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Synthesis of Mg and Zn diolates and their use in metal oxide deposition

The synthesis of complexes [M(OCHMeCH(2)NMeCH(2))(2)] (5, M = Mg; 7, M = Zn) is described. Treatment of MeHNCH(2)CH(2)NMeH (1) with 2-methyloxirane (2) gave diol (HOCHMeCH(2)NMeCH(2))(2) (3), which upon reaction with equimolar amounts of MR(2) (4, M = Mg, R = Bu; 6, M = Zn, R = Et) gave 5 and 7. The...

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Autores principales: Frenzel, Peter, Preuß, Andrea, Bankwitz, Jörn, Georgi, Colin, Ganss, Fabian, Mertens, Lutz, Schulz, Stefan E., Hellwig, Olav, Mehring, Michael, Lang, Heinrich
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9062479/
https://www.ncbi.nlm.nih.gov/pubmed/35515315
http://dx.doi.org/10.1039/c9ra00585d
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author Frenzel, Peter
Preuß, Andrea
Bankwitz, Jörn
Georgi, Colin
Ganss, Fabian
Mertens, Lutz
Schulz, Stefan E.
Hellwig, Olav
Mehring, Michael
Lang, Heinrich
author_facet Frenzel, Peter
Preuß, Andrea
Bankwitz, Jörn
Georgi, Colin
Ganss, Fabian
Mertens, Lutz
Schulz, Stefan E.
Hellwig, Olav
Mehring, Michael
Lang, Heinrich
author_sort Frenzel, Peter
collection PubMed
description The synthesis of complexes [M(OCHMeCH(2)NMeCH(2))(2)] (5, M = Mg; 7, M = Zn) is described. Treatment of MeHNCH(2)CH(2)NMeH (1) with 2-methyloxirane (2) gave diol (HOCHMeCH(2)NMeCH(2))(2) (3), which upon reaction with equimolar amounts of MR(2) (4, M = Mg, R = Bu; 6, M = Zn, R = Et) gave 5 and 7. The thermal behavior and vapor pressure of 5 and 7 were investigated to show whether they are suited as CVD (= chemical vapor deposition) and/or spin-coating precursors for MgO or ZnO layer formation. Thermogravimetric (TG) studies revealed that 5 and 7 decompose between 80–530 °C forming MgO and ZnO as evidenced by PXRD studies. In addition, TG-MS-coupled experiments were carried out with 7 proving that decomposition occurs by M–O, C–O, C–N and C–C bond cleavages, as evidenced from the detection of fragments such as CH(4)N(+), C(2)H(4)N(+), C(2)H(5)N(+), CH(2)O(+), C(2)H(2)O(+) and C(2)H(3)O(+). The vapor pressure of 7 was measured at 10.4 mbar at 160 °C, while 5 is non-volatile. The layers obtained by CVD are dense and conformal with a somewhat granulated surface morphology as evidenced by SEM studies. In addition, spin–coating experiments using 5 and 7 as precursors were applied. The corresponding MO layer thicknesses are between 7–140 nm (CVD) or 80 nm and 65 nm (5, 7; spin-coating). EDX and XPS measurements confirm the formation of MgO and ZnO films, however, containing 12–24 mol% (CVD) or 5–9 mol% (spin-coating) carbon. GIXRD studies verify the crystalline character of the deposited layers obtained by CVD and the spin-coating processes.
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spelling pubmed-90624792022-05-04 Synthesis of Mg and Zn diolates and their use in metal oxide deposition Frenzel, Peter Preuß, Andrea Bankwitz, Jörn Georgi, Colin Ganss, Fabian Mertens, Lutz Schulz, Stefan E. Hellwig, Olav Mehring, Michael Lang, Heinrich RSC Adv Chemistry The synthesis of complexes [M(OCHMeCH(2)NMeCH(2))(2)] (5, M = Mg; 7, M = Zn) is described. Treatment of MeHNCH(2)CH(2)NMeH (1) with 2-methyloxirane (2) gave diol (HOCHMeCH(2)NMeCH(2))(2) (3), which upon reaction with equimolar amounts of MR(2) (4, M = Mg, R = Bu; 6, M = Zn, R = Et) gave 5 and 7. The thermal behavior and vapor pressure of 5 and 7 were investigated to show whether they are suited as CVD (= chemical vapor deposition) and/or spin-coating precursors for MgO or ZnO layer formation. Thermogravimetric (TG) studies revealed that 5 and 7 decompose between 80–530 °C forming MgO and ZnO as evidenced by PXRD studies. In addition, TG-MS-coupled experiments were carried out with 7 proving that decomposition occurs by M–O, C–O, C–N and C–C bond cleavages, as evidenced from the detection of fragments such as CH(4)N(+), C(2)H(4)N(+), C(2)H(5)N(+), CH(2)O(+), C(2)H(2)O(+) and C(2)H(3)O(+). The vapor pressure of 7 was measured at 10.4 mbar at 160 °C, while 5 is non-volatile. The layers obtained by CVD are dense and conformal with a somewhat granulated surface morphology as evidenced by SEM studies. In addition, spin–coating experiments using 5 and 7 as precursors were applied. The corresponding MO layer thicknesses are between 7–140 nm (CVD) or 80 nm and 65 nm (5, 7; spin-coating). EDX and XPS measurements confirm the formation of MgO and ZnO films, however, containing 12–24 mol% (CVD) or 5–9 mol% (spin-coating) carbon. GIXRD studies verify the crystalline character of the deposited layers obtained by CVD and the spin-coating processes. The Royal Society of Chemistry 2019-04-05 /pmc/articles/PMC9062479/ /pubmed/35515315 http://dx.doi.org/10.1039/c9ra00585d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Frenzel, Peter
Preuß, Andrea
Bankwitz, Jörn
Georgi, Colin
Ganss, Fabian
Mertens, Lutz
Schulz, Stefan E.
Hellwig, Olav
Mehring, Michael
Lang, Heinrich
Synthesis of Mg and Zn diolates and their use in metal oxide deposition
title Synthesis of Mg and Zn diolates and their use in metal oxide deposition
title_full Synthesis of Mg and Zn diolates and their use in metal oxide deposition
title_fullStr Synthesis of Mg and Zn diolates and their use in metal oxide deposition
title_full_unstemmed Synthesis of Mg and Zn diolates and their use in metal oxide deposition
title_short Synthesis of Mg and Zn diolates and their use in metal oxide deposition
title_sort synthesis of mg and zn diolates and their use in metal oxide deposition
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9062479/
https://www.ncbi.nlm.nih.gov/pubmed/35515315
http://dx.doi.org/10.1039/c9ra00585d
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