Area of research
Molecular Biology · Materials Chemistry
Research interest
Research interests include Advanced biosensing and bioanalysis techniques, Luminescence Properties of Advanced Materials, Biosensors and Analytical Detection, and Electrochemical sensors and biosensors.
Graphene-Based, Flexible, Wearable Piezoresistive Sensors with High Sensitivity for Tiny Pressure Detection
AI-Enhanced Lateral Flow Assay Enables 3-Minute Quantitative Detection with Laboratory-Grade Accuracy
Substrate cation substitution effectively enhances luminescence and moisture resistance of K2NaScF6:Mn4+ phosphor
Fast response Sc3+-sensitized K2NbF7:Mn4+ phosphors with high luminescence intensity and moisture resistance selected by DFT calculations
In Situ Formation of Ultrathin Composite Shell with Strong Water Resistance on the Surface of K<sub>2</sub>SiF<sub>6</sub>:Mn<sup>4+</sup> via NaClO Treatment
Interlayer synergistic strategy to enhance the water resistance of Mn4+-doped fluoride phosphors under extreme conditions
Striking antithermal quenching and waterproofness of Mn4+-doped fluoride phosphors induced by synergy of double coating and single passivation
Boosting the red emission and luminescent thermostability of GdPO4:Eu3+ phosphors by coating with graphitic carbon nitride
Rapid synthesis of environmentally friendly submicron K2SiF6:Mn4+ phosphors: Advancing micro-LED technology
Protonated organic cations enhance the luminescence performance and thermal stability of fluoride red phosphor K2TiF6:Mn4+
A unique ratiometric fluorescent probe for detection of SO2 derivatives in living cells and real food samples
Ion exchange-promoted surface reduction strategy: For improving the water-resistance of K2SiF6:Mn4+ red phosphors
Luminescence Enhancement of K<sub>2</sub>LiAlF<sub>6</sub>:Mn<sup>4+</sup> Phosphors by Zn<sup>2+</sup>-Mediated Charge Compensation for Fast-Response Backlighting Applications
Mn-Activated Fluoride Phosphors Modified by Surfactant with Outstanding Water Resistance and Luminescent Thermal Properties
Rapidly constructed water-resistant composite shell of fluoride red phosphors K2GeF6:Mn4+ by in-situ passivation
Application of chelation effect in improving the triple properties of K2SiF6Mn4+ phosphors through composite modification
Synthesis, luminescence properties, and thermal decomposition kinetics of NH4GdF4:Eu3+ with an intense negative thermal quenching effect
A simple and universal headspace GC-FID method for accurate quantitation of volatile amines in pharmaceuticals.
Improvement of the luminescent thermal stability and water resistance of K2SiF6:Mn4+ by surface passivation
An organic–inorganic hybrid K<sub>2</sub>TiF<sub>6</sub> : Mn<sup>4+</sup> red-emitting phosphor with remarkable improvement of emission and luminescent thermal stability
Enhancement of the luminescent thermal stability and water resistance of K2TiF6:Mn4+ by organic inorganic hybrid matrix and surface passivation
High water resistance and luminescent thermal stability of organic-inorganic hybrid K2SiF6:Mn4+ red emitting phosphor induced by a multi-dentate ligand
Enhanced luminescence of Mn4+ equivalently doped fluoride phosphors by reducing defects and impurities
Surface passivation to improve the water resistance and fluorescent thermal stability of K2SiF6:Mn4+ by using Na2S2O4 as a passivator
Electrochemiluminescence resonance energy transfer system between ruthenium-based nanosheets and CdS quantum dots for detection of chlorogenic acid
Enhancement in the water resistance and thermal stability of Na<sub>3</sub>HTiF<sub>8</sub>:Mn<sup>4+</sup> by co-doping with organic amine cations
Dual-Amplifying Electrochemiluminescence Sensor Based on CdS QDs@HKUST-1/MWCNTs Composite for Sensitive Catechol Assay
Double coating strategy simultaneously enhances emission, fluorescent thermal stability and water resistance of K2SiF6:Mn4+ phosphor
Highly sensitive LC-MS method for stereochemical quality control of a pharmaceutical drug substance intermediate.
High luminescent thermal stability and water resistance of K2SiF6:Mn4+@CaF2 red emitting phosphor