wakefield accelerator
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Author(s):  
Zhi Yao ◽  
Revathi Jambunathan ◽  
Yadong Zeng ◽  
Andrew Nonaka

We present a high-performance coupled electrodynamics–micromagnetics solver for full physical modeling of signals in microelectronic circuitry. The overall strategy couples a finite-difference time-domain approach for Maxwell’s equations to a magnetization model described by the Landau–Lifshitz–Gilbert equation. The algorithm is implemented in the Exascale Computing Project software framework, AMReX, which provides effective scalability on manycore and GPU-based supercomputing architectures. Furthermore, the code leverages ongoing developments of the Exascale Application Code, WarpX, which is primarily being developed for plasma wakefield accelerator modeling. Our temporal coupling scheme provides second-order accuracy in space and time by combining the integration steps for the magnetic field and magnetization into an iterative sub-step that includes a trapezoidal temporal discretization for the magnetization. The performance of the algorithm is demonstrated by the excellent scaling results on NERSC multicore and GPU systems, with a significant (59×) speedup on the GPU using a node-by-node comparison. We demonstrate the utility of our code by performing simulations of an electromagnetic waveguide and a magnetically tunable filter.


Author(s):  
Jia Wang ◽  
Ming Zeng ◽  
Xiaoning Wang ◽  
Dazhang Li ◽  
Jie Gao

Abstract We propose to use a frequency doubled pulse colliding with the driving pulse at an acute angle to trigger ionization injection in a laser wakefield accelerator. This scheme effectively reduces the duration that injection occurs, thus high injection quality is obtained. Three-dimensional particle-in-cell simulations show that electron beams with energy of ~500 MeV, charge of ~40 pC, energy spread of ~1% and normalized emittance of a few millimeter milliradian can be produced by ~100 TW laser pulses. By adjusting the angle between the two pulses, the intensity of the trigger pulse and the gas dope ratio, the charge and energy spread of the electron beam can be controlled.


AIP Advances ◽  
2021 ◽  
Vol 11 (11) ◽  
pp. 115021
Author(s):  
Yonghong Yan ◽  
Minghai Yu ◽  
Shaoyi Wang ◽  
Fang Tan ◽  
Yue Yang ◽  
...  

Author(s):  
A. Koehler ◽  
R. Pausch ◽  
M. Bussmann ◽  
J. P. Couperus Cabadağ ◽  
A. Debus ◽  
...  

Nature ◽  
2021 ◽  
Vol 595 (7868) ◽  
pp. 516-520
Author(s):  
Wentao Wang ◽  
Ke Feng ◽  
Lintong Ke ◽  
Changhai Yu ◽  
Yi Xu ◽  
...  

2021 ◽  
Vol 28 (6) ◽  
pp. 063101
Author(s):  
Y. Ma ◽  
D. Seipt ◽  
A. E. Hussein ◽  
S. Hakimi ◽  
N. F. Beier ◽  
...  

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