Dr. Simon Schweidler
- Group Leader
- Research Unit: Electronic Devices and Systems
- Room: 308
CN 640 - Phone: +49 721 608-28906
- simon schweidler ∂does-not-exist.kit edu
Junior Research Group Leader: MAP-KAT
Innovative Materials Acceleration Platform for Tailored Catalysts for Electrochemical Water Splitting (BMFTR junior research group)
Co-Leader: Nanomaterials for Energy and Electronic Applications
Publikationsliste
Compositional tuning of structural, photothermal and optical properties of La-based high-entropy perovskite oxides
Khandelwal, A.; Kumar Sharma, P. A.; Schweidler, S.; Tischler, P.; Lemmer, U.; Röhm, H.; Colsmann, A.; Aghassi-Hagmann, J.; Breitung, B.
2026. Materials & Design, 268, Art.Nr: 116517. doi:10.1016/j.matdes.2026.116517
Khandelwal, A.; Kumar Sharma, P. A.; Schweidler, S.; Tischler, P.; Lemmer, U.; Röhm, H.; Colsmann, A.; Aghassi-Hagmann, J.; Breitung, B.
2026. Materials & Design, 268, Art.Nr: 116517. doi:10.1016/j.matdes.2026.116517
opXRD: Open Experimental Powder X‐Ray Diffraction Database
Hollarek, D.; Schopmans, H.; Östreicher, J.; Teufel, J.; Cao, B.; Alwen, A.; Schweidler, S.; Singh, M.; Kodalle, T.; Hu, H.; Heymans, G.; Abdelsamie, M.; Hardiagon, A.; Wieczorek, A.; Zhuk, S.; Schwaiger, R.; Siol, S.; Coudert, F.-X.; Wolf, M.; Sutter-Fella, C. M.; Breitung, B.; Hodge, A. M.; Zhang, T.- yi; Friederich, P.
2026. Advanced Intelligent Discovery, 2 (2), 202500044. doi:10.1002/aidi.202500044
Hollarek, D.; Schopmans, H.; Östreicher, J.; Teufel, J.; Cao, B.; Alwen, A.; Schweidler, S.; Singh, M.; Kodalle, T.; Hu, H.; Heymans, G.; Abdelsamie, M.; Hardiagon, A.; Wieczorek, A.; Zhuk, S.; Schwaiger, R.; Siol, S.; Coudert, F.-X.; Wolf, M.; Sutter-Fella, C. M.; Breitung, B.; Hodge, A. M.; Zhang, T.- yi; Friederich, P.
2026. Advanced Intelligent Discovery, 2 (2), 202500044. doi:10.1002/aidi.202500044
Ultrasmall High‐Entropy Materials: Nanoscale Effects, Synthesis, and Mechanistic Insights
He, Y.; Wang, W.; Schweidler, S.; Ma, Y.; Breitung, B.; Brezesinski, T.
2026. Advanced Functional Materials, e76274. doi:10.1002/adfm.76274
He, Y.; Wang, W.; Schweidler, S.; Ma, Y.; Breitung, B.; Brezesinski, T.
2026. Advanced Functional Materials, e76274. doi:10.1002/adfm.76274
Data‐Driven High‐Throughput Volume Fraction Estimation From X‐Ray Diffraction Patterns
Höfer, H. H.; Orth, A.; Wang, R.; Breitung, B.; Schweidler, S.; Aghassi-Hagmann, J.; Reischl, M.
2026. Advanced Intelligent Discovery. doi:10.1002/aidi.202500189
Höfer, H. H.; Orth, A.; Wang, R.; Breitung, B.; Schweidler, S.; Aghassi-Hagmann, J.; Reischl, M.
2026. Advanced Intelligent Discovery. doi:10.1002/aidi.202500189
Optimizing the Performance of Printed Indium Oxide Thin-Film Transistors through Gallium Incorporation
Saghafi, M. K.; Kante, M. V.; Shadkam, R.; Boltynjuk, E.; Schweidler, S.; Breitung, B.; Hirtz, M.; Aghassi-Hagmann, J.; Cadilha Marques, G.
