Nanotube Molecular Wires as Chemical Sensors
Молекулярные нанопровода на основе нанотрубок как химические сенсоры
2000-01-28
SCID: 54.1/j5m84c65
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NO2 and NH3 detectionchemical sensorselectrical resistancemolecular sensingsingle-walled carbon nanotubes
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Abstract (AI)
Chemical sensors based on individual single-walled carbon nanotubes (SWNTs) are demonstrated. Upon exposure to gaseous molecules such as NO(2) or NH(3), the electrical resistance of a semiconducting SWNT is found to dramatically increase or decrease. This serves as the basis for nanotube molecular sensors. The nanotube sensors exhibit a fast response and a substantially higher sensitivity than that of existing solid-state sensors at room temperature. Sensor reversibility is achieved by slow recovery under ambient conditions or by heating to high temperatures. The interactions between molecular species and SWNTs and the mechanisms of molecular sensing with nanotube molecular wires are investigated.
Key Findings
1
Exposure to NO₂ or NH₃ causes dramatic increases or decreases in the resistance of semiconducting SWNTs, enabling molecular detection.
2
Individual single-walled carbon nanotubes (SWNTs) function as electrical chemical sensors for gaseous NO₂ and NH₃.
3
Nanotube sensors show fast responses and substantially higher sensitivity than existing solid-state sensors at room temperature.
4
Sensor reversibility is achieved through slow recovery under ambient conditions or accelerated recovery by heating to high temperatures.
5
The study investigates molecular interactions with SWNTs and the mechanisms underlying sensing in nanotube molecular wires.
Research Object
Individual single-walled carbon nanotubes (SWNTs) used as molecular wires and chemical sensors
Research Subject
Electrical-resistance response, sensitivity, reversibility, and molecular interaction mechanisms of SWNTs exposed to gaseous NO2 and NH3
Publication Details
Publication Date
2000-01-28
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