Area of research
Electrical and Electronic Engineering · Inorganic Chemistry
Research interest
Research focused on Metal-organic framework and Catalysis, with related work in Nanotechnology, Metal, Zeolitic imidazolate framework. Notable publications include 'Self‐Supporting Metal–Organic Layers as Single‐Site Solid Catalysts', 'Networking Pyrolyzed Zeolitic Imidazolate Frameworks by Carbon Nanotubes Improves Conductivity and Enhances Oxygen‐Reduction Performance in Polymer‐Electrolyte‐Membrane Fuel Cells', and 'Förster Energy Transport in Metal–Organic Frameworks Is Beyond Step-by-Step Hopping'.
Machine-Learning-Guided Morphology Engineering of Nanoscale Metal-Organic Frameworks
Cooperative Stabilization of the [Pyridinium-CO<sub>2</sub>-Co] Adduct on a Metal–Organic Layer Enhances Electrocatalytic CO<sub>2</sub> Reduction
Two-Dimensional Metal–Organic Layers on Carbon Nanotubes to Overcome Conductivity Constraint in Electrocatalysis
Self‐Supporting Metal–Organic Layers as Single‐Site Solid Catalysts
Networking Pyrolyzed Zeolitic Imidazolate Frameworks by Carbon Nanotubes Improves Conductivity and Enhances Oxygen‐Reduction Performance in Polymer‐Electrolyte‐Membrane Fuel Cells
Förster Energy Transport in Metal–Organic Frameworks Is Beyond Step-by-Step Hopping
A Rhenium‐Functionalized Metal–Organic Framework as a Single‐Site Catalyst for Photochemical Reduction of Carbon Dioxide
Self‐Supporting Metal–Organic Layers as Single‐Site Solid Catalysts
Pre-concentration and energy transfer enable the efficient luminescence sensing of transition metal ions by metal–organic frameworks