2025. Physica status solidi / A, 222 (24), 2500294. doi:10.1002/pssa.202500294
Saghafi, M. K.; Kante, M. V.; Shadkam, R.; Boltynjuk, E.; Schweidler, S.; Breitung, B.; Hirtz, M.; Aghassi-Hagmann, J.; Cadilha Marques, G.
2025. Physica status solidi / A, 222 (24), 2500294. doi:10.1002/pssa.202500294
Printed High‐Entropy Prussian Blue Analogs for Advanced Non‐Volatile Memristive Devices
He, Y.; Ting, Y.-Y.; Hu, H.; Diemant, T.; Dai, Y.; Lin, J.; Schweidler, S.; Marques, G. C.; Hahn, H.; Ma, Y.; Brezesinski, T.; Kowalski, P. M.; Breitung, B.; Aghassi-Hagmann, J.
2025. Advanced Materials, 37 (8), Art.-Nr.: 2410060. doi:10.1002/adma.202410060
He, Y.; Ting, Y.-Y.; Hu, H.; Diemant, T.; Dai, Y.; Lin, J.; Schweidler, S.; Marques, G. C.; Hahn, H.; Ma, Y.; Brezesinski, T.; Kowalski, P. M.; Breitung, B.; Aghassi-Hagmann, J.
2025. Advanced Materials, 37 (8), Art.-Nr.: 2410060. doi:10.1002/adma.202410060
A Machine Learning Approach to Determine the Band Gap Energy of High-Entropy Oxides Using UV-Vis Spectroscopy
Hoyos-Sanchez, J. P.; Hahn, H.; Jha, S. K.; Schweidler, S.; Velasco, L.
2025. Eng, 6 (12), 340. doi:10.3390/eng6120340
Hoyos-Sanchez, J. P.; Hahn, H.; Jha, S. K.; Schweidler, S.; Velasco, L.
2025. Eng, 6 (12), 340. doi:10.3390/eng6120340
High‐Entropy Metal–Organic Frameworks and Their Derivatives: Advances in Design, Synthesis, and Applications for Catalysis and Energy Storage
Xing, J.; Liu, Y.; Mathew, G.; He, Q.; Aghassi-Hagmann, J.; Schweidler, S.; Breitung, B.
2024. Advanced Science, Art.-Nr.: 2411175. doi:10.1002/advs.202411175
Xing, J.; Liu, Y.; Mathew, G.; He, Q.; Aghassi-Hagmann, J.; Schweidler, S.; Breitung, B.
2024. Advanced Science, Art.-Nr.: 2411175. doi:10.1002/advs.202411175
Delithiation-induced secondary phase formation in Li-rich cathode materials
Ting, Y.-Y.; Breitung, B.; Schweidler, S.; Wang, J.; Eikerling, M.; Kowalski, P. M.; Guillon, O.; Kaghazchi, P.
2024. Journal of Materials Chemistry A, 12 (47), 33268–33276. doi:10.1039/D4TA06030J
Ting, Y.-Y.; Breitung, B.; Schweidler, S.; Wang, J.; Eikerling, M.; Kowalski, P. M.; Guillon, O.; Kaghazchi, P.
2024. Journal of Materials Chemistry A, 12 (47), 33268–33276. doi:10.1039/D4TA06030J
Quantitative Convolutional Neural Network Based Multi-Phase XRD Pattern Analysis
Höfer, H. H.; Orth, A.; Schweidler, S.; Breitung, B.; Aghassi-Hagmann, J.; Reischl, M.
2024. Current Directions in Biomedical Engineering, 10 (4), 307–310. doi:10.1515/cdbme-2024-2075
Höfer, H. H.; Orth, A.; Schweidler, S.; Breitung, B.; Aghassi-Hagmann, J.; Reischl, M.
