Mean Inner Potential of Liquid Water

Improving our experimental and theoretical knowledge of electric potentials at liquid-solid boundaries is essential to achieve a deeper understanding of the driving forces behind interfacial processes. Electron holography has proved successful in probing solid-solid interfaces but requires knowledge...

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Veröffentlicht in:Physical review letters 2020-02, Vol.124 (6), p.065502-065502, Article 065502
Hauptverfasser: Yesibolati, Murat Nulati, Lagana, Simone, Sun, Hongyu, Beleggia, Marco, Kathmann, Shawn M., Kasama, Takeshi, Molhave, Kristian
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Sprache:eng
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Zusammenfassung:Improving our experimental and theoretical knowledge of electric potentials at liquid-solid boundaries is essential to achieve a deeper understanding of the driving forces behind interfacial processes. Electron holography has proved successful in probing solid-solid interfaces but requires knowledge of the materials' mean inner potential (MIP, V-0), which is a fundamental bulk material property. Combining off-axis electron holography with liquid phase transmission electron microscopy (LPTEM), we provide the first quantitative MIP determination of liquid water V-0 = +4.48 +/- 0.19 V. This value is larger than most theoretical predictions, and to explain the disagreement we assess the dominant factors needed in quantum simulations of liquid water. A precise MIP lays the foundations for nanoscale holographic potential measurements in liquids, and provides a benchmark to improve quantum mechanical descriptions of aqueous systems and their interfaces in, e.g., electrochemistry, solvation processes, and spectroscopy.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.124.065502