Follow us on Wechat

用微信扫码二维码

分享至好友和朋友圈

Volume 3 Issue 2
Mar.  2018
Turn off MathJax
Article Contents
Wang Guiqiu, Yi He, Li Yujiao, Wang Yaochuan, Liu Dajun, Gao Fei, Liu Wei, Ren Jieru, Wang Xing, Zhao Yongtao, Wang Younian. Review of stopping power and Coulomb explosion for molecular ion in plasmas[J]. Matter and Radiation at Extremes, 2018, 3(2). doi: 10.1016/j.mre.2018.01.002
Citation: Wang Guiqiu, Yi He, Li Yujiao, Wang Yaochuan, Liu Dajun, Gao Fei, Liu Wei, Ren Jieru, Wang Xing, Zhao Yongtao, Wang Younian. Review of stopping power and Coulomb explosion for molecular ion in plasmas[J]. Matter and Radiation at Extremes, 2018, 3(2). doi: 10.1016/j.mre.2018.01.002

Review of stopping power and Coulomb explosion for molecular ion in plasmas

doi: 10.1016/j.mre.2018.01.002
More Information
  • Corresponding author: *Corresponding author. E-mail address: gqwang@dlmu.edu.cn (G.Q. Wang).
  • Received Date: 2017-10-14
  • Accepted Date: 2018-01-31
  • Available Online: 2021-12-07
  • Publish Date: 2018-03-15
  • We summarize our theoretical studies for stopping power of energetic heavy ion, diatomic molecular ions and small clusters penetrating through plasmas. As a relevant research field for the heavy ion inertial confinement fusion (HICF), we lay the emphasis on the dynamic polarization and correlation effects of the constituent ion within the molecular ion and cluster for stopping power in order to disclose the role of the vicinage effect on the Coulomb explosion and energy deposition of molecules and clusters in plasma. On the other hand, as a promising scheme for ICF, both a strong laser field and an intense ion beam are used to irradiate a plasma target. So the influence of a strong laser field on stopping power is significant. We discussed a large range of laser and plasma parameters on the coulomb explosion and stopping power for correlated-ion cluster and C60 cluster. Furthermore, in order to indicate the effects of different cluster types and sizes on the stopping power, a comparison is made for hydrogen and carbon clusters. In addition, the deflection of molecular axis for diatomic molecules during the Coulomb explosion is also given for the cases both in the presence of a laser field and laser free. Finally, a future experimental scheme is put forward to measure molecular ion stopping power in plasmas in Xi'an Jiaotong University of China.
  • loading
  • [1]
    S. Eliezer, M. Murakami, J.M.M. Val, Equation of state and optimum compression in inertial fusion energy, Laser Part. Beams 25 (2007) 585–592.10.1017/s0263034607000699
    [2]
    M. D. Barriga-Carrasco, Target electron collision effects on energy loss straggling of protons in an electron gas at any degeneracy, Phys. Plasmas 15 (2008) 033103.10.1063/1.2888525
    [3]
    R. Cook, B.J. Kozioziemski, A. Nikroo, H. L. Wilkens, S. Bhandarkar, et al., National ignition facility target design and fabrication, Laser Part. Beams 26 (2008) 479–487.10.1017/s0263034608000499
    [4]
    A. Golubev, M. Basko, A. Fertman, A. Kozodaev, N. Mesheryakov, et al., Dense plasma diagnostics by fast proton beams, Phys. Rev. E 57 (1998) 3363.10.1103/physreve.57.3363
    [5]
    G. Xu, M.D. Barriga-Carrasco, A. Blazevic, B. Borovkov, D. Casas, et al., Determination of hydrogen density by swift heavy ions, Phys. Rev. Lett. 119 (2017) 204801.10.1103/physrevlett.119.204801
    [6]
    C. Deutsch, N.A. Tahir, Fragmentation and stopping of heavy cluster ions in a lithium target-Application to target implosion, Phys. Fluids B 4 (1992) 3735–3746.10.1063/1.860329
    [7]
    C. Deutsch, Correlated stopping of Coulomb clusters in a dense jellium target, Phys. Rev. E 51 (1995) 619.10.1103/physreve.51.619
    [8]
    N.A. Tahir, K.J. Lutz, O. Geb, J.A. Maruhn, C. Deutsch, et al., Inertial confinement fusion using hohlraum radiation generated by heavy-ion clusters, Phys. Plasmas 4 (1997) 796–816.10.1063/1.872174
    [9]
    I. Yamada, J. Matsuo, N. Toyoda, Cluster ion beam process technology, Nucl. Instrum. Methods Phys. Res. B 206 (2003) 820–829.10.1016/s0168-583x(03)00857-7
