Dr. Arshad Aijaz
Rajiv Gandhi Institute of Petroleum Technology, Ruhr University Bochum, Indian Institute of Technology Kanpur, National Institute of Advanced Industrial Science and Technology
About
Dr. Arshad Aijaz is an Assistant Professor, Faculty of Chemistry, at Rajiv Gandhi Institute of Petroleum Technology (RGIPT) - JAIS, India. He completed his Ph.D. in 2011 from Indian Institute of Technology (IIT) Kanpur, and then subsequently moved to National Institute of Advanced Industrial Science and Technology (AIST) - Osaka, Japan for his first postdoctoral research work. He then became JSPS postdoctoral fellow there and worked till end of 2014. He joined second postdoc in January 2015 at Ruhr University - Bochum, Germany. Before joining RGIPT, he was continuing as Humboldt postdoctoral fellow. Dr. Aijaz worked mainly on MOFs, MOF-nanoparticle composites and MOF-derived nanostructured materials, and used them for gas storage, catalysis and electrocatalysis. Currently, his research group is involved in searching nanostructured materials for selective catalytic organic synthesis and electrocatalysts for water splitting and PEM fuel cell.
Employment
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Rajiv Gandhi Institute of Petroleum Technology Assistant Professor/Dr.2017 - Present
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Ruhr University Bochum Postdoc2015 - 2017
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National Institute of Advanced Industrial Science and Technology Postdoc2011 - 2014
Education
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Indian Institute of Technology Kanpur Ph.D.
Projects & Funding
Projects & funding information is unavailable.
Publications (42)
- Ultrasmall FeNiPx nanoparticles embedded into amorphous FeNiOx nanosheets for industrial-level high current density water oxidation Save
- Crystalline FeNiCoPx Nanoparticles Dispersed into an Amorphous FeNiCoOx Matrix as a Bifunctional Electrocatalyst for Ampere-Level Current Density Save
- Reusable Ni‐Immobilized MOF Catalyst for Dehydrogenation of N‐Heterocycles Under Milder Conditions Save
- Synergistically coupled nickel oxide nanoparticles with single-atom nickel catalysts for high-performance wide-temperature adaptable quasi-solid-state zinc–air batteries Save
- Seawater Splitting Using NiFeP-Embedded Porous Carbon Fibers Save
- Yolk–Shell α-/β-Ni(OH)2/Carbon Nanostructure for an Efficient Oxygen Evolution Reaction Save
- Single-Atomic Co–N4 Sites with CrCo Nanoparticles for Metal–Air Battery-Driven Hydrogen Evolution Save
- Dual Single-Atomic Co–Mn Sites in Metal–Organic-Framework-Derived N-Doped Nanoporous Carbon for Electrochemical Oxygen Reduction Save
- Coupling Single-Ni-Atom with Ni–Co Alloy Nanoparticle for Synergistically Enhanced Oxygen Reduction Reaction Save
- Carbon Nanofibers Coated with MOF-Derived Carbon Nanostructures for Vanadium Redox Flow Batteries with Enhanced Electrochemical Activity and Power Density Save