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February 25, 2026Journal of Applied Physics0 citations

Continuum modeling of radiation-induced degradation in superconductors

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IMIhina MahajanSSShoham SenAFA. Freundlich

Key Points

  • This work aims to develop a theoretical model that predicts how radiation damage affects superconducting magnets in nuclear fusion applications.
  • Developed a homogenized continuum damage model based on Ginzburg–Landau theory.
  • Mapped defects resulting from radiation to a homogenization problem.
  • Derived closed-form expressions for critical current related to neutron fluence, magnetic field, and temperature.
  • Calibrated and validated the model using experimental data from rare-earth barium copper oxide tapes.
  • Established a relationship between radiation-induced defects and degradation of the superconducting order parameter.
  • Demonstrated the ability to model the complex evolution of superconducting properties, including the peak effect.
  • Provided design tools for creating more durable radiation-tolerant superconducting magnets.

Abstract

Realizing the promise of nuclear fusion requires confining plasma at millions of degrees, a feat achievable only through high-field superconducting magnets. However, the fusion reaction itself generates a relentless flux of high-energy neutrons that degrades these critical and prohibitively expensive coils, limiting the operational lifetime of the reactor and compromising its economic viability. While radiation damage is well-documented experimentally, a predictive theoretical framework that links microscale defects to macroscopic magnetic failure has remained elusive. Here, we bridge this gap with a homogenized continuum damage model based on Ginzburg–Landau theory. By treating radiation-induced defects as “quantized” normal-phase inclusions, we map the degradation of the superconducting order parameter to an equivalent homogenization problem. This approach yields closed-form analytical expressions for the critical current as a function of neutron fluence, magnetic field, and temperature. We calibrate and validate the model against experimental data in the literature on rare-earth barium copper oxide (REBCO) tapes, demonstrating that the complex evolution of superconducting properties, including the counterintuitive “peak effect”, can be captured by a few effective material parameters that need to be calibrated just once. This work provides a design tool for engineering radiation-tolerant magnets, a critical step toward sustainable fusion energy.

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Cite This Study

Mahajan et al. (2026) studied this question.

synapsesocial.com/papers/699e918df5123be5ed04f264https://doi.org/10.1063/5.0319382
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