2024. Current Directions in Biomedical Engineering, 10 (4), 307–310. doi:10.1515/cdbme-2024-2075
Layered high-entropy sulfides: boosting electrocatalytic performance for hydrogen evolution reaction by cocktail effects
Lin, L.; Ding, Z.; Karkera, G.; Diemant, T.; Chen, D.-H.; Fichtner, M.; Hahn, H.; Aghassi-Hagmann, J.; Breitung, B.; Schweidler, S.
2024. Materials Futures, 3 (4), Article no: 045102. doi:10.1088/2752-5724/ad8a78
Lin, L.; Ding, Z.; Karkera, G.; Diemant, T.; Chen, D.-H.; Fichtner, M.; Hahn, H.; Aghassi-Hagmann, J.; Breitung, B.; Schweidler, S.
2024. Materials Futures, 3 (4), Article no: 045102. doi:10.1088/2752-5724/ad8a78
Photonic Synthesis and Coating of High‐Entropy Oxide on Layered Ni‐Rich Cathode Particles
Cui, Y.; Tang, Y.; Lin, J.; Wang, J.; Hahn, H.; Breitung, B.; Schweidler, S.; Brezesinski, T.; Botros, M.
2024. Small Structures, 5 (11), Art.-Nr.: 2400197. doi:10.1002/sstr.202400197
Cui, Y.; Tang, Y.; Lin, J.; Wang, J.; Hahn, H.; Breitung, B.; Schweidler, S.; Brezesinski, T.; Botros, M.
2024. Small Structures, 5 (11), Art.-Nr.: 2400197. doi:10.1002/sstr.202400197
Leveraging Entropy and Crystal Structure Engineering in Prussian Blue Analogue Cathodes for Advancing Sodium-Ion Batteries
He, Y.; Dreyer, S. L.; Akçay, T.; Diemant, T.; Mönig, R.; Ma, Y.; Tang, Y.; Wang, H.; Lin, J.; Schweidler, S.; Fichtner, M.; Hahn, H.; Brezesinski, T.; Breitung, B.; Ma, Y.
2024. ACS Nano, 18 (35), 24441–24457. doi:10.1021/acsnano.4c07528
He, Y.; Dreyer, S. L.; Akçay, T.; Diemant, T.; Mönig, R.; Ma, Y.; Tang, Y.; Wang, H.; Lin, J.; Schweidler, S.; Fichtner, M.; Hahn, H.; Brezesinski, T.; Breitung, B.; Ma, Y.
2024. ACS Nano, 18 (35), 24441–24457. doi:10.1021/acsnano.4c07528
Using the High-Entropy Approach to Obtain Multimetal Oxide Nanozymes: Library Synthesis, In Silico Structure–Activity, and Immunoassay Performance
Phan-Xuan, T.; Schweidler, S.; Hirte, S.; Schüller, M.; Lin, L.; Khandelwal, A.; Wang, K.; Schützke, J.; Reischl, M.; Kübel, C.; Hahn, H.; Bello, G.; Kirchmair, J.; Aghassi-Hagmann, J.; Brezesinski, T.; Breitung, B.; Dailey, L. A.
2024. ACS Nano, 18 (29), 19024–19037. doi:10.1021/acsnano.4c03053
Phan-Xuan, T.; Schweidler, S.; Hirte, S.; Schüller, M.; Lin, L.; Khandelwal, A.; Wang, K.; Schützke, J.; Reischl, M.; Kübel, C.; Hahn, H.; Bello, G.; Kirchmair, J.; Aghassi-Hagmann, J.; Brezesinski, T.; Breitung, B.; Dailey, L. A.
2024. ACS Nano, 18 (29), 19024–19037. doi:10.1021/acsnano.4c03053
Influence of Zr-doping on the structure and transport properties of rare earth high-entropy oxides
Kante, M. V.; Lakshmi Nilayam, A. R.; Kreka, K.; Hahn, H.; Bhattacharya, S. S.; Velasco, L.; Tarancón, A.; Kübel, C.; Schweidler, S.; Botros, M.
