Related Experiment Video
Updated: Mar 19, 2026

Rapid in-silico Battery Electrolyte Electrochemical Reaction Generation using 3T-VASP Multi-Scale Energy Minimization
Published on: August 22, 2025
Strain Engineering to Modify the Electrochemistry of Energy Storage Electrodes
Nitin Muralidharan1,2, Rachel Carter2, Landon Oakes1,2
1Interdisciplinary Materials Science Program, Vanderbilt University, Nashville, TN 37235 USA.
Abstract:
Strain engineering has been a critical aspect of device design in semiconductor manufacturing for the past decade, but remains relatively unexplored for other applications, such as energy storage. Using mechanical strain as an input parameter to modulate electrochemical potentials of metal oxides opens new opportunities intersecting fields of electrochemistry and mechanics. Here we demonstrate that less than 0.1% strain on a Ni-Ti-O based metal-oxide formed on superelastic shape memory NiTi alloys leads to anodic and cathodic peak potential shifts by up to ~30 mV in an electrochemical cell. Moreover, using the superelastic properties of NiTi to enable strain recovery also recovers the electrochemical potential of the metal oxide, providing mechanistic evidence of strain-modified electrochemistry. These results indicate that mechanical energy can be coupled with electrochemical systems to efficiently design and optimize a new class of strain-modulated energy storage materials.
Related Concept Videos
Electrochemical Cells
Processes at Electrodes
The Electrical Double Layer
Electrodeposition
Electrodeposition can...
Electrochemical Systems
Electrogravimetric Analysis: Overview
To test the completeness of the...

