Area of research
Inorganic Chemistry · Materials Chemistry
Research interest
Research interests include Chemistry, Metal, Metal-organic framework, Redox, Ligand (biochemistry), and Nanotechnology.
Potentially Confusing: Potentials in Electrochemistry
Exploration of the Solid-State Sorption Properties of Shape-Persistent Macrocyclic Nanocarbons as Bulk Materials and Small Aggregates
Dynamic structural flexibility of Fe-MOF-5 evidenced by <sup>57</sup>Fe Mössbauer spectroscopy
Selective Dimerization of Ethylene to 1-Butene with a Porous Catalyst
Dynamic DMF Binding in MOF-5 Enables the Formation of Metastable Cobalt-Substituted MOF-5 Analogues
NO Disproportionation at a Mononuclear Site-Isolated Fe<sup>2+</sup> Center in Fe<sup>2+</sup>-MOF-5
High Electrical Conductivity in Ni<sub>3</sub>(2,3,6,7,10,11-hexaiminotriphenylene)<sub>2</sub>, a Semiconducting Metal–Organic Graphene Analogue
Ligand Redox Non-innocence in the Stoichiometric Oxidation of Mn<sub>2</sub>(2,5-dioxidoterephthalate) (Mn-MOF-74)
Solvent‐Dependent Cation Exchange in Metal–Organic Frameworks
ChemInform Abstract: Cation Exchange at the Secondary Building Units of Metal—Organic Frameworks
Ti<sup>3+</sup>-, V<sup>2+/3+</sup>-, Cr<sup>2+/3+</sup>-, Mn<sup>2+</sup>-, and Fe<sup>2+</sup>-Substituted MOF-5 and Redox Reactivity in Cr- and Fe-MOF-5
Quantification of Site-Specific Cation Exchange in Metal–Organic Frameworks Using Multi-Wavelength Anomalous X-ray Dispersion
Lattice-imposed geometry in metal–organic frameworks: lacunary Zn4O clusters in MOF-5 serve as tripodal chelating ligands for Ni2+
Metal–Metal Interactions in <i>C</i><sub><i>3</i></sub>-Symmetric Diiron Imido Complexes Linked by Phosphinoamide Ligands