2024. Journal of Physics: Energy, 6 (3), Art.-Nr.: 035001. doi:10.1088/2515-7655/ad423c
Kante, M. V.; Lakshmi Nilayam, A. R.; Kreka, K.; Hahn, H.; Bhattacharya, S. S.; Velasco, L.; Tarancón, A.; Kübel, C.; Schweidler, S.; Botros, M.
2024. Journal of Physics: Energy, 6 (3), Art.-Nr.: 035001. doi:10.1088/2515-7655/ad423c
Influence of Zr-doping on structure and transport properties of rare earth high-entropy oxides
Kante, M. V.; Botros, M.; Schweidler, S.; Raj Lakshmi Nilayam, A.
2024, April 29. doi:10.35097/GcZKqFdyZsBbHMjv
Kante, M. V.; Botros, M.; Schweidler, S.; Raj Lakshmi Nilayam, A.
2024, April 29. doi:10.35097/GcZKqFdyZsBbHMjv
Entropy-assisted epitaxial coating
Schweidler, S.; Brezesinski, T.; Breitung, B.
2024. Nature Energy, 9 (3), 240–241. doi:10.1038/s41560-024-01468-z
Schweidler, S.; Brezesinski, T.; Breitung, B.
2024. Nature Energy, 9 (3), 240–241. doi:10.1038/s41560-024-01468-z
High-entropy materials for energy and electronic applications
Schweidler, S.; Botros, M.; Strauss, F.; Wang, Q.; Ma, Y.; Velasco, L.; Cadilha Marques, G.; Sarkar, A.; Kübel, C.; Hahn, H.; Aghassi-Hagmann, J.; Brezesinski, T.; Breitung, B.
2024. Nature Reviews Materials, 9 (4), 266–281. doi:10.1038/s41578-024-00654-5
Schweidler, S.; Botros, M.; Strauss, F.; Wang, Q.; Ma, Y.; Velasco, L.; Cadilha Marques, G.; Sarkar, A.; Kübel, C.; Hahn, H.; Aghassi-Hagmann, J.; Brezesinski, T.; Breitung, B.
2024. Nature Reviews Materials, 9 (4), 266–281. doi:10.1038/s41578-024-00654-5
Accelerating Materials Discovery: Automated Identification of Prospects from X‐Ray Diffraction Data in Fast Screening Experiments
Schuetzke, J.; Schweidler, S.; Muenke, F. R.; Orth, A.; Khandelwal, A. D.; Breitung, B.; Aghassi-Hagmann, J.; Reischl, M.
2024. Advanced Intelligent Systems, 6 (3), Art.-Nr.: 2300501. doi:10.1002/aisy.202300501
Schuetzke, J.; Schweidler, S.; Muenke, F. R.; Orth, A.; Khandelwal, A. D.; Breitung, B.; Aghassi-Hagmann, J.; Reischl, M.
2024. Advanced Intelligent Systems, 6 (3), Art.-Nr.: 2300501. doi:10.1002/aisy.202300501
High entropy molybdate-derived FeOOH catalyzes oxygen evolution reaction in alkaline media
Lee, S.; Bai, L.; Jeong, J.; Stenzel, D.; Schweidler, S.; Breitung, B.
2023. Electrochimica Acta, 463, 142775. doi:10.1016/j.electacta.2023.142775
Lee, S.; Bai, L.; Jeong, J.; Stenzel, D.; Schweidler, S.; Breitung, B.
2023. Electrochimica Acta, 463, 142775. doi:10.1016/j.electacta.2023.142775
High‐Throughput Screening of High‐Entropy Fluorite‐Type Oxides as Potential Candidates for Photovoltaic Applications
Kumbhakar, M.; Khandelwal, A.; Jha, S. K.; Kante, M. V.; Keßler, P.; Lemmer, U.; Hahn, H.; Aghassi-Hagmann, J.; Colsmann, A.; Breitung, B.; Velasco, L.; Schweidler, S.
