Area of research
Materials Chemistry · Inorganic Chemistry
Research interest
Research interests include Materials science, Supercapacitor, Chemistry, Prussian blue, Electrochemistry, and Metal-organic framework.
Metal–Organic Framework-Derived Bimetallic FeNi Sulfide Nanostructures for Electrolysis of Water and Urea
Fabricated CoFePBA/NF-Derived Mixed Metal Sulfide as Multifunctional Catalysts for Enhanced Urea–Water Electrolysis
Exploring P-(Fe,V)-Codoped Metastable-Phase β-NiMoO<sub>4</sub> for Improving the Performance of Overall Water Splitting
Vanadium<i>-</i>Doped Bimetallic Nanoporous Metal–Organic Frameworks as Bifunctional Electrocatalysts for Urea-Assisted Hydrogen Production
Bimetal-regulated indium-based metal-organic framework family realizing highly efficient photo/electrocatalytic hydrogen evolution reaction
Investigating and improving the water stability of ZIF-L-Co for electrochemical glucose sensors
In Situ Exfoliation Growth Strategy Realizing Controlled Synthesis of 3D to 2D MOF Materials as High-Performance Electrochemical Biosensors
UiO-66-Derived PBA Composite as Multifunctional Electrochemical Non-Enzymatic Sensor Realizing High-Performance Detection of Hydrogen Peroxide and Glucose
(FeMnCe)-co-doped MOF-74 with significantly improved performance for overall water splitting
Iron‐Cobalt‐Cerium Multimetallic Oxides Derived from Prussian Blue Precursors: Enhanced Oxygen Evolution Electrocatalysis
Controllable design of a macroporous PBA as an efficient non-enzymatic electrochemical sensor for glucose detection
One-step synthesis of 2D@3D hollow Prussian blue analogue as a high-performance bifunctional electrochemical sensor
Vanadium-Based Trimetallic Metal-Organic-Framework Family as Extremely High-Performing and Ultrastable Electrocatalysts for Water Splitting
Indium-Based Metal–Organic Framework for Efficient Photocatalytic Hydrogen Evolution
Molecular Regulation Based on Functional Trimetallic Metal–Organic Frameworks for Efficient Oxygen Evolution Reaction
Synthesis and Applications of Prussian Blue and Its Analogues as Electrochemical Sensors
CoFeP nanocube-arrays based on Prussian blue analogues for accelerated oxygen evolution electrocatalysis
MOF-Derived Bimetallic CoFe-PBA Composites as Highly Selective and Sensitive Electrochemical Sensors for Hydrogen Peroxide and Nonenzymatic Glucose in Human Serum
Iron-Based Metal–Organic Framework System as an Efficient Bifunctional Electrocatalyst for Oxygen Evolution and Hydrogen Evolution Reactions
Rational design of bimetallic metal–organic framework composites and their derived sulfides with superior electrochemical performance to remarkably boost oxygen evolution and supercapacitors
The controlled fabrication of hierarchical CoS2@NiS2 core-shell nanocubes by utilizing prussian blue analogue for enhanced capacitive energy storage performance
Morphology control of nanoscale metal-organic frameworks for high-performance supercapacitors
The design and fabrication of ultrahigh-performance supercapacitor electrodes from bimetallic PBA/Ni(OH)<sub>2</sub>/Co<sub>3</sub>O<sub>4</sub>/NF quaternary hybrid nanocomposites
Rational design of multiple Prussian-blue analogues/NF composites for high-performance surpercapacitors
Rationally designed trimetallic Prussian blue analogues on LDH/Ni foam for high performance supercapacitors
Zeolite‐Type Metal Oxalate Frameworks
Hierarchical Two-Dimensional Conductive Metal–Organic Framework/Layered Double Hydroxide Nanoarray for a High-Performance Supercapacitor
A Dual-Functional Luminescent MOF Sensor for Phenylmethanol Molecule and Tb<sup>3+</sup> Cation
Tanghulu-like NiO microcubes on Co3O4 nanowires arrays anchored on Ni foam with improved electrochemical performances for supercapacitors
The interlocked <i>in situ</i> fabrication of graphene@prussian blue nanocomposite as high-performance supercapacitor