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Crystal structure of the hydrogen storage active high entropy phase Tb 0.82 Sm 0.18 Ni 0.83 Co 0.17 Mg Enthalten in Zeitschrift für Kristallographie / New crystal structures Bd. 240, 2025, Nr. 1: 97-99. 03 S.
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2 |
Redox-Active Metaphosphate-Like Terminals Enable High-Capacity MXene Anodes for Ultrafast Na-Ion Storage Sun, Boya. - Dresden : Technische Universität Dresden, 2024
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3 |
Multiphoton‐And SHG‐Active Pyrimidine‐Based Liquid Crystalline Thin Films Toward 3D Optical Data Storage Enthalten in Advanced optical materials 30.09.2024. 9 S.
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4 |
Crystal structure of the hydrogen storage active phase La 12 Mg 46 LiMn Enthalten in Zeitschrift für Kristallographie / New crystal structures Bd. 238, 2023, Nr. 6: 1223-1225. 03 S.
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Comment on “Ice content and interannual water storage changes of an active rock glacier in the dry Andes of Argentina” by Halla et al. (2021) Enthalten in The Cryosphere Bd. 17, 2023, Nr. 2: 699-700. 2 S.
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6 |
Synergetic Coupling of Redox‐Active Sites on Organic Electrode Material for Robust and High‐Performance Sodium‐Ion Storage Enthalten in Angewandte Chemie / International edition 03.11.2023. 9 S.
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7 |
Synergetic Coupling of Redox‐Active Sites on Organic Electrode Material for Robust and High‐Performance Sodium‐Ion Storage Enthalten in Angewandte Chemie 03.11.2023. 9 S.
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Redox‐Active Metaphosphate‐Like Terminals Enable High‐Capacity MXene Anodes for Ultrafast Na‐Ion Storage Sun, Boya. - Aachen : Universitätsbibliothek der RWTH Aachen, 2022
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Response of active catchment water storage capacity to a prolonged meteorological drought and asymptotic climate variation Enthalten in Hydrology and earth system sciences Bd. 26, 2022, Nr. 19: 4853-4874. 22 S.
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10 |
Redox‐Active Metaphosphate‐Like Terminals Enable High‐Capacity MXene Anodes for Ultrafast Na‐Ion Storage Enthalten in Advanced materials 03.03.2022. 11 S.
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