Area of research
Electrical and Electronic Engineering · Automotive Engineering
Research interest
Research interests include Advanced Battery Materials and Technologies, Advancements in Battery Materials, Advanced Battery Technologies Research, and Advanced NMR Techniques and Applications.
Highly Conductive Irreducible Electrolytes for Next-Generation Low-Potential Anodes.
Interphase Design for Lithium-Metal Anodes.
Elucidating the Impact of Functional Additives on the Structure and Ion Dynamics of Hybrid Solid Electrolytes
Beneficial redox activity of halide solid electrolytes empowering high-performance anodes in all-solid-state batteries.
Disorder-Mediated Ionic Conductivity in Irreducible Solid Electrolytes.
Decoding Structural Disorder, Synthesis Methods, and Short- and Long-Range Lithium-Ion Transport in Lithium Argyrodites (Li<sub>6-<i>x</i></sub> PS<sub>5-<i>x</i></sub> Br<sub>1+<i>x</i></sub> ).
Designing Fluorine-Free Electrolytes for Lithium Metal Batteries.
Multifunctional ion-conductive polymer coatings for high-performance sulfide solid-state batteries with Ni-rich cathodes.
Revealing Local Diffusion Dynamics in Hybrid Solid Electrolytes.
Irreducible Solid Electrolytes: New Perspectives on Stabilizing High-Capacity Anodes in Solid-State Batteries.
Designing lithium halide solid electrolytes.
The lasting impact of formation cycling on the Li-ion kinetics between SEI and the Li-metal anode and its correlation with efficiency.
Grain-Boundary-Rich Interphases for Rechargeable Batteries.
Beneficial redox activity of halide solid electrolytes empowering high-performance anodes in all-solid-state batteries
Beneficial redox activity of halide solid electrolytes empowering high-performance anodes in all-solid-state batteries
High entropy liquid electrolytes for lithium batteries.
Investigation of Structure, Ionic Conductivity, and Electrochemical Stability of Halogen Substitution in Solid-State Ion Conductor Li<sub>3</sub>YBr <sub><i>x</i></sub> Cl<sub>6-<i>x</i></sub>.
Li<sub>5</sub>NCl<sub>2</sub>: A Fully-Reduced, Highly-Disordered Nitride-Halide Electrolyte for Solid-State Batteries with Lithium-Metal Anodes.
Exploring the Relationship Between Halide Substitution, Structural Disorder, and Lithium Distribution in Lithium Argyrodites (Li<sub>6-<i>x</i></sub>PS<sub>5-<i>x</i></sub>Br<sub>1+<i>x</i></sub>).
Re-investigating the structure-property relationship of the solid electrolytes Li <sub>3-<i>x</i></sub> In<sub>1-<i>x</i></sub> Zr <sub><i>x</i></sub> Cl<sub>6</sub> and the impact of In-Zr(iv) substitution.
Author Correction: Quantification of the Li-ion diffusion over an interface coating in all-solid-state batteries via NMR measurements.
Improving Li-ion interfacial transport in hybrid solid electrolytes.
Elucidation of Enhanced Lithium Conductivity in Nanoporous Ionogel Using Solid State NMR
High dielectric barium titanate porous scaffold for efficient Li metal cycling in anode-free cells.
Quantification of the Li-ion diffusion over an interface coating in all-solid-state batteries via NMR measurements.
New Series of Ternary Metal Chloride Superionic Conductors for High Performance All-Solid-State Lithium Batteries
Quantifying the local Li-ion diffusion over the grain boundaries of a protective coating, revealing the impact on the macroscopic Li-ion transport in an all-solid-state battery
High dielectric 3D scaffold to suppress Li-dendrites and increase the reversibility of anode-less Li-metal anodes
Clarifying the relationship between redox activity and electrochemical stability in solid electrolytes.