English

Demonstration of The Brightest Nano-size Gamma Source

Plasma Physics 2024-12-24 v2 High Energy Astrophysical Phenomena Optics

Abstract

Gamma rays selectively interact with nuclei, induce and mediate nuclear reactions and elementary particle interactions, and exceed x-rays in penetrating power and thus are indispensable for analysis and modification of dense objects. Yet, the available gamma sources lack sufficient power and brightness. The predicted and highly desirable laser-driven gamma flash, from here on termed "Gamma Flash", based on inverse Compton scattering from solid targets at extreme irradiances (>1023W/cm210^{23}W/cm^2), would be the highest-power and the brightest terrestrial gamma source with a 30-40% laser-to-gamma energy conversion. However, Gamma Flash remains inaccessible experimentally due to the Bremsstrahlung background. Here we experimentally demonstrate a new interaction regime at the highest effective irradiance where Gamma Flash scaled quickly with the laser power and produced several times the number of Bremsstrahlung photons. Simulations revealed an attosecond, Terawatt Gamma Flash with a nanometre source size achieving a record brightness exceeding  1023photons/mm2mrad2s~10^{23}photons/mm^2mrad^2s per 0.1% bandwidth at tens of MeV photon energies, surpassing astrophysical Gamma Ray Bursts. These findings could revolutionize inertial fusion energy by enabling unprecedented sub-micrometre/femtosecond resolution radiography of fuel mixing instabilities in extremely-compressed targets. The new gamma source could facilitate significant advances in time-resolved nuclear physics, homeland security, nuclear waste management and non-proliferation, while opening possibilities for spatially-coherent gamma rays.

Keywords

Cite

@article{arxiv.2410.06537,
  title  = {Demonstration of The Brightest Nano-size Gamma Source},
  author = {A. S. Pirozhkov and A. Sagisaka and K. Ogura and E. A. Vishnyakov and A. N. Shatokhin and C. D. Armstrong and T. Zh. Esirkepov and B. Gonzalez Izquierdo and T. A. Pikuz and P. Hadjisolomou and M. A. Alkhimova and C. Arran and I. P. Tsygvintsev and P. Valenta and S. A. Pikuz and W. Yan and T. M. Jeong and S. Singh and O. Finke and G. Grittani and M. Nevrkla and C. Lazzarini and A. Velyhan and T. Hayakawa and Y. Fukuda and J. K. Koga and M. Ishino and Ko. Kondo and Y. Miyasaka and A. Kon and M. Nishikino and Y. V. Nosach and D. Khikhlukha and A. O. Kolesnikov and E. N. Ragozin and V. A. Gasilov and D. Kumar and J. Nejdl and P. V. Sasorov and S. Weber and D. Margarone and Y. Kato and G. Korn and H. Kiriyama and K. Kondo and C. Ridgers and T. Kawachi and M. Kando and S. V. Bulanov},
  journal= {arXiv preprint arXiv:2410.06537},
  year   = {2024}
}

Comments

39 pages, 12 figures