Fast Surface Acoustic Wave-Based Sensors to Investigate the Kinetics of Gas Uptake in Ultra-Microporous Frameworks
Author(s) -
Benjamin Paschke,
A. Wixforth,
Dmytro Denysenko,
Dirk Volkmer
Publication year - 2017
Publication title -
acs sensors
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.055
H-Index - 57
ISSN - 2379-3694
DOI - 10.1021/acssensors.7b00014
Subject(s) - microporous material , surface acoustic wave , materials science , kinetics , diffusion , substrate (aquarium) , sorption , porosity , response time , metal organic framework , sensitivity (control systems) , nanotechnology , gaseous diffusion , mixing (physics) , chemical engineering , acoustics , chemistry , adsorption , composite material , electronic engineering , computer science , oceanography , physics , computer graphics (images) , quantum mechanics , engineering , thermodynamics , geology , fuel cells
Observation of the kinetics and measurement of the activation energies for gas diffusion in porous materials requires very fast and sensitive sensors. In this work, thin films of metal-organic frameworks (MOFs) with different pore sizes are grown on a surface acoustic wave (SAW) substrate, resulting in very sensitive and specific sensor systems for the detection of various gases at very short time scales. Using specially designed SAW delay lines for the detection, up to 200-nm-wide cubic MOF crystals were grown directly from a solution on the sensitive sensor chip area. One example, MFU-4, exhibits a smallest pore aperture of 2.5 Å and shows a highly sensitive and specific response to CO 2 , H 2 , He, NH 3 , and H 2 O. It is shown that such a MOF@SAW sensor responds within milliseconds to gas loading and its sensitivity reaches levels as low as 1 ppmv, currently only limited by the gas mixing system. This unique combination of sensitivity and fast response characteristics allows even for real-time investigations of the sorption kinetics during gas uptake and release. As is typical for SAW sensors, the production of the chips is very straightforward and inexpensive and-combined with the unique properties of the MOFs with their tunable pore sizes and adjustable internal surface properties-holds promise for different sensor applications.
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