A temperature-dependent effect of Na2CO3 on water structure investigated from Raman spectroscopy
Qingcheng Hu1, Yajie Ma1, Xiang'en Wu2
1Inner Mongolia University of Science and Technology, College of Mining and Coal, Baotou 014010, China.
Abstract:
The hydrating structure of CO32- is investigated based on the solute-correlated (SC) OD/OH stretch bands obtained using Multivariate Curve Resolution on the Raman spectra of D2O/H2O-Na2CO3 solutions at temperatures up to 573 K. At temperatures below 413 K, the SC OD/OH stretch bands display a bimodal profile by the boundary at ∼2360 cm-1/∼3190 cm-1. As temperature increases over 433 K, the ∼2290 cm-1/∼3060 cm-1 peak is weakened and the bands get sunken around 2610 cm-1/3590 cm-1 above ∼473 K, making the 2670 cm-1/3635 cm-1 mode a separate peak at 573 K. The SC OH stretch main peak shifts by ∼120 cm-1 when temperature rises over 493 K but the SC OD stretch main peak remains at a nearly unchanged position because more HCO3- formed in H2O than DCO3- in D2O leads to less CO32--H2O interactions than CO32--D2O interactions above 453 K. These spectral features support a temperature-dependent hydrating water structure around CO32- balanced by the electrostatic, CO32-⋯H/D-O·and O-H/D⋯O hydrogen bonding interactions. Due to the strong electrostatics from CO32-, the dominated hydrogen bonding configuration among CO32- hydrated water is tetrahedral instead of single donor (SD) and single hydrogen-bond water (SHW), in contrast to the situations for SO42- and Cl-. CO32- changes from water structure breaker to water structure maker as temperature rises above ∼353 K where the tetrahedrality of hydrating water exceeds that in bulk water.
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