In-situ electron microscopy mapping of an order-disorder transition in a superionic conductor

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作者
Jaeyoung Heo
Daniel Dumett Torres
Progna Banerjee
Prashant K. Jain
机构
[1] University of Illinois at Urbana−Champaign,Department of Materials Science & Engineering
[2] University of Illinois at Urbana−Champaign,Department of Chemistry
[3] University of Illinois at Urbana−Champaign,Department of Physics
[4] University of Illinois at Urbana−Champaign,Materials Research Laboratory
[5] University of Illinois at Urbana−Champaign,Beckman Institute of Advanced Science and Technology
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Nature Communications | / 10卷
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摘要
Solid-solid phase transitions are processes ripe for the discovery of correlated atomic motion in crystals. Here, we monitor an order-disorder transition in real-time in nanoparticles of the super-ionic solid, Cu2−xSe. The use of in-situ high-resolution transmission electron microscopy allows the spatiotemporal evolution of the phase transition within a single nanoparticle to be monitored at the atomic level. The high spatial resolution reveals that cation disorder is nucleated at low co-ordination, high energy sites of the nanoparticle where cationic vacancy layers intersect with surface facets. Time-dependent evolution of the reciprocal lattice of individual nanoparticles shows that the initiation of cation disorder is accompanied by a ~3% compression of the anionic lattice, establishing a correlation between these two structural features of the lattice. The spatiotemporal insights gained here advance understanding of order-disorder transitions, ionic structure and transport, and the role of nanoparticle surfaces in phase transitions.
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