Area of research
Electrical and Electronic Engineering · Molecular Biology
Research interest
Research interests include Advanced Battery Materials and Technologies, Bacterial biofilms and quorum sensing, Advancements in Battery Materials, and Bacterial Genetics and Biotechnology.
High-entropy doping NASICON Cathode breaks the kinetic barriers and suppresses voltage hysteresis for sodium ion batteries
Conversion mechanism of sulfur in room-temperature sodium-sulfur battery with carbonate-based electrolyte
Two‐Alloys‐Layer Modified Current Collector toward the Efficient Plating/Stripping of Sodium in Ester‐Based Electrolyte
Overcoming electron/ion transport barriers in NASICON-type cathode through mixed-conducting interphase
Comparison of chemical property and in vitro digestion behavior of polysaccharides from Auricularia polytricha mycelium and fruit body
Synergizing 3D-printed structure and sodiophilic interface enables highly efficient sodium metal anodes
Molecular‐Crowding Effect Mimicking Cold‐Resistant Plants to Stabilize the Zinc Anode with Wider Service Temperature Range
Modified cathode-electrolyte interphase toward high-performance batteries
Seamless alloying stabilizes solid-electrolyte interphase for highly reversible lithium metal anode
Suppressing lithium dendrites within inorganic solid-state electrolytes
Roadmap on emerging concepts in the physical biology of bacterial biofilms: from surface sensing to community formation
Boosting electrochemical kinetics of S cathodes for room temperature Na/S batteries
Synergistic deficiency and heterojunction engineering boosted VO2 redox kinetics for aqueous zinc-ion batteries with superior comprehensive performance
Synergistic nanostructure and heterointerface design propelled ultra-efficient in-situ self-transformation of zinc-ion battery cathodes with favorable kinetics
Graphene-based composites for electrochemical energy storage
Heterogeneity in surface sensing suggests a division of labor in Pseudomonas aeruginosa populations
Construction of Structure-Tunable Si@Void@C Anode Materials for Lithium-Ion Batteries through Controlling the Growth Kinetics of Resin
Helical antimicrobial peptides assemble into protofibril scaffolds that present ordered dsDNA to TLR9
Stabilizing the structure of LiMn<sub>0.5</sub>Fe<sub>0.5</sub>PO<sub>4</sub><i>via</i> the formation of concentration-gradient hollow spheres with Fe-rich surfaces
Holey graphene modified LiFePO4 hollow microsphere as an efficient binary sulfur host for high-performance lithium-sulfur batteries
Author response: Heterogeneity in surface sensing suggests a division of labor in Pseudomonas aeruginosa populations
Hierarchical design of hollow Co-Ni LDH nanocages strung by MnO2 nanowire with enhanced pseudocapacitive properties
Emergence of complex behavior in pili-based motility in early stages of P. aeruginosa surface adaptation
Liquid-crystalline ordering of antimicrobial peptide–DNA complexes controls TLR9 activation
Psl trails guide exploration and microcolony formation in Pseudomonas aeruginosa biofilms