    [10]
    A. Brunelle, S. Della-Negra, J. Depauw, D. Jacquet, Y. Le Beyec, et al., Reduced charge state of MeV carbon cluster constituents exiting thin carbon foils, Phys. Rev. A 59 (1999) 4456.10.1103/physreva.59.4456
    [11]
    S.P. Hatchett, C.G. Brown, T.E. Cowan, E.A. Henry, J.S. Johnson, et al., Electron, photon, and ion beams from the relativistic interaction of Petawatt laser pulses with solid targets, Phys. Plasmas 7 (2000) 2076.10.1063/1.874030
    [12]
    C. Stőckl, O. Boine-Frankenheim, M. Roth, Interaction of heavy ion beams with dense plasmas, Laser Part. Beams 14 (1996) 561–574.
    [13]
    M. Roth, T.E. Cowan, M.H. Key, S.P. Hatchett, C. Brown, et al., Fast ignition by intense laser-accelerated proton beams, Phys. Rev. Lett. 86 (2001) 436–439.10.1103/physrevlett.86.436
    [14]
    K. Shibata, A. Sakumi, R. Sato, K. Tsubuku, J. Hasegawa, et al., A TOF system to measure the energy loss of low energy ions in a hot dense plasma, Nucl. Instrum. Methods Phys. Res. B 161–163 (2000) 106–110.10.1016/s0168-583x(99)00935-0
    [15]
    Y. Oguri, K. Tsubuku, A. Sakumi, K. Shibata, R. Sato, et al., Heavy ion stripping by a highly-ionized laser plasma, Nucl. Instrum. Methods Phys. Res. B 161–163 (2000) 155–158.10.1016/s0168-583x(99)00814-9
    [16]
    A. Frank, A. Blažević, P.L. Grande, K. Harres, T. Heing, et al., Energy loss of argon in a laser-generated carbon plasma, Phys. Rev. E 81 (2010) 026401.10.1103/physreve.81.026401
    [17]
    D.H.H. Hoffmann, N.A. Tahir, S. Udreal, O. Rosmej, C.V. Meister, et al., High energy density physics with heavy ion beams and related interaction phenomena, Contrib. Plasma Phys. 50 (2010) 7.10.1002/ctpp.201010004
    [18]
    A.B. Zylstra, J.A. Frenje, P.E. Grabowski, C.K. Li, G.W. Collins, et al., Measurement of charged-particle stopping in warm dense plasma, Phys. Rev. Lett. 114 (2015) 215002.10.1103/physrevlett.114.215002
    [19]
    P.E. Grabowski, M.P. Surh, D.F. Richards, F. Graziani, M.S. Murillo, et al., Molecular dynamics simulations of classical stopping power, Phys. Rev. Lett. 111 (2013) 215002.10.1103/physrevlett.111.215002
    [20]
    N.R. Arista, R.O.M. Galvão, L.C.M. Miranda, Influence of a strong laser field on the stopping power for charged test particles in nondegenerate plasmas, J. Phys. Soc. Japan 59 (1990) 544.10.1143/jpsj.59.544
    [21]
    O. Boine-Frankenheim, J. D'Avanzo, Stopping power of ions in a strongly magnetized plasma, Phys. Plasmas 3 (1996) 792.10.1063/1.871779
    [22]
    H.B. Nersisyan, M. Walter, G. Zwicknagel, Stopping power of ions in a magnetized two-temperature plasma, Phys. Rev. E 61 (2000) 7022.10.1103/physreve.61.7022
    [23]
    J. D'Avanzo, I. Hofmann, M. Lontano, Effective charge in heavy ion stopping in classical collisionless plasmas, Phys. Plasmas 3 (1996) 3885–3889.10.1063/1.871576
    [24]
    O. Boine-Frankenheim, Nonlinear stopping power of ions in plasmas, Phys. Plasmas 3 (1996) 1585–1590.10.1063/1.872017
    [25]
    G. Zwicknagel, Nonlinear energy loss of heavy ions in plasma, Nucl. Instrum. Methods Phys. Res. B 197 (2002) 22–38.10.1016/s0168-583x(02)01474-x
    [26]
    H.B. Nersisyan, G. Zwicknagel, C. Toepffer, Energy loss of ions in a magnetized plasma: conformity between linear response and binary collision treatments, Phys. Rev. E 67 (2003) 026411.10.1103/physreve.67.026411
    [27]
    R. Morales, M.D. Barriga-Carrasco, D. Casas, Instantaneous charge state of uranium projectiles in fully ionized plasmas from energy loss experiments, Phys. Plasmas 24 (2017) 042703.10.1063/1.4979132
    [28]
    M.D. Barriga-Carrasco, D. Casas, R. Morales, Calculations on charge state and energy loss of argon ions in partially and fully ionized carbon plasmas, Phys. Rev. E 93 (2016) 033204.10.1103/physreve.93.033204
    [29]
    B. He, X. Meng, J. Wang, Energy loss of an energetic Ga ion in hot Au plasmas, Matter Radiat. Extremes 1 (2016) 257–263.10.1016/j.mre.2016.10.003
    [30]
