| Literature DB >> 26029960 |
Zhenyun Qian1, Fangze Liu1, Yu Hui1, Swastik Kar1, Matteo Rinaldi1.
Abstract
Designing "ideal electrodes" that simultaneously guarantee low mechanical damping and electrical loss as well as high electromechanical coupling in ultralow-volume piezoelectric nanomechanical structures can be considered to be a key challenge in the NEMS field. We show that mechanically transferred graphene, floating at van der Waals proximity, closely mimics "ideal electrodes" for ultrahigh frequency (0.2 GHz < f0 < 2.6 GHz) piezoelectric nanoelectromechanical resonators with negligible mechanical mass and interfacial strain and perfect radio frequency electric field confinement. These unique attributes enable graphene-electrode-based piezoelectric nanoelectromechanical resonators to operate at their theoretically "unloaded" frequency-limits with significantly improved electromechanical performance compared to metal-electrode counterparts, despite their reduced volumes. This represents a spectacular trend inversion in the scaling of piezoelectric electromechanical resonators, opening up new possibilities for the implementation of nanoelectromechanical systems with unprecedented performance.Entities:
Keywords: Graphene; NEMS; aluminum nitride; massless electrode; piezoelectric
Year: 2015 PMID: 26029960 DOI: 10.1021/acs.nanolett.5b01208
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189