Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade waste heat harvesting and the field has seen much progress during the recent years. In this work, we briefly review the working mechanism of such materials, the main advances in the field and the main criteria for performance comparison. We examine two types of polymer-based ionic thermoelectric materials: ionic conductive polymer and ionogels. Moreover, as a comparison, we also examine the more conventional ionic liquid electrolytes. Their performance, possible directions of improvements and potential applications have been evaluated.</p
More than half of the waste heat rejected into the environment has temperatures lower than 100 °C, w...
Thermoelectric materials can convert waste heat to electricity without moving parts. Extensive resea...
Development of ionic thermoelectric (iTE) materials is of immense interest for efficient heat-to-ele...
Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade...
Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade...
Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade...
Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade...
Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade...
Thermoelectric material is a kind of functional material that can mutually convert heat energy and e...
Electrically conducting organic salts, known for over 60 years, have recently demonstrated new abili...
Electrically conducting organic salts, known for over 60 years, have recently demonstrated new abili...
AbstractThermoelectric materials allow direct conversion of waste heat energy into electrical energy...
Abstract: Thermoelectric energy harvesting is a promising, environmentally friendly way to generat...
The tremendous amount of wasted heat from solar radiation and industry dissipation has motivated the...
Low-grade thermal energy harvesting presents great challenges to traditional thermoelectric systems ...
More than half of the waste heat rejected into the environment has temperatures lower than 100 °C, w...
Thermoelectric materials can convert waste heat to electricity without moving parts. Extensive resea...
Development of ionic thermoelectric (iTE) materials is of immense interest for efficient heat-to-ele...
Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade...
Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade...
Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade...
Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade...
Ionic thermoelectric polymers are a new class of materials with great potential for use in low-grade...
Thermoelectric material is a kind of functional material that can mutually convert heat energy and e...
Electrically conducting organic salts, known for over 60 years, have recently demonstrated new abili...
Electrically conducting organic salts, known for over 60 years, have recently demonstrated new abili...
AbstractThermoelectric materials allow direct conversion of waste heat energy into electrical energy...
Abstract: Thermoelectric energy harvesting is a promising, environmentally friendly way to generat...
The tremendous amount of wasted heat from solar radiation and industry dissipation has motivated the...
Low-grade thermal energy harvesting presents great challenges to traditional thermoelectric systems ...
More than half of the waste heat rejected into the environment has temperatures lower than 100 °C, w...
Thermoelectric materials can convert waste heat to electricity without moving parts. Extensive resea...
Development of ionic thermoelectric (iTE) materials is of immense interest for efficient heat-to-ele...