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Microstrain screening towards defect-less layered transition metal oxide cathodes. | LitMetric

AI Article Synopsis

  • Microstrain and surface-to-bulk defect propagation hinder the development of high-performance, durable batteries, but their origins are not well understood.* -
  • Research conducted using advanced X-ray techniques reveals that the arrangement of transition metals in battery material precursors plays a crucial role in nanoscale phase changes and the development of microstrain during synthesis.* -
  • The findings suggest a new approach to battery material synthesis that could minimize defects and improve structural stability, marking a significant advance towards creating ideal battery materials.*

Article Abstract

Microstrain and the associated surface-to-bulk propagation of structural defects are known to be major roadblocks to developing high-energy and long-life batteries. However, the origin and effects of microstrain during the synthesis of battery materials remain largely unknown. Here we perform microstrain screening during real-time and realistic synthesis of sodium layered oxide cathodes. Evidence gathered from multiscale in situ synchrotron X-ray diffraction and microscopy characterization collectively reveals that the spatial distribution of transition metals within individual precursor particles strongly governs the nanoscale phase transformation, local charge heterogeneity and accumulation of microstrain during synthesis. This unexpected dominance of transition metals results in a counterintuitive outward propagation of defect nucleation and growth. These insights direct a more rational synthesis route to reduce the microstrain and crystallographic defects within the bulk lattice, leading to significantly improved structural stability. The present work on microstrain screening represents a critical step towards synthesis-by-design of defect-less battery materials.

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Source
http://dx.doi.org/10.1038/s41565-024-01734-xDOI Listing

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