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      Channeling experiments at planar diamond and silicon single crystals with electrons from the Mainz Microtron MAMI

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          Abstract

          Line structures were observed for (110) planar channeling of electrons in a diamond single crystal even at a beam energy of 180 MeV. This observation motivated us to initiate dechanneling length measurements as function of the beam energy since the occupation of quantum states in the channeling potential is expected to enhance the dechanneling length. High energy loss signals, generated as a result of emission of a bremsstrahlung photon with about half the beam energy at channeling of 450 and 855 MeV electrons, were measured as function of the crystal thickness. The analysis required additional assumptions which were extracted from the numerical solution of the Fokker-Planck equation. Preliminary results for diamond are presented. In addition, we reanalyzed dechanneling length measurements at silicon single crystals performed previously at the Mainz Microtron MAMI at beam energies between 195 and 855 MeV from which we conclude that the quality of our experimental data set is not sufficient to derive definite conclusions on the dechanneling length. Our experimental results are below the predictions of the Fokker-Planck equation and somewhat above the results of simulation calculations of A. V. Korol and A. V. Solov'yov et al. on the basis of the MBN Explorer simulation package. We somehow conservatively conclude that the prediction of the asymptotic dechanneling length on the basis of the Fokker-Planck equation represents an upper limit.

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          Author and article information

          Journal
          09 April 2020
          Article
          10.1088/1748-0221/13/04/C04022
          2004.04539
          cf9dc2d0-02db-452c-a23a-46e001b88be2

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          Journal of Instrumentation, Volume 13, April 2018
          physics.acc-ph

          High energy & Particle physics
          High energy & Particle physics

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