Complex reaction kinetics of a Mannich reaction in droplets under electrospray conditions

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autorschaft

  • Martin Zühlke
  • Justin Koenig
  • Chris Prüfert
  • Stephan Sass
  • Toralf Beitz
  • Hans Gerd Löhmannsröben
  • Christian Thoben
  • Stefan Zimmermann
  • Raphael D. Urban
  • Bernd Abel

Externe Organisationen

  • Universität Potsdam
  • Universität Leipzig
  • Leibniz-Institut für Oberflächenmodifizierung e.V. (IOM)
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Details

OriginalspracheEnglisch
Seiten (von - bis)11732-11744
Seitenumfang13
FachzeitschriftPhysical Chemistry Chemical Physics
Jahrgang25
Ausgabenummer16
PublikationsstatusVeröffentlicht - 17 Apr. 2023

Abstract

Precise, efficient, and effective control of chemical reaction conditions is a viable measure for the environment-conscious time and energy resource management in modern laboratories and in industry. Parameter changes such as surface enlargement, pH, local reactant accumulation by solvent evaporation and polarization effects, etc., have been shown to greatly affect the reaction rate of a chemical reaction. In electrospray (ES) ionization - a soft ionization method often used for mass spectrometry - all these parameters change constantly and with high dynamics during the nebulization process that generates droplets as the ultimate confined μ-reaction vessels. Therefore, high acceleration factors are reported in literature for a manifold of such μ-droplet reactions. Here, the tri-molecular Mannich reaction was identified as a suitable candidate for studying thermal, electronic, and fluidic manipulation of the ES process to achieve high conversion rates with short reaction times and compare them to the batch reaction. Some of these manipulations were conducted separately to better quantify their individual contributions. Here, the keto-enol-tautomerism of the used β-diketones, the high proton concentrations, and the longer reaction times in the μ-droplets are presumed to have the greatest impact on these enhancement factors. Experiments were performed to find ES conditions with small initial droplets and long droplet flight times where the highest reaction conversion rates are obtained. A sharp increase in the product peak was found at large distances between the mass spectrometry (MS) inlet and ES source at high voltages. Moreover, different trends were found for the two ketones studied, acetylacetone (AcAc) and 1,3-cyclohexanedione (Cyclo), by changing the temperature of the heated ES source. Finally, high conversion rates were obtained for the combination of formaldehyde (Fal) and piperidine (Pip) with AcAc and Cyclo, respectively, with over 90%. With respect to the batch reaction, this is mainly due to an increase in reaction kinetics as well as a shift in thermodynamics for the μ-droplet reaction environment.

ASJC Scopus Sachgebiete

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Complex reaction kinetics of a Mannich reaction in droplets under electrospray conditions. / Zühlke, Martin; Koenig, Justin; Prüfert, Chris et al.
in: Physical Chemistry Chemical Physics, Jahrgang 25, Nr. 16, 17.04.2023, S. 11732-11744.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Zühlke, M, Koenig, J, Prüfert, C, Sass, S, Beitz, T, Löhmannsröben, HG, Thoben, C, Zimmermann, S, Urban, RD & Abel, B 2023, 'Complex reaction kinetics of a Mannich reaction in droplets under electrospray conditions', Physical Chemistry Chemical Physics, Jg. 25, Nr. 16, S. 11732-11744. https://doi.org/10.1039/d2cp05392f
Zühlke, M., Koenig, J., Prüfert, C., Sass, S., Beitz, T., Löhmannsröben, H. G., Thoben, C., Zimmermann, S., Urban, R. D., & Abel, B. (2023). Complex reaction kinetics of a Mannich reaction in droplets under electrospray conditions. Physical Chemistry Chemical Physics, 25(16), 11732-11744. https://doi.org/10.1039/d2cp05392f
Zühlke M, Koenig J, Prüfert C, Sass S, Beitz T, Löhmannsröben HG et al. Complex reaction kinetics of a Mannich reaction in droplets under electrospray conditions. Physical Chemistry Chemical Physics. 2023 Apr 17;25(16):11732-11744. doi: 10.1039/d2cp05392f
Zühlke, Martin ; Koenig, Justin ; Prüfert, Chris et al. / Complex reaction kinetics of a Mannich reaction in droplets under electrospray conditions. in: Physical Chemistry Chemical Physics. 2023 ; Jahrgang 25, Nr. 16. S. 11732-11744.
Download
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abstract = "Precise, efficient, and effective control of chemical reaction conditions is a viable measure for the environment-conscious time and energy resource management in modern laboratories and in industry. Parameter changes such as surface enlargement, pH, local reactant accumulation by solvent evaporation and polarization effects, etc., have been shown to greatly affect the reaction rate of a chemical reaction. In electrospray (ES) ionization - a soft ionization method often used for mass spectrometry - all these parameters change constantly and with high dynamics during the nebulization process that generates droplets as the ultimate confined μ-reaction vessels. Therefore, high acceleration factors are reported in literature for a manifold of such μ-droplet reactions. Here, the tri-molecular Mannich reaction was identified as a suitable candidate for studying thermal, electronic, and fluidic manipulation of the ES process to achieve high conversion rates with short reaction times and compare them to the batch reaction. Some of these manipulations were conducted separately to better quantify their individual contributions. Here, the keto-enol-tautomerism of the used β-diketones, the high proton concentrations, and the longer reaction times in the μ-droplets are presumed to have the greatest impact on these enhancement factors. Experiments were performed to find ES conditions with small initial droplets and long droplet flight times where the highest reaction conversion rates are obtained. A sharp increase in the product peak was found at large distances between the mass spectrometry (MS) inlet and ES source at high voltages. Moreover, different trends were found for the two ketones studied, acetylacetone (AcAc) and 1,3-cyclohexanedione (Cyclo), by changing the temperature of the heated ES source. Finally, high conversion rates were obtained for the combination of formaldehyde (Fal) and piperidine (Pip) with AcAc and Cyclo, respectively, with over 90%. With respect to the batch reaction, this is mainly due to an increase in reaction kinetics as well as a shift in thermodynamics for the μ-droplet reaction environment.",
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T1 - Complex reaction kinetics of a Mannich reaction in droplets under electrospray conditions

AU - Zühlke, Martin

AU - Koenig, Justin

AU - Prüfert, Chris

AU - Sass, Stephan

AU - Beitz, Toralf

AU - Löhmannsröben, Hans Gerd

AU - Thoben, Christian

AU - Zimmermann, Stefan

AU - Urban, Raphael D.

AU - Abel, Bernd

N1 - Funding Information: The authors thank Prof. Dr Vladimir Azov for providing help and information for the synthesis of 3-hydroxy-2-(piperidin-1-ylmethyl)cyclohex-2-en-1-one, Nadja Schönherr and Dr Jan Griebel for conducting NMR-measurements. Special thanks go to Francine Horn for help in the initial stage of the project and assistance with batch reaction sampling and sample preparation. Furthermore, we thank Christian-Robert Raddatz for preparing the IMS-System for the commercial HESI-source and Leonard Genin for help with the HESI-MS measurements. This work was funded as part of the research group (FOR 2177, project number: 275653032) by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation).

PY - 2023/4/17

Y1 - 2023/4/17

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