Crystalline atomic/molecular layer deposited ZnO:organic superlattices form a fundamentally new exciting family of coherent multilayered thermoelectric materials. They retain the n-type electrical transport properties derived from the parent ZnO lattice, while the organic molecular layers reduce the thermal conductivity. The controlled nanostructuring opens up the possibility of improving the thermoelectric characteristics of the parent oxide. Here we employ quantum chemical methods to rationalize our experimental results on the ZnO:organic superlattices and determine the thermoelectric structure-property relationships arising from the nanoscale layer-by-layer engineering of ZnO. Our results reveal the importance of systematic tailoring of ...
A combination of the atomic layer deposition (ALD) and molecular layer deposition (MLD) techniques i...
Nanomaterial interfaces and concomitant thermal resistances are generally considered as atomic-scale...
Unique properties of thermoelectric materials enable the conversion of waste heat to electrical ener...
Crystalline atomic/molecular layer deposited ZnO:organic superlattices form a fundamentally new exci...
Atomic layer deposition (ALD) creates a unique opportunity for effective materials nanostructuring. ...
| openaire: EC/FP7/339478/EU//LAYERENG-HYBMATThe thermoelectric properties of both pristine ZnO and ...
ZnO is a direct band gap material that has numerous optoelectronic applications. Recently, the therm...
We study the influence of molecular monolayers on the thermal conductivities and heat capacities of ...
Recent studies focusing on enhancing the thermoelectric performance of metal oxides were primarily m...
By means of ab-initio electronic structure calculation and one-dimensional Boltzmann transport equat...
Concerns about energy security and strong dependency on fossil-sourced raw materials are heavily boo...
| openaire: EC/FP7/339478/EU//LAYERENG-HYBMATThe authors have designed and tested prototype thin-fil...
Energy transport in nanostructures differs significantly from macrostructures because of classical a...
This project has received funding from the European Union's Horizon 2020 Research and Innovation pro...
Abstract It is widely accepted that low dimensionality of semiconductor heterostructures and nanostr...
A combination of the atomic layer deposition (ALD) and molecular layer deposition (MLD) techniques i...
Nanomaterial interfaces and concomitant thermal resistances are generally considered as atomic-scale...
Unique properties of thermoelectric materials enable the conversion of waste heat to electrical ener...
Crystalline atomic/molecular layer deposited ZnO:organic superlattices form a fundamentally new exci...
Atomic layer deposition (ALD) creates a unique opportunity for effective materials nanostructuring. ...
| openaire: EC/FP7/339478/EU//LAYERENG-HYBMATThe thermoelectric properties of both pristine ZnO and ...
ZnO is a direct band gap material that has numerous optoelectronic applications. Recently, the therm...
We study the influence of molecular monolayers on the thermal conductivities and heat capacities of ...
Recent studies focusing on enhancing the thermoelectric performance of metal oxides were primarily m...
By means of ab-initio electronic structure calculation and one-dimensional Boltzmann transport equat...
Concerns about energy security and strong dependency on fossil-sourced raw materials are heavily boo...
| openaire: EC/FP7/339478/EU//LAYERENG-HYBMATThe authors have designed and tested prototype thin-fil...
Energy transport in nanostructures differs significantly from macrostructures because of classical a...
This project has received funding from the European Union's Horizon 2020 Research and Innovation pro...
Abstract It is widely accepted that low dimensionality of semiconductor heterostructures and nanostr...
A combination of the atomic layer deposition (ALD) and molecular layer deposition (MLD) techniques i...
Nanomaterial interfaces and concomitant thermal resistances are generally considered as atomic-scale...
Unique properties of thermoelectric materials enable the conversion of waste heat to electrical ener...