How Fusion-Born Alpha Particles Suppress Microturbulence in Burning Plasmas

Fuente: arXiv
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Main Authors: Di Siena, Alessandro, Navarro, Alejandro Banon, Rodriguez-Fernandez, Pablo, Howard, Nathan T., Wang, Xin, Wright, John, Muraca, Marco, Polevoi, Alexei, Gorler, Tobias, Poli, Emanuele, Bilato, Roberto, Kim, Sun Hee, Koechl, Florian, Greenwald, Martin, Loarte, Alberto, Jenko, Frank
Format: Preprint
Published: 2026
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author Di Siena, Alessandro
Navarro, Alejandro Banon
Rodriguez-Fernandez, Pablo
Howard, Nathan T.
Wang, Xin
Wright, John
Muraca, Marco
Polevoi, Alexei
Gorler, Tobias
Poli, Emanuele
Bilato, Roberto
Kim, Sun Hee
Koechl, Florian
Greenwald, Martin
Loarte, Alberto
Jenko, Frank
author_facet Di Siena, Alessandro
Navarro, Alejandro Banon
Rodriguez-Fernandez, Pablo
Howard, Nathan T.
Wang, Xin
Wright, John
Muraca, Marco
Polevoi, Alexei
Gorler, Tobias
Poli, Emanuele
Bilato, Roberto
Kim, Sun Hee
Koechl, Florian
Greenwald, Martin
Loarte, Alberto
Jenko, Frank
contents A central unresolved question in fusion energy research is whether energetic alpha particles, the primary products of deuterium-tritium fusion reactions, enhance or degrade plasma confinement. In burning plasmas, the operating regime of future devices such as ITER and SPARC, alpha particles become the dominant heating source, yet their impact on confinement has remained uncertain. Here, we present self-consistent simulations of burning plasmas that simultaneously evolve microturbulence, alpha-particle heating, and macroscopic plasma profiles to steady state, and find that alpha particles can substantially improve confinement. Fusion-born alpha particles weakly destabilize toroidal Alfven eigenmodes (TAEs), which nonlinearly enhance zonal flows that shear apart and suppress ion-scale turbulence. The resulting reduction in turbulent heat transport drives stronger core profile peaking, increasing alpha heating by up to 25% and establishing a self-reinforcing feedback loop. This mechanism has no direct analogue in present-day experiments, where external heating dominates, and reveals an intrinsic pathway toward improved confinement in burning plasmas.
format Preprint
id arxiv_https___arxiv_org_abs_2605_10694
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle How Fusion-Born Alpha Particles Suppress Microturbulence in Burning Plasmas
Di Siena, Alessandro
Navarro, Alejandro Banon
Rodriguez-Fernandez, Pablo
Howard, Nathan T.
Wang, Xin
Wright, John
Muraca, Marco
Polevoi, Alexei
Gorler, Tobias
Poli, Emanuele
Bilato, Roberto
Kim, Sun Hee
Koechl, Florian
Greenwald, Martin
Loarte, Alberto
Jenko, Frank
Plasma Physics
A central unresolved question in fusion energy research is whether energetic alpha particles, the primary products of deuterium-tritium fusion reactions, enhance or degrade plasma confinement. In burning plasmas, the operating regime of future devices such as ITER and SPARC, alpha particles become the dominant heating source, yet their impact on confinement has remained uncertain. Here, we present self-consistent simulations of burning plasmas that simultaneously evolve microturbulence, alpha-particle heating, and macroscopic plasma profiles to steady state, and find that alpha particles can substantially improve confinement. Fusion-born alpha particles weakly destabilize toroidal Alfven eigenmodes (TAEs), which nonlinearly enhance zonal flows that shear apart and suppress ion-scale turbulence. The resulting reduction in turbulent heat transport drives stronger core profile peaking, increasing alpha heating by up to 25% and establishing a self-reinforcing feedback loop. This mechanism has no direct analogue in present-day experiments, where external heating dominates, and reveals an intrinsic pathway toward improved confinement in burning plasmas.
title How Fusion-Born Alpha Particles Suppress Microturbulence in Burning Plasmas
topic Plasma Physics
url https://arxiv.org/abs/2605.10694