Hydrodynamic Model for Particle Beam-Driven Wakefield in Carbon Nanotubes

被引:0
|
作者
Martin-Luna, P. [1 ]
Apsimon, O. [2 ,3 ]
Barbera-Ramos, M. [4 ]
Bonatto, A. [5 ]
Bontoiu, C. [3 ,6 ]
Xia, G. [2 ,3 ]
Resta-Lopez, J. [4 ]
机构
[1] Univ Valencia, CSIC, Inst Fis Corpuscular IFIC, Paterna, Spain
[2] Univ Manchester, Manchester, Lancs, England
[3] Cockroft Inst, Warrington, Cheshire, England
[4] Univ Valencia, Inst Univ Ciencia Mat ICMUV, Paterna, Spain
[5] Univ Fed Ciencias Saude Porto Alegre, Porto Alegre, RS, Brazil
[6] Univ Liverpool, Liverpool, Merseyside, England
来源
IPAC23 PROCEEDINGS | 2024年 / 2687卷
关键词
D O I
10.1088/1742-6596/2687/4/042005
中图分类号
O64 [物理化学(理论化学)、化学物理学]; O56 [分子物理学、原子物理学];
学科分类号
070203 ; 070304 ; 081704 ; 1406 ;
摘要
The charged particles moving through a carbon nanotube (CNT) may be used to excite electromagnetic modes in the electron gas produced in the cylindrical graphene shell that makes up a nanotube wall. This effect has recently been proposed as a potential novel method of short-wavelength-high-gradient particle acceleration. In this contribution, the existing theory based on a linearized hydrodynamic model for a localized point-charge propagating in a single wall nanotube (SWNT) is reviewed. In this model, the electron gas is treated as a plasma with additional contributions to the fluid momentum equation from specific solid-state properties of the gas. The governing set of differential equations is formed by the continuity and momentum equations for the involved species. These equations are then coupled by Maxwell's equations. The differential equation system is solved applying a modified Fourier-Bessel transform. An analysis has been realized to determine the plasma modes able to excite a longitudinal electrical wakefield component in the SWNT to accelerate test charges. Numerical results are obtained showing the influence of the damping factor, the velocity of the driver, the nanotube radius, and the particle position on the excited wakefields. A discussion is presented on the suitability and possible limitations of using this method for modelling CNT-based particle acceleration.
引用
收藏
页数:6
相关论文
共 50 条
  • [21] Femtosecond laser-induced plasma filaments for beam-driven plasma wakefield acceleration
    Galletti, M.
    Crincoli, L.
    Pompili, R.
    Verra, L.
    Villa, F.
    Demitra, R.
    Biagioni, A.
    Zigler, A.
    Ferrario, M.
    PHYSICAL REVIEW E, 2025, 111 (02)
  • [22] Gas-dynamic density downramp injection in a beam-driven plasma wakefield accelerator
    Cabadag, J. P. Couperus
    Pausch, R.
    Schoebel, S.
    Bussmann, M.
    Chang, Y-Y
    Corde, S.
    Debus, A.
    Ding, H.
    Doepp, A.
    Foerster, F. M.
    Gilljohann, M.
    Haberstroh, F.
    Heinemann, T.
    Hidding, B.
    Karsch, S.
    Koehler, A.
    Kononenko, O.
    Knetsch, A.
    Kurz, T.
    de la Ossa, A. Martinez
    Nutter, A.
    Raj, G.
    Steiniger, K.
    Schramm, U.
    Ufer, P.
    Irman, A.
    PHYSICAL REVIEW RESEARCH, 2021, 3 (04):
  • [23] Optimizing density down-ramp injection for beam-driven plasma wakefield accelerators
    de la Ossa, A. Martinez
    Hu, Z.
    Streeter, M. J. V.
    Mehrling, T. J.
    Kononenko, O.
    Sheeran, B.
    Osterhoff, J.
    PHYSICAL REVIEW ACCELERATORS AND BEAMS, 2017, 20 (09):
  • [24] Beam-driven energetic particle modes in advanced tokamak plasmas
    Heidbrink, WW
    Gorelenkov, NN
    Murakami, M
    NUCLEAR FUSION, 2002, 42 (08) : 972 - 976
  • [25] Witness electron beam injection using an active plasma lens for a proton beam-driven plasma wakefield accelerator
    Kim, S- Y.
    Moon, K.
    Chung, M.
    Sjobak, K. N.
    Adli, E.
    Dayyani, M.
    Doebert, S.
    Yoon, E. S.
    Nam, I.
    Hahn, G.
    PHYSICAL REVIEW ACCELERATORS AND BEAMS, 2021, 24 (12)
  • [26] Single-Shot Visualization of Evolving Laser- or Beam-Driven Plasma Wakefield Accelerators
    Li, Zhengyan
    Zgadzaj, Rafal
    Wang, Xiaoming
    Chang, Yen-Yu
    Downer, Michael C.
    ADVANCED ACCELERATOR CONCEPTS, 2012, 1507 : 160 - 168
  • [27] Particle-in-cell simulations of beam-driven electrostatic waves in a plasma
    Koen, Etienne J.
    Collier, Andrew B.
    Maharaj, Shimul K.
    PHYSICS OF PLASMAS, 2012, 19 (04)
  • [28] Ultra-high acceleration neutral particle beam-driven sails
    Benford, James
    Mole, Alan
    JBIS - Journal of the British Interplanetary Society, 2019, 72 (06): : 190 - 197
  • [29] Polarized electron acceleration in beam-driven plasma wakefield based on density down-ramp injection
    Wu, Yitong
    Ji, Liangliang
    Geng, Xuesong
    Yu, Qin
    Wang, Nengwen
    Feng, Bo
    Guo, Zhao
    Wang, Weiqing
    Qin, Chengyu
    Yan, Xue
    Zhang, Lingang
    Thomas, Johannes
    Huetzen, Anna
    Pukhov, Alexander
    Buescher, Markus
    Shen, Baifei
    Li, Ruxin
    PHYSICAL REVIEW E, 2019, 100 (04)
  • [30] Using a Hydrodynamic Approach to Model the Dynamics of a Laser Beam in an Array of Carbon Nanotubes
    Konobeeva N.N.
    Trofimov R.R.
    Belonenko M.B.
    Bulletin of the Russian Academy of Sciences: Physics, 2023, 87 (12) : 1841 - 1844