Three-Dimensional Atomic-Scale Observation of Structural Evolution of Cathode Material in a Working All-Solid-State Battery
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Electrochemical energy storage technologies are critical enablers of the global energy transition. From lithium-ion and solid-state batteries to emerging zinc-based systems and next-generation alloying anodes, understanding dynamic electrochemical processes at the nanoscale is essential for improving energy density, cycle life, safety, and charging performance.
DENSsolutions technologies enable researchers to visualize battery materials under realistic operating conditions, combining electrical biasing, liquid environments, heating, and advanced microscopy techniques to reveal how electrodes evolve during charging and discharging.
Precise electrical biasing and Joule heating for solid-state and dry electrochemistry. Observe delithiation and structural evolution of cathode materials at atomic resolution.
A liquid environment with integrated biasing and heating. Study electrodeposition, dendrite growth and electrode dynamics in real electrolytes as they happen.
Bulk liquid electrochemistry in the SEM. Cycle battery and supercapacitor electrodes in real electrolytes and watch morphology evolve during operation.
Featured research
A selection of recent publications enabled by DENSsolutions in situ TEM platforms.
Electrodeposition plays a central role in battery manufacturing, metal-anode growth, corrosion science, and electrochemical energy storage. In this study, the authors developed a quantitative framework for analyzing electrochemical deposition processes using in situ liquid-phase TEM. The work demonstrates how dynamic nucleation and growth behavior can be measured directly, opening the door to quantitative operando electrochemistry inside the electron microscope.
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