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Meeting 2024 TMS Annual Meeting & Exhibition
Symposium Mechanical Response of Materials Investigated through Novel In-situ Experiments and Modeling
Presentation Title Controlling Dislocation Motion Using an Electric Field
Author(s) Yu Zou
On-Site Speaker (Planned) Yu Zou
Abstract Scope Dislocation motion, an important mechanism underlying crystal plasticity, is critical for the hardening, processing and application of a wide range of structural and functional materials. For decades, the movement of dislocations has been widely observed in crystalline solids under mechanical loading. However, the goal of manipulating dislocation motion via a non-mechanical field alone remains elusive. Here we present real-time observations of dislocation motion controlled solely by using an external electric field in single-crystalline zinc sulfide—the dislocations can move back and forth depending on the direction of the electric field. We reveal the non-stoichiometric nature of dislocation cores and determine their charge characteristics. This study provides direct evidence of dislocation dynamics controlled by a non-mechanical stimulus and opens up the possibility of modulating dislocation-related properties. Reference: Li, M., et al. Harnessing dislocation motion using an electric field. Nat. Mater. (2023).
Proceedings Inclusion? Planned:

OTHER PAPERS PLANNED FOR THIS SYMPOSIUM

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An Investigation of Mechanical Behaviours of Pure Zirconium With and Without Hydrides Using In-situ Testing Method
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Assessment of Phase-field Simulations of Brittle Fracture Using High Energy Diffraction Microscopy and Tomography
Calcium Dependent Twin Type Selection in Texture Weakened Mg Alloys
Characterization of Damage Accumulation Mechanisms in Porous Carbon Fiber Material by Combining Compression Testing with In-Situ Micro-CT and Digital Image Correlation
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Defect-based Damage Model via a Mesoscale Defect Dynamics Modeling
Deformation Behavior of Plastic Amorphous Aluminum Oxide Thin Films
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Post-Quench Ductility of FeCrAl Alloys Subjected to High Heating Rates
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Rate-dependent Transition of Dislocation Mechanisms in a Magnesium Alloy
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