Water hydration at high pressure in Fe3+, Ni2+, and Cu2+ solutions probed by EXAFS

A A. Di Cicco N N. Hara (Physics Division, School of Science and Technology, University of Camerino 1 , 62032 Camerino,) R R. Felici (Physics Division, School of Science and Technology, University of Camerino 1 , 62032 Camerino,) G G. Tchoudinov (Physics Division, School of Science and Technology, University of Camerino 1 , 62032 Camerino,) A A. Trapananti K K. Yoshikawa (Physics Division, School of Science and Technology, University of Camerino 1 , 62032 Camerino,) K K. Hatada (Department of Physics, University of Toyama 2 , 3190 Gofuku, 930-8555 Toyama,) S S. Fanetti (Istituto di Chimica dei Composti OrganoMetallici, CNR-ICCOM 3 , 50019 Sesto Fiorentino,) M M. Santoro (Istituto Nazionale di Ottica, CNR-INO 4 , 50019 Sesto Fiorentino,) T T. Irifune (Geodynamics Research Center, Ehime University 5 , Matsuyama 790-8577,) M M. Busato (Dipartimento di Chimica, Sapienza Università di Roma 6 , P.le Aldo Moro 5, I-00185 Rome,) P P. D’Angelo (Dipartimento di Chimica, Sapienza Università di Roma 6 , P.le Aldo Moro 5, I-00185 Rome,) A A. D. Rosa (ESRF, The European Synchrotron 7 , 71 Avenue des Martyrs, CS40220, 38043 Grenoble Cedex 9,) E E. Mijit (ESRF, The European Synchrotron 7 , 71 Avenue des Martyrs, CS40220, 38043 Grenoble Cedex 9,)

Abstract

We report the results of an EXAFS (extended x-ray absorption fine structure) study of Fe3+, Ni2+, and Cu2+ aqueous solutions under high pressures. EXAFS experiments were performed using synchrotron radiation at room temperature and up to pressures of about 1.2 GPa using a diamond anvil cell. Data analysis has been performed using advanced multiple-scattering simulations, and information about the evolution of the first hydration shell around the metal ions has been obtained. It is shown that Fe3+ and Ni2+ solutions retain a local octahedral structure up to the highest pressure, while Cu2+ solutions show a predominant distorted pyramidal fivefold structure with two oxygen distances. The first-neighbor metal–oxygen distances show a different behavior with pressure in the three solutions, being gradually shortened for Ni2+ solutions or elongated in Fe3+ solutions (by ∼−0.01 and ∼0.02 Å respectively), while in Cu2+ solutions, the difference between average equatorial and axial Cu–O distances is gradually reduced. The present results show that pressure does not act as a simple isotropic perturbation on ionic hydration, which is found to be dependent on the bonding mechanisms and ligand-field anisotropy of transition-metal ions.

Article Details

Volume / Issue Vol. 164, Issue 8
Published February 28, 2026
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (14)

A

A. Di Cicco

N

N. Hara

Physics Division, School of Science and Technology, University of Camerino 1 , 62032 Camerino,

R

R. Felici

Physics Division, School of Science and Technology, University of Camerino 1 , 62032 Camerino,

G

G. Tchoudinov

Physics Division, School of Science and Technology, University of Camerino 1 , 62032 Camerino,

A

A. Trapananti

K

K. Yoshikawa

Physics Division, School of Science and Technology, University of Camerino 1 , 62032 Camerino,

K

K. Hatada

Department of Physics, University of Toyama 2 , 3190 Gofuku, 930-8555 Toyama,

S

S. Fanetti

Istituto di Chimica dei Composti OrganoMetallici, CNR-ICCOM 3 , 50019 Sesto Fiorentino,

M

M. Santoro

Istituto Nazionale di Ottica, CNR-INO 4 , 50019 Sesto Fiorentino,

T

T. Irifune

Geodynamics Research Center, Ehime University 5 , Matsuyama 790-8577,

M

M. Busato

Dipartimento di Chimica, Sapienza Università di Roma 6 , P.le Aldo Moro 5, I-00185 Rome,

P

P. D’Angelo

Dipartimento di Chimica, Sapienza Università di Roma 6 , P.le Aldo Moro 5, I-00185 Rome,

A

A. D. Rosa

ESRF, The European Synchrotron 7 , 71 Avenue des Martyrs, CS40220, 38043 Grenoble Cedex 9,

E

E. Mijit

ESRF, The European Synchrotron 7 , 71 Avenue des Martyrs, CS40220, 38043 Grenoble Cedex 9,