The distribution of ion conductive channels on the Nafion membrane surface, which determines the formation of the three-phase boundary, plays a very important role in improving the performance of proton-exchange membrane fuel cells. Therefore, understanding the microstructures at the catalyst layer/membrane interfaces of proton-exchange membranes is essential. Although current-sensing atomic force microscopy (AFM) can present some surface conductance data, localized impedance measurement providing more accurate proton-transport information is desirable. To obtain this information, in our study, localized electrochemical impedance spectroscopy was measured automatically with a home-built AFM-electrochemical impedance spectroscopy setup in wh...
Proton-conducting membranes are a key component of PEM fuel cells: the properties of these membranes...
Using material-sensitive and conductive atomic force microscopy (AFM) on cross sections of perfluori...
The conductivity of fuel cell membranes as well as their mechanical propertiesat the nanometer scale...
The distribution of ion conductive channels on the Nafion membrane surface, which determines the for...
High membrane conductivity is one of the key parameters in polymer electrolyte fuel cell application...
We show that the local proton conductance distribution in Nafion membranes can be mapped using curre...
Spatially resolved impedance spectroscopy of a Nafion polyelectrolyte membrane is performed employin...
Electrochemical atomic force microscopy allows spatially resolved measurements of proton conductivit...
The objective of this effort was to correlate the local surface ionic conductance of a Nafion? 212 p...
Nafion represents the most commonly employed and well characterized proton exchange membrane (PEM) u...
Proton exchange membrane fuel cells convert chemical energy into electrical energy at high efficienc...
AC impedance spectroscopy has been employed to study the conduction of protons in Nafion 117 polymer...
Proton exchange membrane (PEM) fuel cells offer an alternative as an efficient power source with low...
The present work demonstrates that EC-AFM is a very useful new tool for identification and spatiall...
The conductivity of fuel cell membranes as well as their mechanical properties at the nanometer scal...
Proton-conducting membranes are a key component of PEM fuel cells: the properties of these membranes...
Using material-sensitive and conductive atomic force microscopy (AFM) on cross sections of perfluori...
The conductivity of fuel cell membranes as well as their mechanical propertiesat the nanometer scale...
The distribution of ion conductive channels on the Nafion membrane surface, which determines the for...
High membrane conductivity is one of the key parameters in polymer electrolyte fuel cell application...
We show that the local proton conductance distribution in Nafion membranes can be mapped using curre...
Spatially resolved impedance spectroscopy of a Nafion polyelectrolyte membrane is performed employin...
Electrochemical atomic force microscopy allows spatially resolved measurements of proton conductivit...
The objective of this effort was to correlate the local surface ionic conductance of a Nafion? 212 p...
Nafion represents the most commonly employed and well characterized proton exchange membrane (PEM) u...
Proton exchange membrane fuel cells convert chemical energy into electrical energy at high efficienc...
AC impedance spectroscopy has been employed to study the conduction of protons in Nafion 117 polymer...
Proton exchange membrane (PEM) fuel cells offer an alternative as an efficient power source with low...
The present work demonstrates that EC-AFM is a very useful new tool for identification and spatiall...
The conductivity of fuel cell membranes as well as their mechanical properties at the nanometer scal...
Proton-conducting membranes are a key component of PEM fuel cells: the properties of these membranes...
Using material-sensitive and conductive atomic force microscopy (AFM) on cross sections of perfluori...
The conductivity of fuel cell membranes as well as their mechanical propertiesat the nanometer scale...