Towards a miniaturized non-radioactive electron emitter with proximity focusing
Tóm tắt
Most state of the art gas sensor systems based on atmospheric pressure ionization, such ion mobility spectrometers use radioactive beta-sources (e.g. 3H or 63Ni) to provide free electrons with high kinetic energy to initiate a chemical gas phase ionization of the analytes to be detected. Here, we introduce a non-radioactive electron emitter which generates free electrons at atmospheric pressure. Therefore, electrons are generated in a vacuum by field emission and accelerated towards a 300 nm thin 1 mm2 silicon nitride membrane separating the vacuum from atmospheric pressure. Electron currents of about a few hundred microamps can be reached. High energetic electrons of about 10 keV can easily penetrate the membrane without significant loss of kinetic energy. The concept of proximity focusing avoids complex electron lenses to focus the electron beam onto the membrane. The used field emitter tips are made of multi-walled carbon nanotubes. Another benefit of our system is that no insulated power supply operating at high voltage is needed, as necessary for thermo emitters. Here, we show a first prototype of a proximity focused electron gun with field emitting carbon nanotubes. The system is coupled to our drift tube ion mobility spectrometer for validation. Ion mobility spectra similar to those of a 3H ionization source were achieved.
Tài liệu tham khảo
Eiceman GA, Karpas Z (2005) Ion mobility spectrometry. CRC Press
Gunzer F, Ulrich A, Baether W (2010) A novel non-radioactive electron source for ion mobility spectrometry. Int J Ion Mobil Spectrom 13:9–16
Drouin D, Couture AR, Joly D, Tastet X, Aimez V, Gauvin R (2007) CASINO V2.42—A fast and easy-to-use modeling tool for scanning electron microscopy and microanalysis users. Scanning 29:92–101
Iijima S (1991) Helical microtubules of graphitic carbon. Nature 354:56–58
Cheng Y, Zhou O (2003) Electron field emission from carbon nanotubes. C R Physique 4:1021–1033
Heer WAD, Chatelain A, Ugarte D (1995) A carbon nanotube field-emission electron source. Science 270:1179–1180
Smith RC, Cox DC, Silva SRP (2005) Electron field emission from a single carbon nanotube: effects of anode location. Appl Phys Lett 87
Langejürgen J, Cochems P, Zimmermann S (2012) Results of a transient simulation of a drift tube ion mobility spectrometer considering charge repulsion, ion loss at metallic surfaces and ion generation. Int J Ion Mobil Spectrom
Vautz W, Michels A, Franzke J (2008) Micro-plasma: a novel ionisation source for ion mobility spectrometry. Anal Bioanal Chem 391:2609–2615