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Volume 9 Issue 1
Jan.  2024
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Article Contents
Lan Ke. Relay, for a better MRE![J]. Matter and Radiation at Extremes, 2024, 9(1): 013001. doi: 10.1063/5.0187709
Citation: Lan Ke. Relay, for a better MRE![J]. Matter and Radiation at Extremes, 2024, 9(1): 013001. doi: 10.1063/5.0187709

Relay, for a better MRE!

doi: 10.1063/5.0187709
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  • Corresponding author: a)Author to whom correspondence should be addressed: lan_ke@iapcm.ac.cn
  • Received Date: 2023-11-15
  • Accepted Date: 2023-12-10
  • Available Online: 2024-01-01
  • Publish Date: 2024-01-01
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  • [1.]
    J. Nilsen, “Modeling the gain of inner-shell X-ray laser transitions in neon, argon, and copper driven by X-ray free electron laser radiation using photo-ionization and photo-excitation processes,” Matter Radiat. Extremes 1, 76 (2016).10.1016/j.mre.2015.12.001
    [2.]
    J. Nilsen, A. L. Kritcher, M. E. Martin, R. E. Tipton, H. D. Whitley, D. C. Swift, T. Döppner, B. L. Bachmann, A. E. Lazicki, N. B. Kostinski et al., “Understanding the effects of radiative preheat and self-emission from shock heating on equation of state measurement at 100s of Mbar using spherically converging shock waves in a NIF hohlraum,” Matter Radiat. Extremes 5, 018401 (2020).10.1063/1.5131748
    [3.]
    T. Toncian, C. Wang, E. McCary, A. Meadows, A. V. Arefiev, J. Blakeney, K. Serratto, D. Kuk, C. Chester, R. Roycroft et al., “Non-Maxwellian electron distributions resulting from direct laser acceleration in near-critical plasmas,” Matter Radiat. Extremes 1, 82 (2016).10.1016/j.mre.2015.11.001
    [4.]
    J. L. Kline and J. D. Hager, “Aluminum X-ray mass-ablation rate measurements,” Matter Radiat. Extremes 2, 16 (2016).10.1016/j.mre.2016.09.003
    [5.]
    J. J. Honrubia, A. Morace, and M. Murakami, “On intense proton beam generation and transport in hollow cones,” Matter Radiat. Extremes 2, 28 (2017).10.1016/j.mre.2016.11.001
    [6.]
    M. Murakami and D. Nishi, “Optimization of laser illumination configuration for directly driven inertial confinement fusion,” Matter Radiat. Extremes 2, 55 (2017).10.1016/j.mre.2016.12.002
    [7.]
    E. M. Campbell, V. N. Goncharov, T. C. Sangster, S. P. Regan, P. B. Radha, R. Betti, J. Myatt, D. H. Froula, M. J. Rosenberg, I. V. Igumenshchev et al., “Laser-direct-drive program: Promise, challenge, and path forward,” Matter Radiat. Extremes 2, 37 (2017).10.1016/j.mre.2017.03.001
    [8.]
    V. T. Tikhonchuk, T. Gong, N. Jourdain, O. Renner, F. P. Condamine, K. Q. Pan, W. Nazarov, L. Hudec, J. Limpouch, R. Liska et al., “Studies of laser-plasma interaction physics with low-density targets for direct-drive inertial confinement fusion on the Shenguang III prototype,” Matter Radiat. Extremes 6, 025902 (2021).10.1063/5.0023006
    [9.]
    K. Lan, J. Liu, D. Lai, W. Zheng, and X. He, “High flux symmetry of the spherical hohlraum with octahedral 6LEHs at the hohlraum-to-capsule radius ratio of 5.14,” Phys. Plasmas 21, 010704 (2014).10.1063/1.4863435
    [10.]
    K. Lan, X. He, J. Liu, W. Zheng, and D. Lai, “Octahedral spherical hohlraum and its laser arrangement for inertial fusion,” Phys. Plasmas 21, 052704 (2014).10.1063/1.4878835
    [11.]
    K. Lan and W. Zheng, “Novel spherical hohlraum with cylindrical laser entrance holes and shields,” Phys. Plasmas 21, 090704 (2014).10.1063/1.4895503
    [12.]
    K. Lan, J. Liu, Z. Li, X. Xie, W. Huo, Y. Chen, G. Ren, C. Zheng, D. Yang, S. Li et al., “Progress in octahedral spherical hohlraum study,” Matter Radiat. Extremes 1, 8 (2016).10.1016/j.mre.2016.01.003
    [13.]
    K. Lan, “Dream fusion in octahedral spherical hohlraum,” Matter Radiat. Extremes 7, 055701 (2022).10.1063/5.0103362
    [14.]
    W. Huo, Z. Li, D. Yang, K. Lan, J. Liu, G. Ren, S. Li, Z. Yang, L. Guo, L. Hou et al., “First demonstration of improving laser propagation inside the spherical hohlraums by using the cylindrical laser entrance hole,” Matter Radiat. Extremes 1, 2 (2016).10.1016/j.mre.2016.02.001
    [15.]
    Y. Chen, Z. Li, X. Xie, C. Zheng, C. Zhai, L. Hao, D. Yang, W. Y. Huo, G. L. Ren, J. liu et al., “First experimental comparisons of laser-plasma interactions between spherical and cylindrical hohlraums at SGIII laser facility,” Matter Radiat. Extremes 2, 77 (2017).10.1016/j.mre.2017.01.001
    [16.]
    Y. H. Chen, Z. Li, H. Cao, K. Pan, S. Li, X. Xie, B. Deng, Q. Wang, Z. Cao, L. Hou et al., “Determination of laser entrance hole size for ignition-scale octahedral spherical hohlraums,” Matter Radiat. Extremes 7, 065901 (2022).10.1063/5.0102447
    [17.]
    Z. Fan, Y. Liu, B. Liu, C. Yu, K. Lan, and J. Liu, “Non-equilibrium between ions and electrons inside hot spots from National Ignition Facility experiments,” Matter Radiat. Extremes 2, 3 (2017).10.1016/j.mre.2016.11.003
    [18.]
    G. Ren, J. Liu, W. Huo, and K. Lan, “Analysis of hohlraum energetics of the SG series and the NIF experiments with energy balance model,” Matter Radiat. Extremes 2, 22 (2017).10.1016/j.mre.2016.11.002
    [19.]
    Y. Guo, X. Zhang, D. Xu, X. Guo, B. Shen, and K. Lan, “Suppression of stimulated Raman scattering by angularly incoherent light, towards a laser system of incoherence in all dimensions of time, space, and angle,” Matter Radiat. Extremes 8, 035902 (2023).10.1063/5.0136567
    [20.]
    K. Lan and M. Campbell, “Editorial for special issue on laser fusion,” Matter Radiat. Extremes 2, 1 (2017).10.1016/j.mre.2016.12.003
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