Nanomaterials serve as promising candidates for strain sensing due to unique electromechanical properties by appropriately assembling and tailoring their configurations. Through the crisscross interlacing of graphene microribbons in an over-and-under fashion, the obtained graphene woven fabric (GWF) indicates a good trade-off between sensitivity and stretchability compared with those in previous studies. In this work, the function of woven fabrics for highly sensitive strain sensing is investigated, although network configuration is always a strategy to retain resistance stability. The experimental and simulation results indicate that the ultrahigh mechanosensitivity with gauge factors of 500 under 2% strain is attributed to the macro-woven...
Flexible, stretchable, wearable, and stable electronic materials are widely studied, owing to their ...
Constructing flexible, high-sensitivity strain sensors with large working ranges is an urgent task i...
Recent years have witnessed a breathtaking development of wearable strain sensors. Coupling high sen...
Nanomaterials serve as promising candidates for strain sensing due to unique electromechanical prope...
The use of nanomaterials for strain sensors has attracted attention due to their unique electromecha...
Because of their outstanding electrical and mechanical properties, graphene strain sensors have attr...
Advanced wearable strain sensors with high sensitivity and stretchability are an essential component...
In this work we developed novel stretchable sensors constituted by a percolating network of graphene...
Due to its unique electromechanical properties, nanomaterial has become a promising material for use...
Recently, wearable devices have been attracting significantly increased interest in human motion det...
Graphene woven fabric (GWF) prepared from chemical vapor deposition was used as smart self-sensing e...
Highly sensitive wearable strain sensors based on graphene and its derivatives have shown great pote...
Constructing flexible, high-sensitivity strain sensors with large working ranges is an urgent task i...
Wearable sensors that measure parameters associated with physical activity and bodily motions have b...
Flexible, stretchable, wearable, and stable electronic materials are widely studied, owing to their ...
Constructing flexible, high-sensitivity strain sensors with large working ranges is an urgent task i...
Recent years have witnessed a breathtaking development of wearable strain sensors. Coupling high sen...
Nanomaterials serve as promising candidates for strain sensing due to unique electromechanical prope...
The use of nanomaterials for strain sensors has attracted attention due to their unique electromecha...
Because of their outstanding electrical and mechanical properties, graphene strain sensors have attr...
Advanced wearable strain sensors with high sensitivity and stretchability are an essential component...
In this work we developed novel stretchable sensors constituted by a percolating network of graphene...
Due to its unique electromechanical properties, nanomaterial has become a promising material for use...
Recently, wearable devices have been attracting significantly increased interest in human motion det...
Graphene woven fabric (GWF) prepared from chemical vapor deposition was used as smart self-sensing e...
Highly sensitive wearable strain sensors based on graphene and its derivatives have shown great pote...
Constructing flexible, high-sensitivity strain sensors with large working ranges is an urgent task i...
Wearable sensors that measure parameters associated with physical activity and bodily motions have b...
Flexible, stretchable, wearable, and stable electronic materials are widely studied, owing to their ...
Constructing flexible, high-sensitivity strain sensors with large working ranges is an urgent task i...
Recent years have witnessed a breathtaking development of wearable strain sensors. Coupling high sen...