Area of research
Materials Chemistry · Electronic, Optical and Magnetic Materials
Research interest
Research interests include Supercapacitor Materials and Fabrication, Advancements in Battery Materials, MXene and MAX Phase Materials, and 2D Materials and Applications.
Synergistic Enhancements of Niobium Metal–Organic Framework/V
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Composites with Graphene Quantum Dots for Energy Storage and Hydrogen Evolution
Study of optoelectronic, magnetic, and thermoelectric properties of Sr2XOsO6 (X = Y, Lu, Sc) double perovskites for spintronic and data storage devices
Synergistic performance of PANI@Sn-MOF/Ag(NPs) for next-generation supercapatteries and hydrogen evolution reaction
K<sub>2</sub>AlInZ<sub>6</sub> (Z = F, Cl, Br) Double Perovskites: Potential Candidates for Optoelectronic and Photovoltaic Devices.
Advanced MASnI<sub>3</sub> and PTAA-Integrated ZnO<sub>2</sub> Perovskite Composite: Optimizing Stability and Charge Dynamics for Next-Gen Photobatteries.
Innovative MOF-5/V2CTx composite for high-performance, and ultra-fast supercapacitors and hydrogen evolution reaction
Synthesis of Eco-friendly Zn-Ni bimetallic MOFs with biodegradable glycolic acid ligands for enhanced supercapacitor performance and hydrogen evolution reaction
Recent Progress and New Horizons in Emerging Novel MXene-Based Materials for Energy Storage Applications for Current Environmental Remediation and Energy Crises
Effect of electrolyte optimization on nitrogen-doped MXene (Ti<sub>3</sub>C<sub>2</sub>T<sub><i>x</i></sub>) coupled with Cu–BTC MOF for a supercapattery and the hydrogen evolution reaction
Synergistic multi-functional N-doped carbon Nanocage@CNT/ZnMn2O4/Ti3C2 MXene: Powering battery, supercapacitor, and catalyzing hydrogen evolution
Enhancing supercapattery performance and hydrogen evolution reaction through NiSrS/GQDs synergistic hetero-structure
Synergistic Co-MOF/ZnS Composite: Advancing Supercapattery Performance and Catalyzing Hydrogen Evolution Reaction
Enhanced synergistic redox activity of SrCoS/PANI for hybrid energy storage and oxygen evolution reaction
“Synergistic hybridization of Mn-MOF@rGO and Ti3C2 for high-performance supercapattery devices and hydrogen evolution reaction”
Zeolitic Imidazolate Framework-8 enhanced with tungsten carbide for high-performance hybrid supercapacitors and hydrogen evolution
Designing of WS2@NiCoS@ZnS Nanocomposite Electrode Material for High-Performance Energy Storage Applications
Synergistic advancements with Mn-MOF/Nb<sub>2</sub>CT<sub>x</sub> electrodes in bisolvent-in-salt (BSiS) electrolytes for supercapacitor and hydrogen evolution reaction
A synergistic approach: cellulose nanocrystals blended polyimide-based covalent organic framework for advanced supercapacitors and hydrogen evolution
Augmented energy storage and electrocatalytic performance via iron metal–organic framework infused with reduced graphene oxide/graphene quantum dots
Synergistic Advancements in Battery-Grade Energy Storage: AgCoS@MXene@AC Hybrid Electrode Material as an Enhanced Electrocatalyst for Oxygen Reduction Reaction
Optimization of FeMn-MOF doped with silver nanoparticles for high-performance supercapattery devices
Enhancing the performance of hybrid supercapacitor and oxygen evolution reaction via temperature-modulated binder-free (zinc strontium phosphate/nitrogen-graphene quantum dots) electrode
Enhanced supercapacitor performance using NbSn-MOF@GQDs hybrid material: a novel approach for high energy storage and improved electrochemical properties
Electro-optic and thermoelectric reponse of SiP and SiAs for solar and thermal applications
Enhanced photoresponse through van der Waals heterostructure integration: p-GaSe and n-MoSe<sub>2</sub> on h-BN substrate
Incorporation of graphene quantum dots into magnesium copper phosphate (GQDs-MgCuPO<sub>4</sub>) for supercapattery and electrocatalysis applications
Enhanced supercapacitor performance and hydrogen evolution reaction using Nb<sub>2</sub>CT<sub>x</sub> MXene-integrated HKUST-1 MOF
Study of half-metallic ferromagnetism and transport characteristics of double perovskites Sr<sub>2</sub>AIrO<sub>6</sub> (A = Y, Lu, Sc) for spintronic applications.
Synergistic CuCoS-PANI materials for binder-free electrodes in asymmetric supercapacitors and oxygen evolution.
Correction to: Enhancing the performance of hybrid supercapacitor and oxygen evolution reaction via temperature-modulated binder-free (zinc strontium phosphate/nitrogen-graphene quantum dots) electrode