Kontakt
Allmandring 7b
70569 Stuttgart
Deutschland
Raum: 2.41
2024
- M. Kindelmann u. a., „Cold sintering of BaZr0.8Y0.2O3-? ceramics: Phase formation and grain boundary properties“, Journal of the European Ceramic Society, Bd. 44, Nr. 5, Art. Nr. 5, 2024.
- J. N. Ebert, D. Jennings, L.-A. Schäfer, D. Sebold, und W. Rheinheimer, „Bulk and grain boundary conductivity in doped BaZrO3: Bulk contribution dominates at operating temperatures“, Scripta Materialia, Bd. 241, 2024.
- W. S. Scheld u. a., „Blacklight sintering of garnet-based composite cathodes“, Journal of the European Ceramic Society, Bd. 44, Nr. 5, Art. Nr. 5, 2024.
2023
- A. Klein u. a., „Correction to: The Fermi energy as common parameter to describe charge compensation mechanisms: a path to Fermi level engineering of oxide electroceramics (Journal of Electroceramics, (2023), 51, 3, (147-177), 10.1007/s10832-023-00324-y)“, Journal of Electroceramics, Bd. 51, Nr. 3, Art. Nr. 3, 2023.
- O. Guillon, W. Rheinheimer, und M. Bram, „A Perspective on Emerging and Future Sintering Technologies of Ceramic Materials“, Advanced Engineering Materials, Bd. 25, Nr. 18, Art. Nr. 18, 2023.
- D. Jennings u. a., „The Formation of Stacking Faults in Barium Zirconate-Type Perovskites“, Chemistry of Materials, Bd. 35, Nr. 20, Art. Nr. 20, 2023.
- M. Kindelmann u. a., „Highly conductive grain boundaries in cold-sintered barium zirconate-based proton conductors“, ChemRxiv, 2023.
- M. Kindelmann u. a., „Cold sintering of BaZr0.7Ce0.2Y0.1O3-? ceramics by controlling the phase composition of the starting powders“, Scripta Materialia, Bd. 224, 2023.
- M. Knight, I. Reimanis, A. Meyer, J.-H. Preusker, und W. Rheinheimer, „Dilute iron-doped polycrystalline strontium titanate: Tracking iron valence and local interactions“, Journal of the American Ceramic Society, Bd. 106, Nr. 8, Art. Nr. 8, 2023.
- B. Qu u. a., „Defect redistribution along grain boundaries in SrTiO3 by externally applied electric fields“, Journal of the European Ceramic Society, Bd. 43, Nr. 4, Art. Nr. 4, 2023.
- M. Seiz, H. Hierl, B. Nestler, und W. Rheinheimer, „Revealing process and material parameter effects on densification via phase-field studies“, arXiv, 2023.
- W. Rheinheimer, X. L. Phuah, L. Porz, M. Scherer, J. Cho, und H. Wang, „The impact of flash sintering on densification and plasticity of strontium titanate: High heating rates, dislocation nucleation and plastic flow“, Journal of the European Ceramic Society, Bd. 43, Nr. 8, Art. Nr. 8, 2023.
- A. Klein u. a., „The Fermi energy as common parameter to describe charge compensation mechanisms: A path to Fermi level engineering of oxide electroceramics“, Journal of Electroceramics, Bd. 51, Nr. 3, Art. Nr. 3, 2023.
- M. L. Weber u. a., „Thermal stability and coalescence dynamics of exsolved metal nanoparticles at charged perovskite surfaces“, ChemRxiv, 2023.
- M. Scherer, M.-G. Ameres, W. Rheinheimer, T. Frömling, J. Rödel, und L. Fulanovi?, „Blacklight sintering of BaTiO3 ceramics“, Journal of the European Ceramic Society, Bd. 43, Nr. 12, Art. Nr. 12, 2023.
- J.-H. Preusker, M. J. Hoffmann, und W. Rheinheimer, „Impact of AC and DC Electric Fields on the Microstructure Evolution in Strontium Titanate“, Advanced Engineering Materials, Bd. 25, Nr. 18, Art. Nr. 18, 2023.
- M. P. Zahler, S. M. Kraschewski, H. Störmer, D. Gerthsen, M. Bäurer, und W. Rheinheimer, „Grain growth and segregation in Fe-doped SrTiO3: Experimental evidence for solute drag“, Journal of the European Ceramic Society, Bd. 43, Nr. 4, Art. Nr. 4, 2023.
- M. P. Zahler, D. Jennings, M. Kindelmann, O. Guillon, und W. Rheinheimer, „Reactive FAST/SPS sintering of strontium titanate as a tool for grain boundary engineering“, Journal of the European Ceramic Society, Bd. 43, Nr. 15, Art. Nr. 15, 2023.
