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Exploring the relative influence of atomic parameters on solid solution strengthening

Author

Listed:
  • P. H. F. Oliveira

    (Federal University of São Carlos)

  • C. L. G. P. Martins

    (Federal University of São Carlos)

  • G. C. Stumpf

    (Federal University of São Carlos)

  • J. Spadotto

    (The University of Manchester)

  • E. J. Pickering

    (The University of Manchester
    Henry Royce Institute)

  • W. J. Botta

    (Federal University of São Carlos)

  • C. Bolfarini

    (Federal University of São Carlos)

  • F. G. Coury

    (Federal University of São Carlos)

Abstract

Developing predictive models for solid solution strengthening is a key tool in alloy design, enabling the optimization of mechanical properties. This study aims to identify the primary factor governing solid solution strengthening, providing foundations for more accurate predictive models. In this work single-phase solid solution alloys are developed with differences in atomic volume and electronegativity among constituent elements. Unlike previous studies focusing on only one factor, this work employs alloys specifically designed to assess both variables simultaneously, operating at the boundary conditions of different strengthening models. Vanadium is selected for its large electronegativity difference relative to nickel, while palladium is chosen for its significant atomic volume difference. We demonstrate that atomic volume differences play a dominant role in solid solution strengthening. Moreover, each solid solution exhibits a critical grain size below which grain refinement influences mechanical properties more than solid solution strengthening. Finally, a Ni₅₀Pd₅₀ alloy is produced showing a stability of mechanical properties with increasing grain size.

Suggested Citation

  • P. H. F. Oliveira & C. L. G. P. Martins & G. C. Stumpf & J. Spadotto & E. J. Pickering & W. J. Botta & C. Bolfarini & F. G. Coury, 2025. "Exploring the relative influence of atomic parameters on solid solution strengthening," Nature Communications, Nature, vol. 16(1), pages 1-12, December.
  • Handle: RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-025-63900-6
    DOI: 10.1038/s41467-025-63900-6
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    1. Q. F. He & J. G. Wang & H. A. Chen & Z. Y. Ding & Z. Q. Zhou & L. H. Xiong & J. H. Luan & J. M. Pelletier & J. C. Qiao & Q. Wang & L. L. Fan & Y. Ren & Q. S. Zeng & C. T. Liu & C. W. Pao & D. J. Srolo, 2022. "A highly distorted ultraelastic chemically complex Elinvar alloy," Nature, Nature, vol. 602(7896), pages 251-257, February.
    2. Heng Li & Hongxiang Zong & Suzhi Li & Shenbao Jin & Yan Chen & Matthew J. Cabral & Bing Chen & Qianwei Huang & Yan Chen & Yang Ren & Kaiyuan Yu & Shuang Han & Xiangdong Ding & Gang Sha & Jianshe Lian , 2022. "Uniting tensile ductility with ultrahigh strength via composition undulation," Nature, Nature, vol. 604(7905), pages 273-279, April.
    3. Yi Li & Xiangyang Liu & Peng Zhang & Yi Han & Muzhang Huang & Chunlei Wan, 2022. "Theoretical insights into the Peierls plasticity in SrTiO3 ceramics via dislocation remodelling," Nature Communications, Nature, vol. 13(1), pages 1-10, December.
    4. Daniel Utt & Subin Lee & Yaolong Xing & Hyejin Jeong & Alexander Stukowski & Sang Ho Oh & Gerhard Dehm & Karsten Albe, 2022. "The origin of jerky dislocation motion in high-entropy alloys," Nature Communications, Nature, vol. 13(1), pages 1-11, December.
    5. Xingjia He & Yu Zhang & Xinlei Gu & Jiangwei Wang & Jinlei Qi & Jun Hao & Longpeng Wang & Hao Huang & Mao Wen & Kan Zhang & Weitao Zheng, 2023. "Pt-induced atomic-level tailoring towards paracrystalline high-entropy alloy," Nature Communications, Nature, vol. 14(1), pages 1-13, December.
    6. Q. F. He & J. G. Wang & H. A. Chen & Z. Y. Ding & Z. Q. Zhou & L. H. Xiong & J. H. Luan & J. M. Pelletier & J. C. Qiao & Q. Wang & L. L. Fan & Y. Ren & Q. S. Zeng & C. T. Liu & C. W. Pao & D. J. Srolo, 2022. "Author Correction: A highly distorted ultraelastic chemically complex Elinvar alloy," Nature, Nature, vol. 603(7903), pages 32-32, March.
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