Harvesting energy from the ambient environment provides great promise in the applications of micro/nanodevices and self-powered systems. Herein, we report a novel energy-scavenging method where an ionic solution infiltrating into a three-dimensional graphene (3DG) membrane can spontaneously generate electricity under ambient conditions. A constructed 3DG nanogenerator (3DGNG) with an effective size of 0.5 × 2 cm can produce a continuous voltage of ∼0.28 V and a remarkable output current of ∼62 μA. The voltage is higher than those generated from the interaction between water and carbon nanomaterials in previous research typically in the range of microvolts to millivolts. Moreover, we demonstrate the potential application of the 3DGNG by illu...
Controlled transport of water molecules through membranes and capillaries is important in areas as d...
Nanopores in graphenemembranes can potentially offer unprecedented spatial resolution for single mol...
Ionic liquid (IL)-induced three-dimensional macroassembly of graphene (GN) has been achieved through...
Harvesting energy from the ambient environment provides great promise in the applications of micro/n...
Energy generation using liquid movement over a graphene surface generally demands a very high rate o...
The ability of graphene and carbon nanotubes to generate an electric potential from flowing fluids h...
It is reported excitingly in a previous letter (<i>Nano Lett.</i> <b>2011</b>, <i>11</i>, 3123) that...
Energy harvesting from ambient water motions is a desirable but underexplored solution to on-site en...
Salinity gradient energy, as a type of blue energy, is a promising sustainable energy source. Its en...
Salinity gradient energy, as a type of blue energy, is a promising sustainable energy source. Its en...
A popular method to harvest solar power is to convert light to heat, then to the kinetic energy of w...
Graphene-based electric power generation that converts mechanical energy of flow of ionic droplets o...
The continuous energy-harvesting in moisture environment is attractive for the development of clean ...
Wearable technologies are driving current research efforts to self-powered electronics, for which no...
Inspired by biological systems that have the inherent skill to generate considerable bioelectricity ...
Controlled transport of water molecules through membranes and capillaries is important in areas as d...
Nanopores in graphenemembranes can potentially offer unprecedented spatial resolution for single mol...
Ionic liquid (IL)-induced three-dimensional macroassembly of graphene (GN) has been achieved through...
Harvesting energy from the ambient environment provides great promise in the applications of micro/n...
Energy generation using liquid movement over a graphene surface generally demands a very high rate o...
The ability of graphene and carbon nanotubes to generate an electric potential from flowing fluids h...
It is reported excitingly in a previous letter (<i>Nano Lett.</i> <b>2011</b>, <i>11</i>, 3123) that...
Energy harvesting from ambient water motions is a desirable but underexplored solution to on-site en...
Salinity gradient energy, as a type of blue energy, is a promising sustainable energy source. Its en...
Salinity gradient energy, as a type of blue energy, is a promising sustainable energy source. Its en...
A popular method to harvest solar power is to convert light to heat, then to the kinetic energy of w...
Graphene-based electric power generation that converts mechanical energy of flow of ionic droplets o...
The continuous energy-harvesting in moisture environment is attractive for the development of clean ...
Wearable technologies are driving current research efforts to self-powered electronics, for which no...
Inspired by biological systems that have the inherent skill to generate considerable bioelectricity ...
Controlled transport of water molecules through membranes and capillaries is important in areas as d...
Nanopores in graphenemembranes can potentially offer unprecedented spatial resolution for single mol...
Ionic liquid (IL)-induced three-dimensional macroassembly of graphene (GN) has been achieved through...