Examples of piezoelectric MEMS (micro-electromechanical systems) developed to work as sensors, actuators and energy harvesting devices are presented. Specifically, a distance-independent contactlessly-interrogated piezoelectric microresonator has been developed to operate as a microbalance. Acoustic-wave piezoelectric microactuators have been investigated to centrifugate liquid drops in acoustofluidics applications and to operate as tunable sound transducers. A piezoelectric MEMS energy harvester which combines the multi-converter and nonlinear approaches has been proposed
Piezoelectric effect helps to convert ambient vibrations into electrical energy that can be used to ...
This work is dedicated to principles of energy harvesting or scavenging from free energy around us. ...
This paper demonstrate the feasibility of micro-power converters based on active control for harvest...
Piezoelectric converters designed for harvesting energy from mechanical vibrations have been fabrica...
Vibration energy harvesting is one the hottest topics addressed by a big part of the scientific comm...
Electromechanical transducers based on piezoelectric layers and thin films are continuously finding ...
The objective of this chapter is to introduce the technology of Microelectromechanical Systems, MEMS...
The objective of this chapter is to introduce the technology of Microelectromechanical Systems, MEMS...
AbstractThe ambient vibration-based micro electromechanical systems (MEMS) piezoelectric harvester h...
Piezoelectric microelectromechanical systems (MEMS) have been proven to be an attractive technology ...
Piezoelectric MEMS energy harvesters based on thin films are compact and cost-effective microgenerat...
The growing demand of wireless sensor networks has created the necessity of miniature, portable, lon...
The market growth of microsystems, having integrated active components, such as pumps, valves or sma...
Abstract—A piezoelectric MEMS energy harvester (EH) with low resonant frequency and wide operation b...
Design considerations for piezoelectric-based energy harvesters for MEMS-scale sen-sors are presente...
Piezoelectric effect helps to convert ambient vibrations into electrical energy that can be used to ...
This work is dedicated to principles of energy harvesting or scavenging from free energy around us. ...
This paper demonstrate the feasibility of micro-power converters based on active control for harvest...
Piezoelectric converters designed for harvesting energy from mechanical vibrations have been fabrica...
Vibration energy harvesting is one the hottest topics addressed by a big part of the scientific comm...
Electromechanical transducers based on piezoelectric layers and thin films are continuously finding ...
The objective of this chapter is to introduce the technology of Microelectromechanical Systems, MEMS...
The objective of this chapter is to introduce the technology of Microelectromechanical Systems, MEMS...
AbstractThe ambient vibration-based micro electromechanical systems (MEMS) piezoelectric harvester h...
Piezoelectric microelectromechanical systems (MEMS) have been proven to be an attractive technology ...
Piezoelectric MEMS energy harvesters based on thin films are compact and cost-effective microgenerat...
The growing demand of wireless sensor networks has created the necessity of miniature, portable, lon...
The market growth of microsystems, having integrated active components, such as pumps, valves or sma...
Abstract—A piezoelectric MEMS energy harvester (EH) with low resonant frequency and wide operation b...
Design considerations for piezoelectric-based energy harvesters for MEMS-scale sen-sors are presente...
Piezoelectric effect helps to convert ambient vibrations into electrical energy that can be used to ...
This work is dedicated to principles of energy harvesting or scavenging from free energy around us. ...
This paper demonstrate the feasibility of micro-power converters based on active control for harvest...