The mechanical behaviours of multilayer graphene (MLG) membranes and cantilevers were investigated for the sensitive detection of acoustic waves in gases. The aim of this Work was to find sensors for laser photoacoustic spectroscopy with high sensitivity. The application of the MLG cantilever for photoacoustic detection was reported for the first time. MLG membranes and cantilevers were prepared from highly ordered pyrolytic graphite (HOPG) by multiple mechanical cleavages allowing simple adjustment of the membrane/cantilever thickness and relevant mechanical parameters. The MLG cantilevdr/membrane movements induced by pressure waves triggered by the absorption of the CO2 laser pulse in the gas-filled photoacoustic cell were detected by a H...
Laser photo acoustic spectroscopy is a technique to detect and measure trace gas using infrared lase...
The gas sensing properties of graphene-like nano-sheets deposited on 36° YX lithium tantalate (LiTaO...
Publisher Copyright: © 2021 The Author(s). Published with license by Taylor and Francis Group, LLC.P...
We report an all-optical fiber photoacoustic gas sensor with a graphene nano-mechanical resonator as...
Microphones exploit the motion of suspended membranes to detect sound waves. Since the microphone pe...
We demonstrate an all-optical-fiber photoacoustic (PA) spectrometric gas sensor with a graphene nano...
© Author(s) 2015. CC Attribution 3.0 License. Silicon micro-levers and a multilayer graphene membran...
Multilayer graphene and mica cantilevers as part of an optical microphone in combination with CO2 la...
Graphene has been considered to be a desirable material in the application of semiconductor devices...
We characterized the thermoacoustic and photoacoustic properties of large-area, few-layer graphene b...
textFollowing the first report on electronic transport measurements of graphene, an atom-thick carbo...
The detection of methane, a strong greenhouse gas, has increased in importance due to rising emissio...
Graphene resonators have been fabricated in rectangular and circular geometries ranging from 1 to 3 ...
Photoacoustic spectroscopy (PAS), as a branch of optical spectroscopy, is an established, robust, an...
We report on the development of a highly sensitive photoacoustic (PA) spectrometer based on a miniat...
Laser photo acoustic spectroscopy is a technique to detect and measure trace gas using infrared lase...
The gas sensing properties of graphene-like nano-sheets deposited on 36° YX lithium tantalate (LiTaO...
Publisher Copyright: © 2021 The Author(s). Published with license by Taylor and Francis Group, LLC.P...
We report an all-optical fiber photoacoustic gas sensor with a graphene nano-mechanical resonator as...
Microphones exploit the motion of suspended membranes to detect sound waves. Since the microphone pe...
We demonstrate an all-optical-fiber photoacoustic (PA) spectrometric gas sensor with a graphene nano...
© Author(s) 2015. CC Attribution 3.0 License. Silicon micro-levers and a multilayer graphene membran...
Multilayer graphene and mica cantilevers as part of an optical microphone in combination with CO2 la...
Graphene has been considered to be a desirable material in the application of semiconductor devices...
We characterized the thermoacoustic and photoacoustic properties of large-area, few-layer graphene b...
textFollowing the first report on electronic transport measurements of graphene, an atom-thick carbo...
The detection of methane, a strong greenhouse gas, has increased in importance due to rising emissio...
Graphene resonators have been fabricated in rectangular and circular geometries ranging from 1 to 3 ...
Photoacoustic spectroscopy (PAS), as a branch of optical spectroscopy, is an established, robust, an...
We report on the development of a highly sensitive photoacoustic (PA) spectrometer based on a miniat...
Laser photo acoustic spectroscopy is a technique to detect and measure trace gas using infrared lase...
The gas sensing properties of graphene-like nano-sheets deposited on 36° YX lithium tantalate (LiTaO...
Publisher Copyright: © 2021 The Author(s). Published with license by Taylor and Francis Group, LLC.P...