1998•The Knowledge Bank (The Ohio State University)Requires access

MICROWAVE SPECTROSCOPY OF THE $NaCl-(H_{2}O)_{n} (n = 1, 2, 3)$ COMPLEXES

Asao Mizoguchi, Yasuki Endo, Yasuhiro Ohshima

Open publisher page 0 citations

Abstract

We report a microwave spectroscopic study of the $NaCl-(H_{2}O)_{n} (n = 1, 2, 3)$ complexes. In the frequency region from 5 to 25 GHz, rotational spectra of $NaCl-(H_{2}O)_{n} (n = 1, 2, 3)$ have been observed for the first time by using a Fourier-transform microwave spectrometer coupled to a laser ablation source. Molecular constants including the nuclear quadrupole coupling constants of Na and Cl nuclei were precisely determined for each complex. We observed various isotopic species of each complex to determine the molecular structures. $NaCl-H_{2}O$ has a nearly planar and cyclic (Na-Cl-H-O) structure, $NaCl-(H_{2}O)_{2}$ has a $C_{2}$ structure with two equivalent $H_{2}O$, and $NaCl-(H_{2}O)_{3}$ is a symmetric top molecule with three equivalent $H_{2}O$. The determined structures clearly show that the bond length $r(NaCl)$ increases monotonically with the number of $H_{2}O$. The determined nuclear quadrupole coupling constants of the Na and Cl nuclei show considerable changes of charge distribution around these atoms.

About this research paper

What this paper is about

We report a microwave spectroscopic study of the $NaCl-(H_{2}O)_{n} (n = 1, 2, 3)$ complexes. In the frequency region from 5 to 25 GHz, rotational spectra of $NaCl-(H_{2}O)_{n} (n = 1, 2, 3)$ have been observed for the first time by using a Fourier-transform microwave spectrometer coupled to a laser ablation source. Molecular constants including the nuclear quadrupole coupling constants of Na and Cl nuclei were precisely determined for each complex. We observed various isotopic species of each complex to determine the molecular structures. $NaCl-H_{2}O$ has a nearly planar and cyclic (Na-Cl-H-O) structure, $NaCl-(H_{2}O)_{2}$ has a $C_{2}$ structure with two equivalent $H_{2}O$, and $NaCl-(H_{2}O)_{3}$ is a symmetric top molecule with three equivalent $H_{2}O$. The determined structures clearly show that the bond length $r(NaCl)$ increases monotonically with the number of $H_{2}O$. The determined nuclear quadrupole coupling constants of the Na and Cl nuclei show considerable changes of charge distribution around these atoms.

Why it matters

A significance statement is not available in the OpenAlex record.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

We report a microwave spectroscopic study of the $NaCl-(H_{2}O)_{n} (n = 1, 2, 3)$ complexes. In the frequency region from 5 to 25 GHz, rotational spectra of $NaCl-(H_{2}O)_{n} (n = 1, 2, 3)$ have been observed for the first time by using a Fourier-transform microwave spectrometer coupled to a laser ablation source. Molecular constants including the nuclear quadrupole coupling constants of Na and Cl nuclei were precisely determined for each complex. We observed various isotopic species of each complex to determine the molecular structures. $NaCl-H_{2}O$ has a nearly planar and cyclic (Na-Cl-H-O) structure, $NaCl-(H_{2}O)_{2}$ has a $C_{2}$ structure with two equivalent $H_{2}O$, and $NaCl-(H_{2}O)_{3}$ is a symmetric top molecule with three equivalent $H_{2}O$. The determined structures clearly show that the bond length $r(NaCl)$ increases monotonically with the number of $H_{2}O$. The determined nuclear quadrupole coupling constants of the Na and Cl nuclei show considerable changes of charge distribution around these atoms.

Key concepts: Spectroscopy, Chemistry, Physics, Quantum mechanics

Related papers

Back to paper searchBrowse research topicsOriginal source
MICROWAVE SPECTROSCOPY OF THE $NaCl-(H_{2}O)_{n} (n = 1, 2, 3)$ COMPLEXES — Research Paper | ScholarLens