Abstract The flexible thermoelectric technique, which can convert heat from the human body to electricity via the Seebeck effect, is expected to provide a peerless solution for the power supply of wearables. The recent discovery of ductile semiconductors has opened a new avenue for flexible thermoelectric technology, but their power factor and figure-of-merit values are still much lower than those of classic thermoelectric materials. Herein, we demonstrate the presence of morphotropic phase boundary in Ag2Se-Ag2S pseudobinary compounds. The morphotropic phase boundary can be freely tuned by adjusting the material thermal treatment processes. High-performance ductile thermoelectric materials with excellent power factor (22 μWcm−1 K−2) and fi...
Thermoelectrics can directly harvest electricity from waste heat through the Seebeck effect; therefo...
Thermoelectric (TE) materials with high figure-of-merit ZT are critical to the development of energy...
Thermoelectric materials have the capacity to convert a temperature differential into electrical pow...
Self-powered wearable electronics require thermoelectric materials simultaneously with a high dimens...
Flexible thermoelectrics, including flexible thermoelectric materials and devices, can directly conv...
Inorganic semiconductor Ag2S with excellent plasticity is highly desired in flexible and wearable th...
Thermoelectric materials and their devices can realize the solid-state energy conversion between the...
The urgent need for ecofriendly, stable, long-lifetime power sources is driving the booming market f...
Abstract Heat is abundantly available from various sources including solar irradiation, geothermal e...
Traditional inorganic thermoelectric materials exhibit excellent thermoelectric performance but poor...
Most crystalline inorganic materials, except for metals and some layer materials, exhibit bad flexib...
The urgent need for ecofriendly, stable, long‐lifetime power sources is driving the booming market f...
Traditional inorganic thermoelectric materials exhibit excellent thermoelectric performance but poor...
Thermoelectric materials strengthened by defect engineering can also suffer from the compromise of p...
Two-dimensional flexible thermoelectric devices (2D FTEDs) are a promising candidate for powering we...
Thermoelectrics can directly harvest electricity from waste heat through the Seebeck effect; therefo...
Thermoelectric (TE) materials with high figure-of-merit ZT are critical to the development of energy...
Thermoelectric materials have the capacity to convert a temperature differential into electrical pow...
Self-powered wearable electronics require thermoelectric materials simultaneously with a high dimens...
Flexible thermoelectrics, including flexible thermoelectric materials and devices, can directly conv...
Inorganic semiconductor Ag2S with excellent plasticity is highly desired in flexible and wearable th...
Thermoelectric materials and their devices can realize the solid-state energy conversion between the...
The urgent need for ecofriendly, stable, long-lifetime power sources is driving the booming market f...
Abstract Heat is abundantly available from various sources including solar irradiation, geothermal e...
Traditional inorganic thermoelectric materials exhibit excellent thermoelectric performance but poor...
Most crystalline inorganic materials, except for metals and some layer materials, exhibit bad flexib...
The urgent need for ecofriendly, stable, long‐lifetime power sources is driving the booming market f...
Traditional inorganic thermoelectric materials exhibit excellent thermoelectric performance but poor...
Thermoelectric materials strengthened by defect engineering can also suffer from the compromise of p...
Two-dimensional flexible thermoelectric devices (2D FTEDs) are a promising candidate for powering we...
Thermoelectrics can directly harvest electricity from waste heat through the Seebeck effect; therefo...
Thermoelectric (TE) materials with high figure-of-merit ZT are critical to the development of energy...
Thermoelectric materials have the capacity to convert a temperature differential into electrical pow...