[Zurück]


Zeitschriftenartikel:

J. Iannacci, E. Serra, G. Sordo, M. Bonaldi, A. Borrielli, U. Schmid, A. Bittner, M. Schneider, T. Kuenzig, G. Schrag, G. Pandraud, P. M. Sarro:
"MEMS-based multi-modal vibration energy harvesters for ultra-low power autonomous remote and distributed sensing";
Microsystem Technologies - Micro- and Nanosystems - Information Storage and Processing Systems, 24 (2018), S. 5027 - 5036.



Kurzfassung englisch:
In this contribution, we discuss the implementation of a novel microelectromechanical-systems (MEMS)-based energy
harvester (EH) concept within the technology platform available at the ISAS Institute (TU Vienna, Austria). The device,
already presented by the authors, exploits the piezoelectric effect to convert environmental vibrations energy into elec-
tricity, and presents multiple resonant modes in the frequency range of interest (i.e. below 10 kHz). The experimental
characterisation of a sputter deposited aluminium nitride piezoelectric thin-film layer is reported, leading to the extraction
of material properties parameters. Such values are then incorporated in the finite element method model of the EH,
implemented in Ansys Workbench
TM
, in order to get reasonable estimates of the converted power levels achievable by the
proposed device solution. Multiphysics simulations indicate that extracted power values in the range of several lW can be
addressed by the EH-MEMS concept when subjected to mechanical vibrations up to 10 kHz, operating in closed-loop
conditions (i.e. piezoelectric generator connected to a 100 kX resistive load). This represents an encouraging result,
opening up the floor to exploitations of the proposed EH-MEMS device in the field of wireless sensor networks and zero-
power sensing nodes.


"Offizielle" elektronische Version der Publikation (entsprechend ihrem Digital Object Identifier - DOI)
http://dx.doi.org/10.1007/s00542-018-3923-1


Erstellt aus der Publikationsdatenbank der Technischen Universität Wien.