irmpd spectroscopy
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Molecules ◽  
2021 ◽  
Vol 27 (1) ◽  
pp. 38
Author(s):  
Haolu Wang ◽  
Matthias Heger ◽  
Mohamad H. Al-Jabiri ◽  
Yunjie Xu

The homo- and heterochiral protonated dimers of asparagine with serine and with valine were investigated using infrared multiple-photon dissociation (IRMPD) spectroscopy. Extensive quantum-chemical calculations were used in a three-tiered strategy to screen the conformational spaces of all four dimer species. The resulting binary structures were further grouped into five different types based on their intermolecular binding topologies and subunit configurations. For each dimer species, there are eight to fourteen final conformational geometries within a 10 kJ mol−1 window of the global minimum structure for each species. The comparison between the experimental IRMPD spectra and the simulated harmonic IR features allowed us to clearly identify the types of structures responsible for the observation. The monomeric subunits of the observed homo- and heterochiral dimers are compared to the corresponding protonated/neutral amino acid monomers observed experimentally in previous IRMDP/rotational spectroscopic studies. Possible chirality and kinetic influences on the experimental IRMPD spectra are discussed.


Author(s):  
Simon Becher ◽  
Giel Berden ◽  
Jonathan Martens ◽  
Jos Oomens ◽  
Sven Heiles

Molecules ◽  
2021 ◽  
Vol 26 (21) ◽  
pp. 6546
Author(s):  
Ruxia Feng ◽  
Yicheng Xu ◽  
Xianglei Kong

Although metal cations are prevalent in biological media, the species of multi-metal cationized biomolecules have received little attention so far. Studying these complexes in isolated state is important, since it provides intrinsic information about the interaction among them on the molecular level. Our investigation here demonstrates the unexpected structural diversity of such species generated by a matrix-assisted laser desorption ionization (MALDI) source in the gas phase. The photodissociation spectroscopic and theoretical study reflects that the co-existing isomers of [Arg+Rb+K−H]+ can have energies ≥95 kJ/mol higher than that of the most stable one. While the result can be rationalized by the great isomerization energy barrier due to the coordination, it strongly reminds us to pay more attention to their structural diversities for multi-metalized fundamental biological molecules, especially for the ones with the ubiquitous alkali metal ions.


2021 ◽  
Vol 125 (34) ◽  
pp. 7449-7456
Author(s):  
Åke Andersson ◽  
Mathias Poline ◽  
Kas J. Houthuijs ◽  
Rianne E. van Outersterp ◽  
Giel Berden ◽  
...  
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2021 ◽  
Author(s):  
Christian van der Linde ◽  
Martin Beyer ◽  
Milan Oncak ◽  
Maximilian Münst
Keyword(s):  

2021 ◽  
Vol 22 (11) ◽  
pp. 6026
Author(s):  
Ethan M. Cunningham ◽  
Thomas Taxer ◽  
Jakob Heller ◽  
Milan Ončák ◽  
Christian van der Linde ◽  
...  

Investigating metal-ion solvation—in particular, the fundamental binding interactions—enhances the understanding of many processes, including hydrogen production via catalysis at metal centers and metal corrosion. Infrared spectra of the hydrated zinc dimer (Zn2+(H2O)n; n = 1–20) were measured in the O–H stretching region, using infrared multiple photon dissociation (IRMPD) spectroscopy. These spectra were then compared with those calculated by using density functional theory. For all cluster sizes, calculated structures adopting asymmetric solvation to one Zn atom in the dimer were found to lie lower in energy than structures adopting symmetric solvation to both Zn atoms. Combining experiment and theory, the spectra show that water molecules preferentially bind to one Zn atom, adopting water binding motifs similar to the Zn+(H2O)n complexes studied previously. A lower coordination number of 2 was observed for Zn2+(H2O)3, evident from the highly red-shifted band in the hydrogen bonding region. Photodissociation leading to loss of a neutral Zn atom was observed only for n = 3, attributed to a particularly low calculated Zn binding energy for this cluster size.


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