The connection between specific features in the water X-ray absorption spectrum and X-ray emission spectrum (XES) and the local H-bond coordination is studied based on structures obtained from path-integral molecular dynamics simulations using either the opt-PBE-vdW density functional or the MB-pol force field. Computing the XES spectrum using all molecules in a snapshot results in only one peak in the lone-pair (1b1) region, while the experiment shows two peaks separated by 0.8-0.9 eV. Different H-bond configurations were classified based on the local structure index (LSI) and a geometrical H-bond cone criterion. We find that tetrahedrally coordinated molecules characterized by high LSI values and two strong donated and two strong accepted H-bonds contribute to the low energy 1b1 emission peak and to the post-edge region in absorption. Molecules with the asymmetric H-bond environment with one strong accepted H-bond and one strong donated H-bond and low LSI values give rise to the high energy 1b1 peak in the emission spectrum and mainly contribute to the pre-edge and main-edge in the absorption spectrum. The 1b1 peak splitting can be increased to 0.62 eV by imposing constraints on the H-bond length, i.e., for very tetrahedral structures short H-bonds (less than 2.68 Å) and for very asymmetric structures elongated H-bonds (longer than 2.8 Å). Such structures are present, but underrepresented, in the simulations which give more of an average of the two extremes.
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14 April 2018
Research Article|
April 10 2018
Relationship between x-ray emission and absorption spectroscopy and the local H-bond environment in water
Iurii Zhovtobriukh;
Iurii Zhovtobriukh
1
FYSIKUM, Stockholm University, Albanova University Center
, SE-106 91 Stockholm, Sweden
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Nicholas A. Besley
;
Nicholas A. Besley
2
School of Chemistry, The University of Nottingham
, University Park, Nottingham NG72RD, United Kingdom
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Thomas Fransson
;
Thomas Fransson
a)
3
Stanford PULSE Institute, SLAC National Accelerator Laboratory
, Menlo Park, California 94025, USA
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Anders Nilsson;
Anders Nilsson
1
FYSIKUM, Stockholm University, Albanova University Center
, SE-106 91 Stockholm, Sweden
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Lars G. M. Pettersson
Lars G. M. Pettersson
b)
1
FYSIKUM, Stockholm University, Albanova University Center
, SE-106 91 Stockholm, Sweden
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Iurii Zhovtobriukh
1
Nicholas A. Besley
2
Thomas Fransson
3,a)
Anders Nilsson
1
Lars G. M. Pettersson
1,b)
1
FYSIKUM, Stockholm University, Albanova University Center
, SE-106 91 Stockholm, Sweden
2
School of Chemistry, The University of Nottingham
, University Park, Nottingham NG72RD, United Kingdom
3
Stanford PULSE Institute, SLAC National Accelerator Laboratory
, Menlo Park, California 94025, USA
a)
Present address: Interdisciplinary Center for Scientific Computing, University of Heidelberg, Im Neuenheimer Feld 205, 69120 Heidelberg, Germany.
b)
E-mail: [email protected]. Tel.: +46(8)55378712.
J. Chem. Phys. 148, 144507 (2018)
Article history
Received:
October 16 2017
Accepted:
March 12 2018
Citation
Iurii Zhovtobriukh, Nicholas A. Besley, Thomas Fransson, Anders Nilsson, Lars G. M. Pettersson; Relationship between x-ray emission and absorption spectroscopy and the local H-bond environment in water. J. Chem. Phys. 14 April 2018; 148 (14): 144507. https://doi.org/10.1063/1.5009457
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