2023. Advanced Energy Materials, 13 (24), Art.-Nr.: 2204337. doi:10.1002/aenm.202204337
Kumbhakar, M.; Khandelwal, A.; Jha, S. K.; Kante, M. V.; Keßler, P.; Lemmer, U.; Hahn, H.; Aghassi-Hagmann, J.; Colsmann, A.; Breitung, B.; Velasco, L.; Schweidler, S.
2023. Advanced Energy Materials, 13 (24), Art.-Nr.: 2204337. doi:10.1002/aenm.202204337
Evaluation of electrospun spinel-type high-entropy (Cr₀.₂Mn₀.₂Fe₀.₂Co₀.₂Ni₀.₂)₃O₄, (Cr₀.₂Mn₀.₂Fe₀.₂Co₀.₂Zn₀.₂)₃O₄ and (Cr₀.₂Mn₀.₂Fe₀.₂Ni₀.₂Zn₀.₂)₃O₄ oxide nanofibers as electrocatalysts for oxygen evolution in alkaline medium
Triolo, C.; Schweidler, S.; Lin, L.; Pagot, G.; Di Noto, V.; Breitung, B.; Santangelo, S.
2023. Energy Advances, 2 (5), 667–678. doi:10.1039/D3YA00062A
Triolo, C.; Schweidler, S.; Lin, L.; Pagot, G.; Di Noto, V.; Breitung, B.; Santangelo, S.
2023. Energy Advances, 2 (5), 667–678. doi:10.1039/D3YA00062A
High-Entropy Sulfides as Highly Effective Catalysts for the Oxygen Evolution Reaction
Lin, L.; Ding, Z.; Karkera, G.; Diemant, T.; Kante, M. V.; Agrawal, D.; Hahn, H.; Aghassi, J.; Fichtner, M.; Breitung, B.; Schweidler, S.
2023, May 16. doi:10.5445/IR/1000158543
Lin, L.; Ding, Z.; Karkera, G.; Diemant, T.; Kante, M. V.; Agrawal, D.; Hahn, H.; Aghassi, J.; Fichtner, M.; Breitung, B.; Schweidler, S.
2023, May 16. doi:10.5445/IR/1000158543
High‐Entropy Sulfides as Highly Effective Catalysts for the Oxygen Evolution Reaction
Lin, L.; Ding, Z.; Karkera, G.; Diemant, T.; Kante, M. V. V.; Agrawal, D.; Hahn, H.; Aghassi-Hagmann, J.; Fichtner, M.; Breitung, B.; Schweidler, S.
2023. Small Structures, 4 (9), Art.-Nr.: 2300012. doi:10.1002/sstr.202300012
Lin, L.; Ding, Z.; Karkera, G.; Diemant, T.; Kante, M. V. V.; Agrawal, D.; Hahn, H.; Aghassi-Hagmann, J.; Fichtner, M.; Breitung, B.; Schweidler, S.
2023. Small Structures, 4 (9), Art.-Nr.: 2300012. doi:10.1002/sstr.202300012
Synthesis of perovskite-type high-entropy oxides as potential candidates for oxygen evolution
Schweidler, S.; Tang, Y.; Lin, L.; Karkera, G.; Alsawaf, A.; Bernadet, L.; Breitung, B.; Hahn, H.; Fichtner, M.; Tarancón, A.; Botros, M.
2022. Frontiers in Energy Research, 10, Art.-Nr.: 983979. doi:10.3389/fenrg.2022.983979
Schweidler, S.; Tang, Y.; Lin, L.; Karkera, G.; Alsawaf, A.; Bernadet, L.; Breitung, B.; Hahn, H.; Fichtner, M.; Tarancón, A.; Botros, M.