- L. Porz, M. Scherer, M. Höfling, A. Nakamura, W. Rheinheimer, und J. Rödel, „Dislocation-based high-temperature plasticity of polycrystalline perovskite SrTiO3“, Journal of Materials Science, Bd. 58, Nr. 6, Art. Nr. 6, 2023.
2022
- J. N. Ebert und W. Rheinheimer, „Electric field induced degradation of high-voltage PTCR ceramics“, Open Ceramics, Bd. 11, 2022.
- L. Porz u. a., „Microstructure and conductivity of blacklight-sintered TiO2, YSZ, and Li0.33La0.57TiO3“, Journal of the American Ceramic Society, Bd. 105, Nr. 12, Art. Nr. 12, 2022.
- T. P. Mishra u. a., „Ultra-fast high-temperature sintering of strontium titanate“, Acta Materialia, Bd. 231, 2022.
- L. Porz u. a., „Blacklight sintering of ceramics“, Materials Horizons, Bd. 9, Nr. 6, Art. Nr. 6, 2022.
- P. Odenwald u. a., „The Impact of Lithium Tungstate on the Densification and Conductivity of Phosphate Lithium-Ion Conductors“, ChemElectroChem, Bd. 9, Nr. 5, Art. Nr. 5, 2022.
- W. Rheinheimer, S. Baumann, und T. Frömling, „Editorial ?Conductivity in ceramics: From fundamentals to energy applications?“, Open Ceramics, Bd. 10, 2022.
- S. Stich u. a., „Room-temperature dislocation plasticity in SrTiO3 tuned by defect chemistry“, Journal of the American Ceramic Society, Bd. 105, Nr. 2, Art. Nr. 2, 2022.
2021
- P. Xu u. a., „Origin of High Interfacial Resistance in Solid-State Batteries: LLTO/LCO Half-Cells**“, ChemElectroChem, Bd. 8, Nr. 10, Art. Nr. 10, 2021.
- M. Kindelmann u. a., „Segregation-controlled densification and grain growth in rare earth-doped Y2O3“, Journal of the American Ceramic Society, Bd. 104, Nr. 10, Art. Nr. 10, 2021.
- M. Ihrig u. a., „Li7La3Zr2O12 solid electrolyte sintered by the ultrafast high-temperature method“, Journal of the European Ceramic Society, Bd. 41, Nr. 12, Art. Nr. 12, 2021.
- O. Guillon, R. A. De Souza, T. P. Mishra, und W. Rheinheimer, „Electric-field-assisted processing of ceramics: Nonthermal effects and related mechanisms“, MRS Bulletin, Bd. 46, Nr. 1, Art. Nr. 1, 2021.
- J. E. Blendell und W. Rheinheimer, „Solid-State Sintering“, Encyclopedia of Materials: Technical Ceramics and Glasses: Volume 1-3, Bd. 1, S. V1-249-V1-257, 2021.
- L. Porz u. a., „Dislocation-toughened ceramics“, Materials Horizons, Bd. 8, Nr. 5, Art. Nr. 5, 2021.
- X. L. Phuah, W. Rheinheimer, Akriti, L. Dou, und H. Wang, „Formation of liquid phase and nanostructures in flash sintered ZnO“, Scripta Materialia, Bd. 195, 2021.
- K. S. N. Vikrant u. a., „Modeling of flash sintering of ionic ceramics“, MRS Bulletin, Bd. 46, Nr. 1, Art. Nr. 1, 2021.
2020
- A. P. Schlup, W. J. Costakis, W. Rheinheimer, R. W. Trice, und J. P. Youngblood, „Hot-pressing platelet alumina to transparency“, Journal of the American Ceramic Society, Bd. 103, Nr. 4, Art. Nr. 4, 2020.
- W. Rheinheimer, D. Lowing, und J. E. Blendell, „Grain growth in Nio?MgO and its dependence on faceting and the equilibrium crystal shape“, Scripta Materialia, Bd. 178, S. 236–239, 2020.
- W. Rheinheimer, J. E. Blendell, und C. A. Handwerker, „Equilibrium and kinetic shapes of grains in polycrystals“, Acta Materialia, Bd. 191, S. 101–110, 2020.
- A. Trenkle u. a., „Nondestructive evaluation of 3D microstructure evolution in strontium titanate“, Journal of Applied Crystallography, Bd. 53, S. 349–359, 2020.
