| Literature DB >> 30404329 |
Makoto Takamura1, Hajime Okamoto2, Kazuaki Furukawa3, Hiroshi Yamaguchi4, Hiroki Hibino5.
Abstract
Graphene-based nanoelectromechanical systems (NEMS) have high future potential to realize sensitive mass and force sensors owing toEntities:
Keywords: electrochemical etching; energy dissipation; graphene; hydrogen intercalation; microelectromechanical systems (MEMS); nanoelectromechanical systems (NEMS)
Year: 2016 PMID: 30404329 PMCID: PMC6190471 DOI: 10.3390/mi7090158
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1(a) Scanning electron microscopy (SEM) image (tilted at 55) of the doubly-clamped suspended graphene. (b) Low and (c) High magnification cross-sectional TEM images of the suspended graphene. Black arrows in (c) indicate graphene layers. Adapted from [11]. Copyright (2013) The Japan Society of Applied Physics.
Figure 2(Color online) (a) Atomic force microscopy (AFM) topography of a drumhead graphene resonator. (b) Line profile along the dotted line in (a). The red solid line indicates the graphene layer. The black solid line shows the line profile of the hole. Reproduced from [12], with the permission of American Institute of Physics (AIP) Publishing.
Figure 3(Color online) A schematic of the detection setup of the mechanical vibration of the resonators.
Figure 4(Color online) (a) Amplitude versus frequency for the doubly-clamped trilayer graphene resonator measured at room temperatures under a vacuum of Pa. (b) A close-up SEM image of the resonator with side-flanges (tilted at 55) and (c) a schematic side-view image of the side-flanges. Adapted from [11]. Copyright (2013) The Japan Society of Applied Physics.
Figure 5(Color online) Temperature-dependent energy dissipation (-T) of our doubly-clamped trilayer graphene resonators (solid squares) and drumhead monolayer graphene resonators (open squares). Blue dashed and red solid lines show linear fittings for doubly-clamped and drumhead graphene resonators, respectively. Insets show SEM images of our trilayer doubly-clamped resonators and monolayer drumhead resonators. Scale bars are 2.5 m. Reproduced from [12], with the permission of AIP Publishing.
Figure 6(Color online) (a) Temperature-dependent energy dissipation (-T) of doubly-clamped graphene resonators for our trilayer graphene resonators (solid squares) and monolayer graphene resonators in [2] (open circles), [3] (open squares) and [4] (open triangles). Blue dashed lines show linear fittings at different temperature ranges for our trilayer graphene resonators. The red dashed line indicates a linear fitting for monolayer graphene resonators in the lower temperature region. The green dashed line indicates a linear fitting for monolayer graphene resonators in [4] in the higher temperature region. (b) Comparison of -T curves between our doubly-clamped trilayer resonators and the molecular dynamics simulation result in [7] (open rhombuses). Reproduced from [12], with the permission of AIP Publishing.
Figure 7(Color online) (a) Energy dissipation () as a function of temperature in drumhead monolayer graphene resonators. Our measured data are shown as open squares. Solid triangles and open triangles are the quality factors estimated by the numerical analysis for the circular resonator with constrained edges from [6] and for the rectangular-shaped resonator with the periodic boundary condition from [7], respectively. Red solid and dashed lines show linear fittings. (b) Variation of energy dissipation () as a function of temperature in drumhead monolayer graphene resonators. Our measured data (open squares) are compared with calculated data in [14] for the resonators under 1% strain without grain boundaries (open circles) and with a single grain boundary with misorientation angles of 1.4 (red open triangles) and 16.62 (blue solid triangles). Reproduced from [12], with the permission of AIP Publishing.