001     616009
005     20250715171348.0
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082 _ _ |a 660
100 1 _ |a Domröse, Till
|0 0000-0002-9641-726X
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245 _ _ |a Nanoscale Operando Imaging of Electrically Driven Charge-Density Wave Phase Transitions
260 _ _ |a Washington, DC
|c 2024
|b ACS Publ.
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520 _ _ |a Structural transformations in strongly correlated materials promise efficient and fast control of materials’ properties via electrical or optical stimulation. The desired functionality of devices operating based on phase transitions, however, will also be influenced by nanoscale heterogeneity. Experimentally characterizing the relationship between microstructure and phase switching remains challenging, as nanometer resolution and high sensitivity to subtle structural modifications are required. Here, we demonstrate nanoimaging of a current-induced phase transformation in the charge-density wave (CDW) material 1T-TaS$_2$. Combining electrical characterizations with tailored contrast enhancement, we correlate macroscopic resistance changes with the nanoscale nucleation and growth of CDW phase domains. In particular, we locally determine the transformation barrier in the presence of dislocations and strain, underlining their non-negligible impact on future functional devices. Thereby, our results demonstrate the merit of tailored contrast enhancement and beam shaping for advanced operando microscopy of quantum materials and devices.
536 _ _ |a 632 - Materials – Quantum, Complex and Functional Materials (POF4-632)
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536 _ _ |a SFB 1073 A05 - Nanoskalige Untersuchung raumzeitlicher Relaxation in heterogenen Systemen (A05) (240159667)
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536 _ _ |a DFG project G:(GEPRIS)217133147 - SFB 1073: Kontrolle von Energiewandlung auf atomaren Skalen (217133147)
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542 _ _ |i 2024-09-24
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700 1 _ |a Fernandez, Noelia
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700 1 _ |a Eckel, Christian
|0 0000-0001-7888-2574
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700 1 _ |a Rossnagel, Kai
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700 1 _ |a Weitz, R. Thomas
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700 1 _ |a Ropers, Claus
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773 1 8 |a 10.1021/acs.nanolett.4c03324
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|t Nano Letters
|v 24
|y 2024
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773 _ _ |a 10.1021/acs.nanolett.4c03324
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856 4 _ |y OpenAccess
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914 1 _ |y 2024
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