- X. L. Phuah u. a., „Field-assisted growth of one-dimensional ZnO nanostructures with high defect density“, Nanotechnology, Nov. 2020, doi: 10.1088/1361-6528/abcb2f.
- K. S. N. Vikrant, W. Rheinheimer, und R. E. Garc\’ıa, „Electrochemical drag effect on grain boundary motion in ionic ceramics“, npj Computational Materials, Bd. 6, Nr. 1, Art. Nr. 1, Okt. 2020, doi: 10.1038/s41524-020-00418-z.
2019
- H. Sternlicht u. a., „Characterization of grain boundary disconnections in SrTiO<inf>3</inf> Part II: the influence of superimposed disconnections on image analysis“, Journal of Materials Science, Bd. 54, Nr. 5, Art. Nr. 5, 2019.
- P. Xu u. a., „Origin of High Interfacial Resistances in Solid-State Batteries: Interdiffusion and Amorphous Film Formation in Li<inf>0.33</inf>La<inf>0.57</inf>TiO<inf>3</inf>/LiMn<inf>2</inf>O<inf>4</inf> Half Cells“, ChemElectroChem, Bd. 6, Nr. 17, Art. Nr. 17, 2019.
- J. Cho u. a., „Study of deformation mechanisms in flash-sintered yttria-stabilized zirconia by in-situ micromechanical testing at elevated temperatures“, Materials Research Letters, Bd. 7, Nr. 5, Art. Nr. 5, 2019.
- W. Rheinheimer, E. Schoof, M. Selzer, B. Nestler, und M. J. Hoffmann, „Non-Arrhenius grain growth in strontium titanate: Quantification of bimodal grain growth“, Acta Materialia, Bd. 174, S. 105–115, 2019.
- T. Leonhard u. a., „Probing the Microstructure of Methylammonium Lead Iodide Perovskite Solar Cells“, Energy Technology, Bd. 7, Nr. 3, Art. Nr. 3, 2019.
- J. Hötzer, M. Seiz, M. Kellner, W. Rheinheimer, und B. Nestler, „Phase-field simulation of solid state sintering“, Acta Materialia, Bd. 164, S. 184–195, 2019.
- W. Rheinheimer, J. P. Parras, J.-H. Preusker, R. A. De Souza, und M. J. Hoffmann, „Grain growth in strontium titanate in electric fields: The impact of space-charge on the grain-boundary mobility“, Journal of the American Ceramic Society, Bd. 102, Nr. 6, Art. Nr. 6, 2019.
- W. Rheinheimer, X. L. Phuah, H. Wang, F. Lemke, M. J. Hoffmann, und H. Wang, „The role of point defects and defect gradients in flash sintering of perovskite oxides“, Acta Materialia, Bd. 165, S. 398–408, 2019.
- H. Sternlicht, W. Rheinheimer, R. E. Dunin-Borkowski, M. J. Hoffmann, und W. D. Kaplan, „Characterization of grain boundary disconnections in SrTiO<inf>3</inf> part I: the dislocation component of grain boundary disconnections“, Journal of Materials Science, Bd. 54, Nr. 5, Art. Nr. 5, 2019.
- V. Rehn, J. Hötzer, W. Rheinheimer, M. Seiz, C. Serr, und B. Nestler, „Phase-field study of grain growth in porous polycrystals“, Acta Materialia, Bd. 174, S. 439–449, 2019.
2018
- V. Rehn u. a., „The impact of pores on microstructure evolution: A phase-field study of pore-grain boundary interaction“, High Performance Computing in Science and Engineering’ 17: Transactions of the High Performance Computing Center, Stuttgart (HLRS) 2017, S. 485–502, 2018.
- M. N. Kelly, W. Rheinheimer, M. J. Hoffmann, und G. S. Rohrer, „Anti-thermal grain growth in SrTiO<inf>3</inf>: Coupled reduction of the grain boundary energy and grain growth rate constant“, Acta Materialia, Bd. 149, S. 11–18, 2018.
- M. Hinterstein u. a., „Influence of microstructure on symmetry determination of piezoceramics“, Journal of Applied Crystallography, Bd. 51, S. 670–678, 2018.
- T. Leonhard u. a., „Probing the microstructure of methylammonium lead iodide solar cells“, Optics InfoBase Conference Papers, Bd. Part F116-OSE 2018, 2018.
2017
- W. Rheinheimer, F. J. Altermann, und M. J. Hoffmann, „The equilibrium crystal shape of strontium titanate: Impact of donor doping“, Scripta Materialia, Bd. 127, S. 118–121, 2017.
- F. Lemke, W. Rheinheimer, und M. J. Hoffmann, „A comparison of power controlled flash sintering and conventional sintering of strontium titanate“, Scripta Materialia, Bd. 130, S. 187–190, 2017.