    P. Sigmund, I.S. Bitensky, J. Jensen, Molecule and cluster bombardment: energy loss, trajectories, and collision cascades, Nucl. Instrum. Methods Phys. Res. B 112 (1996) 1–11.10.1016/0168-583x(95)01125-0
    [31]
    J. Jensen, P. Sigmund, Electronic stopping of swift partially stripped molecules and clusters, Phys. Rev. A 61 (2000) 032903.10.1103/physreva.61.032903
    [32]
    N.R. Arista, Stopping of molecules and clusters, Nucl. Instrum. Methods Phys. Res. B 164–165 (2000) 108–138.10.1016/s0168-583x(99)01069-1
    [33]
    Z.L. Mišković, Y.N. Wang, Y.H. Song, Dynamics of fast molecular ions in solids and plasmas: a review of recent theoretical developments, Nucl. Instrum. Methods Phys. Res. B 256 (2007) 57–65.10.1016/j.nimb.2006.11.113
    [34]
    J. D'Avanzo, M. Lontano, P.F. Bortignon, Fast-ion interaction in dense plasmas with two-ion correlation effects, Phys. Rev. E 47 (1993) 3574.10.1103/physreve.47.3574
    [35]
    J. D'Avanzo, M. Lontano, E. Tome, P.F. Bortignon, Heavy-ion interaction in a nonisothermal plasma with two-ion correlation effects, Phys. Rev. E 52 (1995) 919.10.1103/physreve.52.919
    [36]
    C. Deutsch, P. Fromy, Correlated ion stopping in a dense classical plasma, Phys. Rev. E 51 (1995) 632.10.1103/physreve.51.632
    [37]
    G. Zwicknagel, C. Deutsch, Correlation effects in cluster-ion-beam stopping, Nucl. Instrum. Methods Phys. Res. A 415 (1998) 599–603.10.1016/s0168-9002(98)00399-4
    [38]
    H.B. Nersisyan, C. Deutsch, Correlated fast ion stopping in magnetized classical plasma, Phys. Lett. A 246 (1998) 325–328.10.1016/s0375-9601(98)00523-4
    [39]
    H.B. Nersisyan, E.A. Akopyan, Stopping and acceleration effect of protons in a plasma in the presence of an intense radiation field, Phys. Lett. A 258 (1999) 323–328.10.1016/s0375-9601(99)00366-7
    [40]
    M. Lontano, F. Raimondi, Stopping power of nonmonochromatic heavy-ion clusters with two-ion correlation effects, Phys. Rev. E 51 (1995) R2755.10.1103/physreve.51.r2755
    [41]
    N.R. Arista, R.O.M. Galvão, L.C.M. Miranda, Laser-field effects on the interaction of charged particles with a degenerate electron gas, Phys. Rev. A 40 (1989) 3808.10.1103/physreva.40.3808
    [42]
    C.A.B. Silva, R.M.O. Galvão, Laser-assisted stopping power of a hot plasma for a system of correlated ions, Phys. Rev. E 60 (1999) 7441.10.1103/physreve.60.7441
    [43]
    H.B. Nersisyan, C. Deutsch, Stopping of ions in a plasma irradiated by an intense, laser field, Laser Part. Beams 29 (2011) 389–397.10.1017/s0263034611000486
    [44]
    Z.H. Hu, Y.H. Song, Z.L. Mišković, Y.N. Wang, Energy dissipation of ion beam in two-component plasma in the presence of laser irradiation, Laser Part. Beams 29 (2011) 299–304.10.1017/s0263034611000334
    [45]
    G.Q. Wang, E. Peng, Y.N. Wang, Z.H. Hu, H. Gao, et al., Influence of a strong laser field on Coulomb explosion and stopping power of energetic H3+ clusters in plasmas, Phys. Plasmas 19 (2012) 093116.10.1063/1.4752417
    [46]
    G.Q. Wang, E. Peng, T. Ma, Y.N. Wang, L. Yao, et al., Influence of a strong laser field on the Coulomb explosion and the stopping power of fast C60 clusters in plasmas, Phys. Rev. A 86 (2012) 043201.10.1103/physreva.86.043201
    [47]
    G.Q. Wang, Y.N. Wang, Z.L. Mišković, Coulomb explosions and energy loss of molecular ions in plasmas, Phys. Rev. E 68 (2003) 036405.10.1103/physreve.68.036405
    [48]
    G.Q. Wang, Y.N. Wang, Z.L. Mišković, Coulomb explosion and energy loss of fast C60 clusters in plasmas, Phys. Plasmas 12 (2005) 042702.10.1063/1.1864077
    [49]
    G.Q. Wang, W.K. Li, Y.N. Wang, Coulomb explosion and energy loss of energetic C20 clusters in dense plasmas, Chin. Phys. Lett. 26 (2009) 125203.
    [50]
    G.Q. Wang, Y.N. Wang, Influence of strong laser fields on Coulomb explosions energy losses, of correlated-ion clusters in plasmas, Phys. Plasmas 11 (2004) 1187–1193.10.1063/1.1645794
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(15)

    Article Metrics

    Article views (156) PDF downloads(7) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return