In recent years, the utilization of the selective ion transport through porous membranes for osmotic power generation (blue energy) has received a lot of attention. The principal of power generation using the porous membranes is same as that of conventional reverse electrodialysis (RED), but nonporous ion exchange membranes are conventionally used for RED. The ion transport mechanisms through the porous and nonporous membranes are considerably different. Unlike the conventional nonporous membranes, the ion transport through the porous membranes is largely dictated by the principles of nanofluidics. This owes to the fact that the osmotic power generation via selective ion transport through porous membranes is often referred to as nanofluidic...
Salinity gradient energy, which is also known as Blue energy, is a renewable energy form that can be...
Reverse electrodialysis (RED) is a clean, sustainable technology for the generation of energy from t...
Reverse electrodialysis (RED) or blue energy is a non-polluting, sustainable technology for generati...
The increase of energy demand added to the concern for environmental pollution linked to energy gene...
[[abstract]]To assess the possibility of energy harvesting through reverse electrodialysis (RED), we...
Reverse electrodialysis (RED) is a promising technology to extract sustainable salinity gradient ene...
The increase of energy demand added to the concern for environmental pollution linked to energy gene...
Reverse electrodialysis (RED) is a non-polluting, sustainable technology used to generate energy by ...
Reverse electrodialysis (RED) is a technology to obtain energy from the salinity difference between ...
Reverse electrodialysis (RED) is a technology for extracting salinity gradient power by contacting w...
Salinity gradient energy is currently attracting growing attention among the scientific community as...
Nanofluidic blue energy harvesting attracts great interest due to its high power density and easy-to...
The widespread use of tiny electrical devices, from microelectromechanical systems (MEMS) to portabl...
\u3cp\u3eSalinity gradient energy, which is also known as Blue energy, is a renewable energy form th...
Salinity gradient energy, which is also known as Blue energy, is a renewable energy form that can be...
Reverse electrodialysis (RED) is a clean, sustainable technology for the generation of energy from t...
Reverse electrodialysis (RED) or blue energy is a non-polluting, sustainable technology for generati...
The increase of energy demand added to the concern for environmental pollution linked to energy gene...
[[abstract]]To assess the possibility of energy harvesting through reverse electrodialysis (RED), we...
Reverse electrodialysis (RED) is a promising technology to extract sustainable salinity gradient ene...
The increase of energy demand added to the concern for environmental pollution linked to energy gene...
Reverse electrodialysis (RED) is a non-polluting, sustainable technology used to generate energy by ...
Reverse electrodialysis (RED) is a technology to obtain energy from the salinity difference between ...
Reverse electrodialysis (RED) is a technology for extracting salinity gradient power by contacting w...
Salinity gradient energy is currently attracting growing attention among the scientific community as...
Nanofluidic blue energy harvesting attracts great interest due to its high power density and easy-to...
The widespread use of tiny electrical devices, from microelectromechanical systems (MEMS) to portabl...
\u3cp\u3eSalinity gradient energy, which is also known as Blue energy, is a renewable energy form th...
Salinity gradient energy, which is also known as Blue energy, is a renewable energy form that can be...
Reverse electrodialysis (RED) is a clean, sustainable technology for the generation of energy from t...
Reverse electrodialysis (RED) or blue energy is a non-polluting, sustainable technology for generati...