2022. Frontiers in Energy Research, 10, Art.-Nr.: 983979. doi:10.3389/fenrg.2022.983979
High entropy fluorides as conversion cathodes with tailorable electrochemical performance
Cui, Y.; Sukkurji, P. A.; Wang, K.; Azmi, R.; Nunn, A. M.; Hahn, H.; Breitung, B.; Ting, Y.-Y.; Kowalski, P. M.; Kaghazchi, P.; Wang, Q.; Schweidler, S.; Botros, M.
2022. Journal of Energy Chemistry, 72, 342–351. doi:10.1016/j.jechem.2022.05.032
Cui, Y.; Sukkurji, P. A.; Wang, K.; Azmi, R.; Nunn, A. M.; Hahn, H.; Breitung, B.; Ting, Y.-Y.; Kowalski, P. M.; Kaghazchi, P.; Wang, Q.; Schweidler, S.; Botros, M.
2022. Journal of Energy Chemistry, 72, 342–351. doi:10.1016/j.jechem.2022.05.032
High-Entropy Sulfides as Electrode Materials for Li-Ion Batteries
Lin, L.; Wang, K.; Sarkar, A.; Njel, C.; Karkera, G.; Wang, Q.; Azmi, R.; Fichtner, M.; Hahn, H.; Schweidler, S.; Breitung, B.
2022. Advanced Energy Materials, 12 (8), Art.-Nr. 2103090. doi:10.1002/aenm.202103090
Lin, L.; Wang, K.; Sarkar, A.; Njel, C.; Karkera, G.; Wang, Q.; Azmi, R.; Fichtner, M.; Hahn, H.; Schweidler, S.; Breitung, B.
2022. Advanced Energy Materials, 12 (8), Art.-Nr. 2103090. doi:10.1002/aenm.202103090
Synthesis and Characterization of High‐Entropy CrMoNbTaVW Thin Films Using High‐Throughput Methods
Schweidler, S.; Schopmans, H.; Reiser, P.; Boltynjuk, E.; Olaya, J. J.; Singaraju, S. A.; Fischer, F.; Hahn, H.; Friederich, P.; Velasco, L.
2022. Advanced Engineering Materials, 25 (2), Art.Nr. 2200870. doi:10.1002/adem.202200870
Schweidler, S.; Schopmans, H.; Reiser, P.; Boltynjuk, E.; Olaya, J. J.; Singaraju, S. A.; Fischer, F.; Hahn, H.; Friederich, P.; Velasco, L.
2022. Advanced Engineering Materials, 25 (2), Art.Nr. 2200870. doi:10.1002/adem.202200870
High-entropy spinel-structure oxides as oxygen evolution reaction electrocatalyst
Stenzel, D.; Zhou, B.; Okafor, C.; Kante, M. V.; Lin, L.; Melinte, G.; Bergfeldt, T.; Botros, M.; Hahn, H.; Breitung, B.; Schweidler, S.
2022. Frontiers in Energy Research, 10, Art.-Nr.: 942314. doi:10.3389/fenrg.2022.942314
Stenzel, D.; Zhou, B.; Okafor, C.; Kante, M. V.; Lin, L.; Melinte, G.; Bergfeldt, T.; Botros, M.; Hahn, H.; Breitung, B.; Schweidler, S.
2022. Frontiers in Energy Research, 10, Art.-Nr.: 942314. doi:10.3389/fenrg.2022.942314
Acoustic Emission Monitoring of High-Entropy Oxyfluoride Rock-Salt Cathodes during Battery Operation
Schweidler, S.; Dreyer, S. L.; Breitung, B.; Brezesinski, T.
2022. Coatings, 12 (3), 402. doi:10.3390/coatings12030402
Schweidler, S.; Dreyer, S. L.; Breitung, B.; Brezesinski, T.