2016
- W. Rheinheimer und M. J. Hoffmann, „Grain growth in perovskites: What is the impact of boundary transitions?“, Current Opinion in Solid State and Materials Science, Bd. 20, Nr. 5, Art. Nr. 5, 2016.
- W. Rheinheimer, M. Fülling, und M. J. Hoffmann, „Grain growth in weak electric fields in strontium titanate: Grain growth acceleration by defect redistribution“, Journal of the European Ceramic Society, Bd. 36, Nr. 11, Art. Nr. 11, 2016.
- F. Lemke, W. Rheinheimer, und M. J. Hoffmann, „Sintering and grain growth in SrTiO<inf>3</inf>: Impact of defects on kinetics“, Journal of the Ceramic Society of Japan, Bd. 124, Nr. 4, Art. Nr. 4, 2016.
- J. Hötzer, V. Rehn, W. Rheinheimer, M. J. Hoffmann, und B. Nestler, „Phase-field study of pore-grain boundary interaction“, Journal of the Ceramic Society of Japan, Bd. 124, Nr. 4, Art. Nr. 4, 2016.
2015
- W. Rheinheimer u. a., „The equilibrium crystal shape of strontium titanate and its relationship to the grain boundary plane distribution“, Acta Materialia, Bd. 82, S. 32–40, 2015.
- H. Sternlicht, W. Rheinheimer, M. J. Hoffmann, und W. D. Kaplan, „The mechanism of grain boundary motion in SrTiO<inf>3</inf>“, Journal of Materials Science, Bd. 51, Nr. 1, Art. Nr. 1, 2015.
- W. Rheinheimer und M. J. Hoffmann, „Non-Arrhenius behavior of grain growth in strontium titanate: New evidence for a structural transition of grain boundaries“, Scripta Materialia, Bd. 101, S. 68–71, 2015.
- W. Rheinheimer, M. Bäurer, und M. J. Hoffmann, „A reversible wetting transition in strontium titanate and its influence on grain growth and the grain boundary mobility“, Acta Materialia, Bd. 101, S. 80–89, 2015.
- W. Rheinheimer, M. Bäurer, C. A. Handwerker, J. E. Blendell, und M. J. Hoffmann, „Growth of single crystalline seeds into polycrystalline strontium titanate: Anisotropy of the mobility, intrinsic drag effects and kinetic shape of grain boundaries“, Acta Materialia, Bd. 95, S. 111–123, 2015.
2013
- M. Syha u. a., „Combining x-ray diffraction contrast tomography and mesoscale grain growth simulations in strontium titanate: An integrated approach for the investigation of microstructure evolution“, Ceramic Engineering and Science Proceedings, Bd. 33, Nr. 10, Art. Nr. 10, 2013.
2012
- M. Syha u. a., „Three-dimensional grain structure of sintered bulk strontium titanate from X-ray diffraction contrast tomography“, Scripta Materialia, Bd. 66, Nr. 1, Art. Nr. 1, 2012.
- M. Syha u. a., „Interface orientation distribution during grain growth in bulk SrTiO <inf>3</inf> measured by means of 3D X-ray diffraction contrast tomography“, Materials Research Society Symposium Proceedings, Bd. 1421, S. 58–62, 2012.
2010 - 2013 |
Doktorand, Institut für angewandte Materialien (IAM) - Keramische Werkstoffe und Technologien, Karlsruher Institut für Technologie, Titel: "Grenzflächenanisotropie von SrTiO3" |
2013 - 2014 | Postdoktorand in Zusammenarbeit mit der Robert Bosch GmbH und dem Institut für angewandte Materialien (IAM) - Keramische Werkstoffe und Technologien, Karlsruher Institut für Technologie |
2015 - 2017 | Gruppenleiter, Institut für angewandte Materialien (IAM) - Keramische Werkstoffe und Technologien, Karlsruher Institut für Technologie |
2018 - 2019 | Visiting Professor, School of Materials Engineering, Purdue Universität, USA |
2020 | Postdoktorand, Nichtmetallisch-Anorganische Werkstoffe, TU Darmstadt |
2020 - 2022 | Emmy Noether Gruppenleiter, "Grenzflächen in Funktionskeramiken: Ein Weg zur Optimierung von Materialeigenschaften", Forschungszentrum Jülich |
2022 - 2023 | Professor, Grenzflächen in Funktionskeramiken, RWTH Aachen |
seit 2023 | Professor und Institutsleiter, Institut für Fertigungstechnologie keramischer Bauteile, Universität Stuttgart |