Tytuł pozycji:
Effective screening of Coulomb repulsions in water accelerates reactions of like-charged compounds by orders of magnitude
- Tytuł:
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Effective screening of Coulomb repulsions in water accelerates reactions of like-charged compounds by orders of magnitude
- Autorzy:
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Kowalski, Adam
Sashuk, Volodymyr
Czajkowski, Maciej
Hołyst, Robert
Huck, Wilhelm T. S.
Żuk, Paweł J.
Bielec, Krzysztof
Bubak, Grzegorz
Antosiewicz, Jan M.
- Współwytwórcy:
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University of Zurich, Department of Chemistry, Zurich, Switzerland
Institute of Experimental Physics, Biophysics Division, University of Warsaw, Poland
University of Oxford, Department of Chemistry, Oxford, UK
Institute for Molecules and Materials, Radboud University, Nijmegen, Netherlands
Institute of Physical Chemistry, Polish Academy of Sciences
- Data publikacji:
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2022-10-28
- Wydawca:
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Springer Nature
- Język:
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angielski
- ISBN, ISSN:
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20411723
- Prawa:
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http://creativecommons.org/licenses/by/4.0/
- Linki:
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https://depot.ceon.pl/handle/123456789/22425  Link otwiera się w nowym oknie
- Dostawca treści:
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Repozytorium Centrum Otwartej Nauki
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Przejdź do źródła  Link otwiera się w nowym oknie
The reaction kinetics between like-charged compounds in water is extremely slow due to Coulomb repulsions. Here, we demonstrate that by screening these interactions and, in consequence, increasing the local concentration of reactants, we boost the reactions by many orders of magnitude. The reaction between negatively charged Coenzyme A molecules accelerates ~5 million-fold using cationic micelles. That is ~104 faster kinetics than in 0.5 M NaCl, although the salt is ~106 more concentrated. Rate enhancements are not limited to micelles, as evidenced by significant catalytic effects (104–105-fold) of other highly charged species such as oligomers and polymers. We generalize the observed phenomenon by analogously speeding up a non-covalent complex formation—DNA hybridization. A theoretical analysis shows that the acceleration is correlated to the catalysts’ surface charge density in both experimental systems and enables predicting and controlling reaction rates of like-charged compounds with counter-charged species.
National Science Center, Poland, Preludium Bis 2020/39/O/ST4/00877
European Union’s Horizon 2020, Marie Skłodowska-Curie grant agreement No. 847413
Program of the Minister of Science and Higher Education entitled “PMW” in the years 2020–2024; agreement no. 5005/H2020-MSCACOFUND/2019/2.