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April 21, 2026International Communications in Heat and Mass Transfer1 citationsOpen Access

Optimized ion spectra for ultra-uniform and high-efficiency heat transfer into dense matter

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SLSeongmin LeeSJSuji JoCSChiwan Song

Key Points

  • To determine the optimal ion energy spectrum for achieving uniform and efficient heat transfer in dense materials.
  • Developed a computational framework to optimize ion energy spectra.
  • Utilized Monte Carlo simulations to evaluate stopping-power profiles of monoenergetic ion beams.
  • Applied non-negative least-squares method for spectrum reconstruction.
  • Achieved over 99% heat transfer efficiency with a super-exponential energy distribution peaking near 1 GeV.
  • Simpler spectrum with a dominant 1 GeV peak maintained approximately 95% efficiency.
  • Demonstrated exceptional spatial uniformity in heat transfer.

Abstract

Achieving ultra-uniform and high-efficiency heat transfer into dense matter using energetic ion beams has remained a long-standing challenge due to the strong energy dependence of ion stopping power. Here, we introduce a generalizable computational framework for determining the optimal ion energy spectrum required to achieve highly uniform and efficient heat transfer into solid-density samples. Using Monte Carlo simulations, we evaluate stopping-power profiles for monoenergetic ion beams and apply a non-negative least-squares method to inversely reconstruct the optimal spectrum. As a case study, we apply this framework to carbon ions transferring heat into a 1-cm-thick solid-density aluminum sample. Our results reveal that a super-exponential energy distribution peaking near 1 GeV achieves over 99% heat transfer efficiency with exceptional spatial uniformity, while even a simpler spectrum with a dominant 1 GeV peak maintains ≈95% efficiency. This framework provides a practical tool for engineering ion-beam-driven heat transfer processes in advanced material processing, nuclear technologies, and other applications requiring precise thermal control.

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Cite This Study

Lee et al. (2026) studied this question.

synapsesocial.com/papers/69e7138bcb99343efc98cfe5https://doi.org/10.1016/j.icheatmasstransfer.2026.111266
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