2022. Coatings, 12 (3), 402. doi:10.3390/coatings12030402
Understanding the formation of antiphase boundaries in layered oxide cathode materials and their evolution upon electrochemical cycling
Ahmed, S.; Pokle, A.; Bianchini, M.; Schweidler, S.; Beyer, A.; Brezesinski, T.; Janek, J.; Volz, K.
2021. Matter, 4 (12), 3953–3966. doi:10.1016/j.matt.2021.10.001
Ahmed, S.; Pokle, A.; Bianchini, M.; Schweidler, S.; Beyer, A.; Brezesinski, T.; Janek, J.; Volz, K.
2021. Matter, 4 (12), 3953–3966. doi:10.1016/j.matt.2021.10.001
Operando acoustic emission monitoring of degradation processes in lithium-ion batteries with a high-entropy oxide anode
Schweidler, S.; Dreyer, S. L.; Breitung, B.; Brezesinski, T.
2021. Scientific reports, 11 (1), Article no: 23381. doi:10.1038/s41598-021-02685-2
Schweidler, S.; Dreyer, S. L.; Breitung, B.; Brezesinski, T.
2021. Scientific reports, 11 (1), Article no: 23381. doi:10.1038/s41598-021-02685-2
High Entropy and Low Symmetry: Triclinic High-Entropy Molybdates
Stenzel, D.; Issac, I.; Wang, K.; Azmi, R.; Singh, R.; Jeong, J.; Najib, S.; Bhattacharya, S. S.; Hahn, H.; Brezesinski, T.; Schweidler, S.; Breitung, B.
2021. Inorganic chemistry, 60 (1), 115–123. doi:10.1021/acs.inorgchem.0c02501
Stenzel, D.; Issac, I.; Wang, K.; Azmi, R.; Singh, R.; Jeong, J.; Najib, S.; Bhattacharya, S. S.; Hahn, H.; Brezesinski, T.; Schweidler, S.; Breitung, B.
2021. Inorganic chemistry, 60 (1), 115–123. doi:10.1021/acs.inorgchem.0c02501
Design-of-experiments-guided optimization of slurry-cast cathodes for solid-state batteries
Teo, J. H.; Strauss, F.; Tripković, Đ.; Schweidler, S.; Ma, Y.; Bianchini, M.; Janek, J.; Brezesinski, T.
2021. Cell Reports Physical Science, 2 (6), Art.-Nr.: 100465. doi:10.1016/j.xcrp.2021.100465
Teo, J. H.; Strauss, F.; Tripković, Đ.; Schweidler, S.; Ma, Y.; Bianchini, M.; Janek, J.; Brezesinski, T.
2021. Cell Reports Physical Science, 2 (6), Art.-Nr.: 100465. doi:10.1016/j.xcrp.2021.100465
High-entropy energy materials: Challenges and new opportunities
Ma, Y.; Ma, Y.; Wang, Q.; Schweidler, S.; Botros, M.; Fu, T.; Hahn, H.; Brezesinski, T.; Breitung, B.
2021. Energy and Environmental Science, 14 (5), 2883–2905. doi:10.1039/d1ee00505g
Ma, Y.; Ma, Y.; Wang, Q.; Schweidler, S.; Botros, M.; Fu, T.; Hahn, H.; Brezesinski, T.; Breitung, B.
2021. Energy and Environmental Science, 14 (5), 2883–2905. doi:10.1039/d1ee00505g
In Situ Monitoring of Thermally Induced Effects in Nickel-Rich Layered Oxide Cathode Materials at the Atomic Level
Pokle, A.; Ahmed, S.; Schweidler, S.; Bianchini, M.; Brezesinski, T.; Beyer, A.; Janek, J.; Volz, K.
2020. ACS applied materials & interfaces, 12 (51), 57047–57054. doi:10.1021/acsami.0c16685
Pokle, A.; Ahmed, S.; Schweidler, S.; Bianchini, M.; Brezesinski, T.; Beyer, A.; Janek, J.; Volz, K.
