect Linear Correlation with Stress Throughout Plastic Deformation of Single-Crystal FCC Metals" Solids 7, no. 1: 5. https://doi.org/10.3390/solids7010005

APA Style

Xu, D., Thaiyanurak, T., & Salsabil, N. (2026). Atomic Bond Strain: A New Strain Measure Displaying Nearly Perfect Linear Correlation with Stress Throughout Plastic Deformation of Single-Crystal FCC Metals. Solids, 7(1), 5. https://doi.org/10.3390/solids7010005

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