The conduction of protons and other ions in nanoporous materials, such as metal-organic frameworks (MOFs), is intensively explored with the aim of enhancing the performance of energy-related electrochemical systems. The ionic conductivity, as a key property of the material, is typically determined by using electrochemical impedance spectroscopy (EIS) in connection with a suitable equivalent circuit. Often, equivalent circuits are used where the physical meaning of each component is debatable. Here, we present an equivalent circuit for the ionic conduction of electrolytes in nanoporous, nonconducting materials between inert and impermeable electrodes without faradaic electrode reactions. We show the equivalent circuit perfectly describes the...
The virtually unlimited versatility and unparalleled level of control in the design of metal-organic...
MOFs (1–3) are crystalline materials with a nanoporous, supramolecular structure consisting of metal...
The virtually unlimited versatility and unparalleled level of control in the design of metal-organic...
Nanoporous materials like metal–organic frameworks (MOFs) attract considerable attention as porous h...
Ionic liquids (ILs) show promise as safe electrolytes for electrochemical devices. However, the cond...
The conduction of electrons and ions is central to the operation of modern technologies. In particul...
The poor electrical conductivity of metal-organic frameworks (MOFs) has been a stumbling block for i...
Encapsulation of ionic liquids (ILs) into porous materials can provide environmentally benign solid-...
Ionic liquids (ILs) in nanoporous confinement are the core of many supercapacitors and batteries, wh...
This dissertation documents efforts to synthesize and measure ionically and electronically conductiv...
The combination of ionic liquids (ILs) and metal organic frameworks (MOF) as a new type of hybrid io...
We report the theoretical and experimental investigation of two polyoxometalate-based metal-organic ...
Metal-organic frameworks (MOFs) are intriguing host materials in composite electrolytes due to their...
We performed constant-potential molecular dynamics simulations to analyse the double-layer structure...
We report a strategy for realizing tunable electrical conductivity in metal-organic frameworks (MOFs...
The virtually unlimited versatility and unparalleled level of control in the design of metal-organic...
MOFs (1–3) are crystalline materials with a nanoporous, supramolecular structure consisting of metal...
The virtually unlimited versatility and unparalleled level of control in the design of metal-organic...
Nanoporous materials like metal–organic frameworks (MOFs) attract considerable attention as porous h...
Ionic liquids (ILs) show promise as safe electrolytes for electrochemical devices. However, the cond...
The conduction of electrons and ions is central to the operation of modern technologies. In particul...
The poor electrical conductivity of metal-organic frameworks (MOFs) has been a stumbling block for i...
Encapsulation of ionic liquids (ILs) into porous materials can provide environmentally benign solid-...
Ionic liquids (ILs) in nanoporous confinement are the core of many supercapacitors and batteries, wh...
This dissertation documents efforts to synthesize and measure ionically and electronically conductiv...
The combination of ionic liquids (ILs) and metal organic frameworks (MOF) as a new type of hybrid io...
We report the theoretical and experimental investigation of two polyoxometalate-based metal-organic ...
Metal-organic frameworks (MOFs) are intriguing host materials in composite electrolytes due to their...
We performed constant-potential molecular dynamics simulations to analyse the double-layer structure...
We report a strategy for realizing tunable electrical conductivity in metal-organic frameworks (MOFs...
The virtually unlimited versatility and unparalleled level of control in the design of metal-organic...
MOFs (1–3) are crystalline materials with a nanoporous, supramolecular structure consisting of metal...
The virtually unlimited versatility and unparalleled level of control in the design of metal-organic...