The increasing demand of piezoelectric energy harvesters for wearable and implantable applications requires biocompatible materials and careful structural device design, paying special attention to the conformability characteristics, properly tailored to scavenge continuously electrical energy even from the tiniest body movements. This paper provides a comprehensive study on a flexible and biocompatible aluminum nitride (AlN) energy harvester based on a new alternative fabrication approach, exploiting a thin polyimide (PI) substrate, prepared by spin coating of precursors solution. This strategy allows manufacturing substrates with adjustable thickness to meet conformability requirements. The device is based on a piezoelectric AlN thin film...
In this work, we demonstrate the simple fabrication process of AlN-based piezoelectric energy harves...
This work presents a promising ultrasound wearable technology based on a piezoelectric transducer, r...
In this paper, we propose a flexible piezoelectric MEMS transducer based on aluminum nitride thin fi...
The increasing demand of piezoelectric energy harvesters for wearable and implantable applications r...
The increasing demand of piezoelectric energy harvesters for wearable and implantable applications r...
In this work we report on the development of a flexible energy harvester based on piezoelectric Alum...
In this work, we show that thin biocompatible AlN films reveal a stable, frequency independent piezo...
Aluminum nitride (AlN) is a piezoelectric material often used as thin film in SAW/BAW devices. Furth...
Flexible piezoelectric heterostructures based on aluminium nitride (AIN) grown on a polymeric soft s...
There is a high demand for novel flexible micro-devices for energy harvesting from low-frequency and...
Piezoelectric vibration-based energy harvesting is a promising alternative for the durable and relia...
Advances in the areas of wireless technology and low-power electronics stimulated extensively resear...
In this work we present for the first time the fabrication and the characterization of flexible micr...
Advances in the areas of wireless technology and low-power electronics stimulated extensively resear...
In this work we report on microstructures made of AlN for the use as piezoelectric microgenerators i...
In this work, we demonstrate the simple fabrication process of AlN-based piezoelectric energy harves...
This work presents a promising ultrasound wearable technology based on a piezoelectric transducer, r...
In this paper, we propose a flexible piezoelectric MEMS transducer based on aluminum nitride thin fi...
The increasing demand of piezoelectric energy harvesters for wearable and implantable applications r...
The increasing demand of piezoelectric energy harvesters for wearable and implantable applications r...
In this work we report on the development of a flexible energy harvester based on piezoelectric Alum...
In this work, we show that thin biocompatible AlN films reveal a stable, frequency independent piezo...
Aluminum nitride (AlN) is a piezoelectric material often used as thin film in SAW/BAW devices. Furth...
Flexible piezoelectric heterostructures based on aluminium nitride (AIN) grown on a polymeric soft s...
There is a high demand for novel flexible micro-devices for energy harvesting from low-frequency and...
Piezoelectric vibration-based energy harvesting is a promising alternative for the durable and relia...
Advances in the areas of wireless technology and low-power electronics stimulated extensively resear...
In this work we present for the first time the fabrication and the characterization of flexible micr...
Advances in the areas of wireless technology and low-power electronics stimulated extensively resear...
In this work we report on microstructures made of AlN for the use as piezoelectric microgenerators i...
In this work, we demonstrate the simple fabrication process of AlN-based piezoelectric energy harves...
This work presents a promising ultrasound wearable technology based on a piezoelectric transducer, r...
In this paper, we propose a flexible piezoelectric MEMS transducer based on aluminum nitride thin fi...