@misc{7119,
  abstract     = {Material discovery using traditional experimental methods is a slow and costly process, often limited by the sampling process, characterization condition constraints, and the requirement for expensive equipment. While computational tools have transformed materials research by accelerating the investigation of material properties, a significant gap remains in connecting high-fidelity simulations with established experimental characterization techniques. Virtual Characterization Lab (VCL), a unified, open-source toolkit designed to bridge this gap. The VCL streamlines pre- and post-processing workflows—primarily designed for, but not limited to, molecular dynamics (MD) simulations. It enables researchers to analyze crystallography and generate essential characterization data, including X-ray Diffraction (XRD), Selected Area Electron Diffraction (SAED), Vibrational Density of States (VDOS), and Infrared (IR) spectra, all within a single, intuitive graphical user interface (GUI). By integrating every step from initial structure preparation to final data visualization, the VCL accelerates materials discovery by making virtual characterization more efficient, accessible, and directly comparable to experimental results.},
  author       = {Jamebozorgi, Vahid and Quisbrok, Robin and Schröder, Christian},
  keywords     = {Atomistic simulation, Defects, XRD, TEM, Vibrational analysis, Virtual material characterization},
  publisher    = {Vahid Jamebozorgi, self-published},
  title        = {{Virtual Characterization Lab Toolkit}},
  year         = {2026},
}

@article{4178,
  author       = {Wortmann, Martin and Samanta, Tapas and Gaerner, Maik and Westphal, Michael and Fiedler, Johannes and Ennen, Inga and Hütten, Andreas and Blachowicz, Tomasz and Caron, Luana and Ehrmann, Andrea},
  issn         = {2166-532X},
  journal      = {APL Materials},
  keywords     = {Magnetic ordering, Crystallographic defects, Electron diffraction, Epitaxy, Ferromagnetic materials, Magnetic hysteresis, Magnetic materials, Thin films, Transmission electron microscopy, Solid solid interfaces},
  number       = {12},
  publisher    = {AIP Publishing},
  title        = {{Isotropic exchange-bias in twinned epitaxial Co/Co3O4 bilayer}},
  doi          = {10.1063/5.0183566},
  volume       = {11},
  year         = {2023},
}

