Self-Standing FBAR Transformer based on Shear Mode Zig-zag ScAlN Multilayer for Rectenna Application

Sarina Kinoshita, Takahiko Yanagitani

Research output: Chapter in Book/Report/Conference proceedingConference contribution

Abstract

Battery-less sensors for IoT require energy harvesting from the ambient environment. RF-DC conversion with a rectifying antenna (so-called rectenna) is generally used to obtain energy from ambient electromagnetic waves. However, RF-DC conversion efficiency of the diode significantly decreases for ambient electromagnetic waves due to their weak RF power. We previously reported bulk acoustic wave (BAW) piezoelectric transformers based on c-axis zig-zag ScAlN film/substrate structures (HBAR). However, very narrow multiple peaks in HBAR transformers are not suitable for rectenna applications. In this study, we report relativity wideband piezoelectric transformer based on a self-standing film structure (FBAR). The theoretical voltage gain was simulated by Mason's equivalent circuit model. We also derived the simple formula describing the voltage gain of the FBAR transformers without using the circuit model. This transformer was demonstrated with the wet etching process. S parameters of the FBAR transformers are measured by a network analyzer. As a result, the voltage gain approaching + 10 dB in 500 MHz range was obtained. The relative bandwidth of FBAR transformer is 30 times wider than that of HBAR transformer. This polarization inverted FBAR type transformer is promising for a relativity wideband transformer in the rectenna.

Original languageEnglish
Title of host publicationIUS 2020 - International Ultrasonics Symposium, Proceedings
PublisherIEEE Computer Society
ISBN (Electronic)9781728154480
DOIs
Publication statusPublished - 2020 Sep 7
Event2020 IEEE International Ultrasonics Symposium, IUS 2020 - Las Vegas, United States
Duration: 2020 Sep 72020 Sep 11

Publication series

NameIEEE International Ultrasonics Symposium, IUS
Volume2020-September
ISSN (Print)1948-5719
ISSN (Electronic)1948-5727

Conference

Conference2020 IEEE International Ultrasonics Symposium, IUS 2020
CountryUnited States
CityLas Vegas
Period20/9/720/9/11

Keywords

  • BAW
  • Rectenna
  • ScAlN
  • Transformer
  • Zig-zag

ASJC Scopus subject areas

  • Acoustics and Ultrasonics

Fingerprint Dive into the research topics of 'Self-Standing FBAR Transformer based on Shear Mode Zig-zag ScAlN Multilayer for Rectenna Application'. Together they form a unique fingerprint.

Cite this