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Erschienen in: Measurement Techniques 5/2016

23.08.2016 | PHYSICOCHEMICAL MEASUREMENTS

A Sensor of Graphite Paper with Multiwalled Nanotubes

verfasst von: S. V. Antonenko

Erschienen in: Measurement Techniques | Ausgabe 5/2016

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Abstract

The results of a voltage-current characteristics study of sensors made of graphite paper with multiwall nanotubes are presented. It has been found experimentally that these samples are usable as gas sensors for the detection of NH3, H2, and Cl2 in air.

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Literatur
1.
Zurück zum Zitat Yu. Wang and J. T. W. Yeow, “A review of carbon nanotube-based gas sensors,” J. Sensors, Art. ID 493904 (2009). Yu. Wang and J. T. W. Yeow, “A review of carbon nanotube-based gas sensors,” J. Sensors, Art. ID 493904 (2009).
2.
Zurück zum Zitat Yu. Wong, W. P. M. Kang, J. L. Davidson, et al., “A novel microelectronic gas sensor utilizing carbon nanotubes for hydrogen gas detection,” Sensors and Actuators B, 93, No. 1–3, 327–332 (2003). Yu. Wong, W. P. M. Kang, J. L. Davidson, et al., “A novel microelectronic gas sensor utilizing carbon nanotubes for hydrogen gas detection,” Sensors and Actuators B, 93, No. 1–3, 327–332 (2003).
3.
Zurück zum Zitat K. A. Mirica, J. G. Weis, J. M. Schnorr, et al., “Mechanical drawing of gas sensors on paper,” Angew. Chemie Int. Ed., 51, No. 43, 1740–1745 (2012).CrossRef K. A. Mirica, J. G. Weis, J. M. Schnorr, et al., “Mechanical drawing of gas sensors on paper,” Angew. Chemie Int. Ed., 51, No. 43, 1740–1745 (2012).CrossRef
4.
Zurück zum Zitat B. Esser, J. M. Schnorr, and T. M. Swager, “Selective detection of ethylene gas using carbon nanotube-based devices: utility in determination of fruit ripeness,” Angew. Chemie Int. Ed., 51, No. 23, 5752–5756 (2012).CrossRef B. Esser, J. M. Schnorr, and T. M. Swager, “Selective detection of ethylene gas using carbon nanotube-based devices: utility in determination of fruit ripeness,” Angew. Chemie Int. Ed., 51, No. 23, 5752–5756 (2012).CrossRef
5.
Zurück zum Zitat J. Kong, N. R. Franklin, C. Zhou, et al., “Nanotube molecular wires as chemical sensors,” Science, 287, No. 5453, 622–625 (2000). J. Kong, N. R. Franklin, C. Zhou, et al., “Nanotube molecular wires as chemical sensors,” Science, 287, No. 5453, 622–625 (2000).
6.
Zurück zum Zitat J. R. Wood, Q. Zhao, M. D. Frogley, et al., “Carbon nanotubes: from molecular to macroscopic sensors,” Phys. Rev., 62, No. 11, 7571–7575 (2000).ADSCrossRef J. R. Wood, Q. Zhao, M. D. Frogley, et al., “Carbon nanotubes: from molecular to macroscopic sensors,” Phys. Rev., 62, No. 11, 7571–7575 (2000).ADSCrossRef
7.
Zurück zum Zitat J. Li and N. T. Nog, “Carbon Nanotube Sensors,” in: Encyclopedia of Nanoscience and Nanotechnology, Amer. Sci. Publ. (2004), Vol. 1, pp. 591–601. J. Li and N. T. Nog, “Carbon Nanotube Sensors,” in: Encyclopedia of Nanoscience and Nanotechnology, Amer. Sci. Publ. (2004), Vol. 1, pp. 591–601.
8.
Zurück zum Zitat S. Chopra, A. Pham, J. Gallard, et al., “Carbon-nanotube-based resonant-circuit sensor for ammonia,” Appl. Phys. Lett., 80, No. 24, 4632–4634 (2002).ADSCrossRef S. Chopra, A. Pham, J. Gallard, et al., “Carbon-nanotube-based resonant-circuit sensor for ammonia,” Appl. Phys. Lett., 80, No. 24, 4632–4634 (2002).ADSCrossRef
9.
Zurück zum Zitat S. Supple and N. Quirke, “Rapid imbibition of fl uids in carbon nanotubes,” Phys. Rev. Lett., 90, No. 21, 214501–214514 (2003).ADSCrossRef S. Supple and N. Quirke, “Rapid imbibition of fl uids in carbon nanotubes,” Phys. Rev. Lett., 90, No. 21, 214501–214514 (2003).ADSCrossRef
10.
Zurück zum Zitat A. Modi, N. N. Koratkar, E. Lass, et al., “Miniaturized gas ionization sensors using carbon nanotubes,” Nature, 424, 171–174 (2003).ADSCrossRef A. Modi, N. N. Koratkar, E. Lass, et al., “Miniaturized gas ionization sensors using carbon nanotubes,” Nature, 424, 171–174 (2003).ADSCrossRef
11.
Zurück zum Zitat S. V. Antonenko, O. S. Malinovskaya, and S. N. Mal’tsev, “Synthesis of carbon nanotubes by current annealing graphite paper,” Prib. Tekhn. Experim., 50, No. 4, 123–124 (2007). S. V. Antonenko, O. S. Malinovskaya, and S. N. Mal’tsev, “Synthesis of carbon nanotubes by current annealing graphite paper,” Prib. Tekhn. Experim., 50, No. 4, 123–124 (2007).
12.
Zurück zum Zitat S. V. Antonenko and S. N. Mal’tsev, “Synthesis methods of carbon nanotubes using magnetron sputtering at direct current,” Prib. Tekhn. Experim., 48, No. 3, 150–152 (2005). S. V. Antonenko and S. N. Mal’tsev, “Synthesis methods of carbon nanotubes using magnetron sputtering at direct current,” Prib. Tekhn. Experim., 48, No. 3, 150–152 (2005).
13.
Zurück zum Zitat N. Sinha, J. Ma, and J. T. W. Yeow, “Carbon nanotube-based sensors,” J. Nanosci. Nanotechnol., 6, No. 2, 573–590 (2006).CrossRef N. Sinha, J. Ma, and J. T. W. Yeow, “Carbon nanotube-based sensors,” J. Nanosci. Nanotechnol., 6, No. 2, 573–590 (2006).CrossRef
14.
Zurück zum Zitat V. I. Troyan, P. V. Borisyuk, O. S. Vasil’ev, et al., “Measuring local thermoEMF of metals by scanning tunneling microscopy,” Izmer. Tekhn., 8, 9–12 (2014). V. I. Troyan, P. V. Borisyuk, O. S. Vasil’ev, et al., “Measuring local thermoEMF of metals by scanning tunneling microscopy,” Izmer. Tekhn., 8, 9–12 (2014).
Metadaten
Titel
A Sensor of Graphite Paper with Multiwalled Nanotubes
verfasst von
S. V. Antonenko
Publikationsdatum
23.08.2016
Verlag
Springer US
Erschienen in
Measurement Techniques / Ausgabe 5/2016
Print ISSN: 0543-1972
Elektronische ISSN: 1573-8906
DOI
https://doi.org/10.1007/s11018-016-1006-1

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