Thermoelectric materials open a way to harness dissipated energy and make electronic devices less energy-demanding. Heat-to-electricity conversion requires materials with a strongly suppressed thermal conductivity but still high electronic conduction. This goal is largely achieved with the help of nanostructured materials, even if the bulk counterpart is not highly efficient. In this work, we investigate how thermoelectric efficiency is enhanced by many-body effects in graphene nanoribbons at low temperature. To this end, starting from the Kane-Mele-Hubbard model within a mean-field approximation, we carry out an extensive numerical study of the impact of electron-electron interactions on the thermoelectric efficiency of graphene nanoribbon...
The transport and thermoelectric properties of finite textured graphene nanoribbons (t-GNRs) connect...
Nowadays, graphene-based materials (GBM) have received huge attention from nanotechnology researcher...
Heat from electrical devices, car engines, industrial processes and even our own body heat are an ab...
Thermoelectric materials enable us to harness dissipated energy and make electronic devices less ene...
© 2017 Dr. Md Sharafat HossainThe field of thermoelectrics has the potential to solve many problems ...
The thermoelectric properties of zigzag graphene nanoribbons (ZGNRs) are sensitive to chemical modif...
Recent progress in nanostructuring of materials opens up possibilities to achieve more efficient the...
Recent progress in nanostructuring of materials opens up possibilities to achieve more efficient the...
Thermoelectric properties of finite graphene nanoribbons (GNRs) coupled to metallic electrodes are t...
Nanomaterials provide unique promise to thermoelectric energy conversion owing to their possible pho...
of thermoelectric properties via resonant electronic transport in graphene nanoribbon
A finite-size effect leads to more electrons to occupy high-energy states in a graphene nanoribbon. ...
Control of both the regularity of a material ensemble and nanoscale architecture provides unique opp...
Graphene, as a typical two-dimensional nanometer material, has shown its unique application potentia...
We demonstrate that thermoelectric properties of graphene nanoribbons can be dramatically improved b...
The transport and thermoelectric properties of finite textured graphene nanoribbons (t-GNRs) connect...
Nowadays, graphene-based materials (GBM) have received huge attention from nanotechnology researcher...
Heat from electrical devices, car engines, industrial processes and even our own body heat are an ab...
Thermoelectric materials enable us to harness dissipated energy and make electronic devices less ene...
© 2017 Dr. Md Sharafat HossainThe field of thermoelectrics has the potential to solve many problems ...
The thermoelectric properties of zigzag graphene nanoribbons (ZGNRs) are sensitive to chemical modif...
Recent progress in nanostructuring of materials opens up possibilities to achieve more efficient the...
Recent progress in nanostructuring of materials opens up possibilities to achieve more efficient the...
Thermoelectric properties of finite graphene nanoribbons (GNRs) coupled to metallic electrodes are t...
Nanomaterials provide unique promise to thermoelectric energy conversion owing to their possible pho...
of thermoelectric properties via resonant electronic transport in graphene nanoribbon
A finite-size effect leads to more electrons to occupy high-energy states in a graphene nanoribbon. ...
Control of both the regularity of a material ensemble and nanoscale architecture provides unique opp...
Graphene, as a typical two-dimensional nanometer material, has shown its unique application potentia...
We demonstrate that thermoelectric properties of graphene nanoribbons can be dramatically improved b...
The transport and thermoelectric properties of finite textured graphene nanoribbons (t-GNRs) connect...
Nowadays, graphene-based materials (GBM) have received huge attention from nanotechnology researcher...
Heat from electrical devices, car engines, industrial processes and even our own body heat are an ab...