The structure and interaction of ionic liquids (ILs) influence their interfacial composition, and their arrangement (i.e., electric double-layer (EDL) structure), can be controlled by an electric field. Here, we employed a quartz crystal microbalance (QCM) to study the electrical response of two non-halogenated phosphonium orthoborate ILs, dissolved in a polar solvent at the interface. The response is influenced by the applied voltage, the structure of the ions, and the solvent polarizability. One IL showed anomalous electro-responsivity, suggesting a self -assembly bilayer structure of the IL cation at the gold interface, which transitions to a typical EDL structure at higher positive potential. Neutron reflectivity (NR) confirmed this int...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...
The structure and interaction of ionic liquids (ILs) influence their interfacial composition, and th...
The quartz crystal microbalance (QCM) has been used to study how the interfacial layer of an ionic l...
Neutron reflectivity (NR) measurements have been employed to study the interfacial structuring and c...
The quartz crystal microbalance (QCM) has been used to study how the interfacial layer of an ionic l...
We have investigated the electrical double layer (EDL) structure at an interface between ionic liqui...
Ionic liquids (IL) exhibit a remarkably diverse interfacial chemistry, with multiple interfacial lay...
Ionic liquids are organic salts that are in liquid phase at room temperature. Their wide liquidus ra...
Electrochemical quartz crystal microbalance has been used to measure changes in the composition of t...
The behavior of ionic liquids (ILs) at charged interfaces is pivotal for their application in superc...
Understanding the electric field-dependent structure variation of ionic liquids (ILs) near electrode...
Understanding the electric field-dependent structure variation of ionic liquids (ILs) near electrode...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...
The structure and interaction of ionic liquids (ILs) influence their interfacial composition, and th...
The quartz crystal microbalance (QCM) has been used to study how the interfacial layer of an ionic l...
Neutron reflectivity (NR) measurements have been employed to study the interfacial structuring and c...
The quartz crystal microbalance (QCM) has been used to study how the interfacial layer of an ionic l...
We have investigated the electrical double layer (EDL) structure at an interface between ionic liqui...
Ionic liquids (IL) exhibit a remarkably diverse interfacial chemistry, with multiple interfacial lay...
Ionic liquids are organic salts that are in liquid phase at room temperature. Their wide liquidus ra...
Electrochemical quartz crystal microbalance has been used to measure changes in the composition of t...
The behavior of ionic liquids (ILs) at charged interfaces is pivotal for their application in superc...
Understanding the electric field-dependent structure variation of ionic liquids (ILs) near electrode...
Understanding the electric field-dependent structure variation of ionic liquids (ILs) near electrode...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...
Room temperature ionic liquids (ILs) can create a strong accumulation of charges at solid interfaces...