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Affordable, manageable, practical, and scalable (AMPS) high-yield and high-gain inertial fusion

Publication ,  Journal Article
Alexander, A; Benedetti, LR; Bhattacharyya, I; Bowen, J; Cabatu, J; Cacdac, V; Chhavi, C; Chen, C; Chen, K; Clark, D; Clark, J; Cope, T ...
Published in: Physics of Plasmas
September 1, 2025

High-yield inertial fusion offers a transformative path to affordable, clean, firm power and advanced defense capabilities. Recent milestones at large facilities, particularly the National Ignition Facility (NIF), have demonstrated the feasibility of ignition but highlight the need for approaches that can deliver large amounts of energy to fusion targets at much higher efficiency and lower cost. We propose that pulser-driven inertial fusion energy (IFE), which uses high-current pulsed-power technology to compress targets to thermonuclear conditions, can achieve this goal. In this paper, we detail the physics basis for pulser IFE, focusing on magnetized liner inertial fusion, where cylindrical metal liners compress DT fuel under strong magnetic fields and preheat. We discuss how the low implosion velocities, direct-drive efficiency, and scalable pulser architecture can achieve ignition-level conditions at low capital cost. Our multi-dimensional simulations, benchmarked against experiments at the Z facility, show that scaling from 20 to 50–60 MA of current enables net facility gain. We then introduce our Demonstration System (DS), a pulsed-power driver designed to deliver more than 60 MA and store approximately 80 MJ of energy. The DS is designed to achieve a 1000× increase in effective performance compared to the NIF, delivering approximately 100× greater facility-level energy gain—and importantly, achieving net facility gain, or Qf>1—at just 1/10 the capital cost. We also examine the engineering requirements for repetitive operation, target fabrication, and chamber maintenance, highlighting a practical roadmap to commercial power plants.

Duke Scholars

Published In

Physics of Plasmas

DOI

EISSN

1089-7674

ISSN

1070-664X

Publication Date

September 1, 2025

Volume

32

Issue

9

Publisher

AIP Publishing

Related Subject Headings

  • Fluids & Plasmas
  • 5109 Space sciences
  • 5106 Nuclear and plasma physics
  • 0203 Classical Physics
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics
  • 0201 Astronomical and Space Sciences
 

Citation

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Chicago
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Alexander, A., Benedetti, L. R., Bhattacharyya, I., Bowen, J., Cabatu, J., Cacdac, V., … Zylstra, A. B. (2025). Affordable, manageable, practical, and scalable (AMPS) high-yield and high-gain inertial fusion. Physics of Plasmas, 32(9). https://doi.org/10.1063/5.0273277
Alexander, Andrew, Laura Robin Benedetti, Indrani Bhattacharyya, Jared Bowen, June Cabatu, Virgil Cacdac, Chhavi Chhavi, et al. “Affordable, manageable, practical, and scalable (AMPS) high-yield and high-gain inertial fusion.” Physics of Plasmas 32, no. 9 (September 1, 2025). https://doi.org/10.1063/5.0273277.
Alexander A, Benedetti LR, Bhattacharyya I, Bowen J, Cabatu J, Cacdac V, et al. Affordable, manageable, practical, and scalable (AMPS) high-yield and high-gain inertial fusion. Physics of Plasmas. 2025 Sep 1;32(9).
Alexander, Andrew, et al. “Affordable, manageable, practical, and scalable (AMPS) high-yield and high-gain inertial fusion.” Physics of Plasmas, vol. 32, no. 9, AIP Publishing, Sept. 2025. Crossref, doi:10.1063/5.0273277.
Alexander A, Benedetti LR, Bhattacharyya I, Bowen J, Cabatu J, Cacdac V, Chhavi C, Chen C, Chen K, Clark D, Clark J, Cope T, Dannemann W, Davidson S, DeHaan D, Dugan J, Eihusen M, Ellison CL, Esquivel C, Ethridge D, Ferguson B, Fry J, Garcia-Rubio F, Goyal T, Grim G, Grodman J, Haid B, Howland F, Huynh V, John V, Knapp P, Kravitz I, Lander ES, Langendorf S, LeChien K, Link A, Meezan N, Miller DS, Nardelli N, Ogirri Q, Peng JH, Pinto A, Powser R, Puno FR, Quang K, Rahn B, Regan W, Reichenbach K, Reyes A, Richardson C, Rose D, Samaniego J, Schmit PF, Silva V, Simon N, Sitaraman S, Sullan H, Trebesch J, Truong M, Muench CV, Waltz C, Williams D, Wood E, Wu S, Zylstra AB. Affordable, manageable, practical, and scalable (AMPS) high-yield and high-gain inertial fusion. Physics of Plasmas. AIP Publishing; 2025 Sep 1;32(9).

Published In

Physics of Plasmas

DOI

EISSN

1089-7674

ISSN

1070-664X

Publication Date

September 1, 2025

Volume

32

Issue

9

Publisher

AIP Publishing

Related Subject Headings

  • Fluids & Plasmas
  • 5109 Space sciences
  • 5106 Nuclear and plasma physics
  • 0203 Classical Physics
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics
  • 0201 Astronomical and Space Sciences