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We determine the Casimir energies and forces in a variety of potentially experimentally viable setups, consisting of parallel plates made of perfect electromagnetic conductors (PEMCs), which generalize perfect electric conductors (PECs) and perfect magnetic conductors (PMCs), and Weyl semimetals (WSMs).
1906
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2017
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O. V. Kotov and Y. E. Lozovik, Giant tunable nonreciprocity of light in weyl semimetals, Phys. Rev. B 98
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Q.-D. Jiang and F. Wilczek, Chiral Casimir Forces: Repulsive, Enhanced, Tunable, Phys. Rev. B 99
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2010
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2012
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P. Goswami and S. Tewari, Axionic field theory of (3+1)-dimensional Weyl semimetals, Phys. Rev. B 88
2013
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J. Zou, Z. Marcet, A. W. Rodriguez, M. H. Reid, A. P. McCauley, I. I. Kravchenko, T. Lu, Y. Bao, S. G. Johnson, and H. B. Chan, Casimir forces on a silicon micromechanical chip, Nature communications 4
2013
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C. A. Valagiannopoulos and A. H. Sihvola, Mimicking the perfect electromagnetic conducting scattering mechanisms with suitable bi-isotropic media, Electromagnetics 34
2014
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I. S. Gradshteyn and I. M. Ryzhik, Table of integrals, series, and products (Academic press, 2014)
2014
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2015
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I. V. Lindell and A. H. Sihvola, Perfect electromagnetic conductor, Journal of Electromagnetic Waves and Applications 19
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2019
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J.-N. Rong, L. Chen, and K. Chang, Chiral anomaly-enhanced casimir interaction between weyl semimetals, Chinese Physics Letters 38
2021
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2021
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P. B. Pal, Covariant formulation of electrodynamics in isotropic media, European Journal of Physics 43
2021
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2022
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2023
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