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https://doi.org/10.1002/aenm.202304230
Title: | Effects of Grain Boundaries and Surfaces on Electronic and Mechanical Properties of Solid Electrolytes | Authors: | Xie, Weihang Deng, Zeyu Liu, Zhengyu Famprikis, Theodosios Butler, Keith T Canepa, Pieremanuele |
Keywords: | Science & Technology Physical Sciences Technology Chemistry, Physical Energy & Fuels Materials Science, Multidisciplinary Physics, Applied Physics, Condensed Matter Chemistry Materials Science Physics electronic properties first-principles calculations grain boundaries mechanical properties solid electrolytes surfaces LITHIUM-ION CONDUCTION FRACTURE-TOUGHNESS STATE ELECTROLYTES METAL LI7LA3ZR2O12 PROPAGATION TEMPERATURE INTERPHASE MORPHOLOGY STABILITY |
Issue Date: | 1-Jan-2024 | Publisher: | WILEY-V C H VERLAG GMBH | Citation: | Xie, Weihang, Deng, Zeyu, Liu, Zhengyu, Famprikis, Theodosios, Butler, Keith T, Canepa, Pieremanuele (2024-01-01). Effects of Grain Boundaries and Surfaces on Electronic and Mechanical Properties of Solid Electrolytes. ADVANCED ENERGY MATERIALS. ScholarBank@NUS Repository. https://doi.org/10.1002/aenm.202304230 | Abstract: | Extended defects, including exposed surfaces and grain boundaries (GBs), are critical to the properties of polycrystalline solid electrolytes in all-solid-state batteries (ASSBs). These defects can alter the mechanical and electronic properties of solid electrolytes, with direct manifestations in the performance of ASSBs. Here, by building a library of 590 surfaces and grain boundaries of 11 relevant solid electrolytes—including halides, oxides, and sulfides— their electronic, mechanical, and thermodynamic characteristics are linked to the functional properties of polycrystalline solid electrolytes. It is found that the energy required to mechanically “separate” grain boundaries can be significantly lower than in the bulk region of materials, which can trigger preferential cracking of solid electrolyte particles in the grain boundary regions. The brittleness of ceramic solid electrolytes, inferred from the predicted low fracture toughness at the grain boundaries, contributes to their cracking under local pressure imparted by lithium (sodium) penetration in the grain boundaries. Extended defects of solid electrolytes introduce new electronic interfacial states within bandgaps of solid electrolytes. These states alter and possibly increase locally the availability of free electrons and holes in solid electrolytes. Factoring effects arising from extended defects appear crucial to explain electrochemical and mechanical observations in ASSBs. | Source Title: | ADVANCED ENERGY MATERIALS | URI: | https://scholarbank.nus.edu.sg/handle/10635/248293 | ISSN: | 16146832 16146840 |
DOI: | 10.1002/aenm.202304230 |
Appears in Collections: | Staff Publications Elements |
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2024-01-03-xie-adv-energy-mater.pdf | Published version | 2.63 MB | Adobe PDF | OPEN | Published | View/Download |
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