2020. ACS applied materials & interfaces, 12 (51), 57047–57054. doi:10.1021/acsami.0c16685
The Sound of Batteries: An Operando Acoustic Emission Study of the LiNiO Cathode in Li–Ion Cells
Schweidler, S.; Bianchini, M.; Hartmann, P.; Brezesinski, T.; Janek, J.
2020. Batteries & supercaps, 3 (10), 1021–1027. doi:10.1002/batt.202000099
Schweidler, S.; Bianchini, M.; Hartmann, P.; Brezesinski, T.; Janek, J.
2020. Batteries & supercaps, 3 (10), 1021–1027. doi:10.1002/batt.202000099
Influence of NCM Particle Cracking on Kinetics of Lithium-Ion Batteries with Liquid or Solid Electrolyte
Ruess, R.; Schweidler, S.; Hemmelmann, H.; Conforto, G.; Bielefeld, A.; Weber, D. A.; Sann, J.; Elm, M. T.; Janek, J.
2020. Journal of the Electrochemical Society, 167 (10), Art. Nr.: 100532. doi:10.1149/1945-7111/ab9a2c
Ruess, R.; Schweidler, S.; Hemmelmann, H.; Conforto, G.; Bielefeld, A.; Weber, D. A.; Sann, J.; Elm, M. T.; Janek, J.
2020. Journal of the Electrochemical Society, 167 (10), Art. Nr.: 100532. doi:10.1149/1945-7111/ab9a2c
Kinetic Limitations in Cycled Nickel-Rich NCM Cathodes and Their Effect on the Phase Transformation Behavior
Schweidler, S.; Biasi, L. de; Hartmann, P.; Brezesinski, T.; Janek, J.
2020. ACS applied energy materials, 3 (3), 2821–2827. doi:10.1021/acsaem.9b02483
Schweidler, S.; Biasi, L. de; Hartmann, P.; Brezesinski, T.; Janek, J.
2020. ACS applied energy materials, 3 (3), 2821–2827. doi:10.1021/acsaem.9b02483
Rational Design of Quasi-Zero-Strain NCM Cathode Materials for Minimizing Volume Change Effects in All-Solid-State Batteries
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2020. ACS materials letters, 2 (1), 84–88. doi:10.1021/acsmaterialslett.9b00441
The effect of gallium substitution on the structure and electrochemical performance of LiNiO₂ in lithium-ion batteries
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From LiNiO₂ to Li₂NiO₃ : Synthesis, Structures and Electrochemical Mechanisms in Li-Rich Nickel Oxides
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The Role of Intragranular Nanopores in Capacity Fade of Nickel-Rich Layered Li(Ni Co Mn )O Cathode Materials
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2019. ACS nano, 13 (9), 10694–10704. doi:10.1021/acsnano.9b05047
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2019. ACS nano, 13 (9), 10694–10704. doi:10.1021/acsnano.9b05047
Investigation into Mechanical Degradation and Fatigue of High-Ni NCM Cathode Material: A Long-Term Cycling Study of Full Cells
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2019. ACS applied energy materials, 2 (10), 7375–7384. doi:10.1021/acsaem.9b01354
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Silicon nanoparticles with a polymer-derived carbon shell for improved lithium-ion batteries: Investigation into volume expansion, gas evolution, and particle fracture
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2018. ACS omega, 3 (12), 16706–16713. doi:10.1021/acsomega.8b02541
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2018. ACS omega, 3 (12), 16706–16713. doi:10.1021/acsomega.8b02541
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2018. Energy & environmental science, 11 (8), 2142–2158. doi:10.1039/c8ee00907d
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2018. Energy & environmental science, 11 (8), 2142–2158. doi:10.1039/c8ee00907d
Volume Changes of Graphite Anodes Revisited : A Combined Operando X-ray Diffraction and In Situ Pressure Analysis Study
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2018. The journal of physical chemistry <Washington, DC> / C, 122 (16), 8829–8835. doi:10.1021/acs.jpcc.8b01873
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