Intermetallic Getters Reactants for Vacuum Applications
- 1 NanoShell Consulting, Migdal Haemek, Israel
Abstract
The present work continues a series of publications devoted to the study of the sorption properties of reactive alloys based on IIA metals and the development of advanced getter materials for gas and vacuum technologies. This publication attempts to answer the current challenges in the field of gas sorption associated with the emergence of new vacuum products such as vacuum insulated glasses, electronic systems, cryogenic devices, etc. An analysis of the problems that arise here, as well as the results of sorption measurements, carried out with the participation of intermetallic phases of the composition CaLi 2 and Ca 0.33 Li 0.48 Mg 0.19 , show that the best getter support for these new hermetically sealed products can be provided by intermetallic compounds formed in systems Li-IIA metals. Intermetallic phases of this family are easy to manufacture and demonstrate outstanding service characteristics: their specific sorption capacity is recorded high, exceeding traditional gas sorbents in this respect by at least an order of magnitude; the kinetics of gas capturing is set at the stage of alloy production, i.e. , is adjustable; the temporary resistance of these phases to atmospheric gases allows to install the getter at its workplace in air, without further thermal activation. The sorption superiority of reactive intermetallics is explained by their special sorption mechanism: the gas/metal interaction is formed here as a combination of two processes, continuous growth of reaction products on a metallic surface and corrosion decay of brittle intermetallic phase under mechanical forces, which feeds the chemical reaction with a fresh surface. The advantages of sorption processes of this new type are undoubted and significant: compared with the conventional sorbents, an intermetallic getter reactant solves two important problems; it reduces production costs and increases the sorption yield.
- Ferrario, B. (1998) Getters and Getter Pumps. In: Lafferty, J.M., Ed., Foundations of Vacuum Science and Technology, John Wiley & Sons, Inc., New York, 261-310.
- Chuntonov, K., Soloduha, E. and Yoffe, Y. (2020) Tribochemical Sorрtion Analyzer. IL Patent Application No. 275475.
- Chuntonov, K., Ivanov, A.O. and Kozhevnikov, V.L. (2021) Reactive Alloys of IIA Metals: Gas Sorption and Corrosion as One Process. Journal of Materials Science and Chemical Engineering, 9, 39-69. https://doi.org/10.4236/msce.2021.911004
- Carr, J.N. (2009) Getter Material. US Patent No. 7589465.
- MacKenzie, J.D., Nakazawa, Y. and Jones, E. (2015) Encapsulation Process and Structure for Electronic Devices. US Patent No. 9099679.
- SAES Getters Group (2017) AqvaDry Transparent Dispensable Filler. SAES Getters Group. https://www.saesgetters.com/sites/default/files/AqvaDry%202017.pdf
- Choa, Y., Lim, H. and Eom, N. (2020) Thin Film Getter and Manufacturing Method therefor. US Patent Application No. 20200346184.
- Chuntonov, K., Atlas, A., Setina, J. and Douglass, G. (2016) Getters: From Classification to Materials Design. Journal of Materials Science and Chemical Engineering, 4, 23-34. https://doi.org/10.4236/msce.2016.43004
- Chuntonov, K.A. and Yatsenko, S.P. (2013) Getter Film for Small Vacuum Chamber. Recent Patents on Materials Science, 6, 29-39. https://doi.org/10.2174/1874464811306010029
- Fransen, J.J.B. and Perdijk, H.J.R. (1960) The Absorption of Gases by Barium Getter Films Applied as a Tool. Vacuum, 10, 199-203. https://doi.org/10.1016/0042-207X(60)90136-6
- Turnbull, J.C. (1977) Barium, Strontium, and Calcium as Getter in Electron Tubes. Journal of Vacuum Science and Technology, 14, 636-639. https://doi.org/10.1116/1.569166
- Ferrario, B. (1996) Chemical Pumping in Vacuum Technology. Vacuum, 47, 363-370. https://doi.org/10.1016/0042-207X(95)00252-9
- Hart, C.A., Skinner, C.H., Capece, A.M. and Koel, B.E. (2016) Sorption of Atmospheric Gases by Bulk Lithium Metal. Journal of Nuclear Materials, 468, 71-77. https://doi.org/10.1016/j.jnucmat.2015.11.006
- Larson, D.A. and Grove, C. (1971) Method of Sealing off a Refractory Metal Tubulation by Tube-in-Circuit Electric Heating. US Patent No. 3566067.
- Chuntonov, K.A. and Orlov, A.N. (1989) Metodicheskiye aspekti smesheniya splavov, soderzhashchich shchelochniye metallic [Methodological Aspects of Mixing Alloys Containing Alkali Metals]. Visokochistiye Veshchestva, 2, 100-105.