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Citation: T. Weiland et al., Ab initio numerical simulation of left-handed metamaterials: Comparison ofcalculations and experiments, J APPL PHYS, 90(10), 2001, pp. 5419-5424
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Citation: M. Clemens et al., Self-consistent simulations of transient heating effects in electrical devices using the finite integration technique, IEEE MAGNET, 37(5), 2001, pp. 3375-3379
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Citation: M. Bartsch et al., Advanced electromagnetic field visualization using the virtual reality modeling language standard, IEEE MAGNET, 37(5), 2001, pp. 3604-3607
Citation: S. Gutschling et al., Time-domain simulation of dispersive media with the finite integration technique, INT J N MOD, 13(4), 2000, pp. 329-348
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Citation: M. Willer et al., S-band (2-4 GHz) pulse electron paramagnetic resonance spectrometer: Construction, probe head design, and performance, REV SCI INS, 71(7), 2000, pp. 2807-2817
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Citation: J. Andruszkow et al., First observation of self-amplified spontaneous emission in a free-electron laser at 109 nm wavelength, PHYS REV L, 85(18), 2000, pp. 3825-3829
Citation: S. Drobny et T. Weiland, Numerical calculation of nonlinear transient field problems with the Newton-Raphson method, IEEE MAGNET, 36(4), 2000, pp. 809-812
Citation: R. Schuhmann et T. Weiland, The nonorthogonal finite integration technique applied to 2D-and 3D-eigenvalue problems, IEEE MAGNET, 36(4), 2000, pp. 897-901
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Citation: M. Clemens et al., Numerical simulation of coupled transient thermal and electromagnetic fields with the finite integration method, IEEE MAGNET, 36(4), 2000, pp. 1448-1452
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Citation: S. Busch et al., Biomimetic morphogenesis of fluorapatite-gelatin composites: Fractal growth, the question of intrinsic electric fields, core/shell assemblies, hollowspheres and reorganization of denatured collagen, EUR J INORG, (10), 1999, pp. 1643-1653
Citation: M. Clemens et T. Weiland, Numerical algorithms for the FDiTD and FDFD simulation of slowly varying electromagnetic fields, INT J N MOD, 12(1-2), 1999, pp. 3-22