Related Experiment Video
Updated: Jul 6, 2026

High Resolution Physical Characterization of Single Metallic Nanoparticles
Published on: June 28, 2019
Real-Time and Spatially Resolved Analysis of Ion (De)Intercalation in Nickel Hexacyanoferrate Nanofilms Using
Adaly Garcia1, Samuel Groysman1, Tiffany Smith1
1Department of Chemistry and Biochemistry, California State University, Los Angeles, Los Angeles, California 90032, United States.
Abstract:
Nickel hexacyanoferrate (NiHCF), a Prussian blue analog, is a promising electrode material for energy storage and ion separation technologies. Studying the ion (de)intercalation process in NiHCF films is critical because the reversible insertion and removal of ions into its crystal lattice governs the material's performance in applications such as sodium-ion batteries, electrochromic devices, and selective ion sensing. However, conventional analytical techniques are limited to bulk measurements, which average the electrochemical response and obscure the critical role of local heterogeneities, such as defects and grain boundaries. To overcome this, we employ plasmonic electrochemical microscopy (PEM), a technique that spatially resolves refractive index changes, to study NiHCF films with high resolution. We demonstrate the unique capabilities of PEM to monitor the electrodeposition process in real time, visualize heterogeneous ion (de)intercalation dynamics and their correlation with film thickness and local ion concentrations, and generate a spatially resolved electrochemical impedance map of NiHCF. This provides unprecedented insight into local charge transfer kinetics and establishes PEM as a powerful methodology for deconvoluting complex, localized phenomena in energy storage materials, paving the way for the rational design of more efficient electrodes.
More Related Videos
08:54Performing Spectroscopy on Plasmonic Nanoparticles with Transmission-Based Nomarski-Type Differential Interference Contrast Microscopy
Published on: June 5, 2019
08:31Probing Surface Electrochemical Activity of Nanomaterials using a Hybrid Atomic Force Microscope-Scanning Electrochemical Microscope AFM-SECM
Published on: February 10, 2021