首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Vibrational Spectroscopy of the Water-Nitrate Complex in the O-H Stretching Region
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Vibrational Spectroscopy of the Water-Nitrate Complex in the O-H Stretching Region

机译:O-H伸展区中硝酸水络合物的振动光谱

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The vibrational spectroscopy of the nitrate-water isotopologues is studied in the O-H and O-D stretching regions using temperature-dependent infrared multiple photon dissociation spectroscopy combined with calculations of the anharmonic spectra. At a temperature of 15 K a series of discrete peaks is observed in the IRMPD spectra of NO_3~-·H_2O, NO_3~-·HDO, and NO_3~-·D_2O. This structure is considerably more complex than predicted by harmonic calculations. A signal is only observed in the hydrogen-bonded O-H (O-D) stretching region, characteristic of a double hydrogen-bond donor binding motif. With increasing temperature, the peaks broaden, leading to a quasi-continuous absorption from 3150 to 3600 cm~(-1) (2300-2700cm~(-1)) for NO_3~-·H_2O (NO_3~-·D_2O) and, above 100 K, an additional band in the free O-H (O-D) stretching region, suggesting the population of complexes containing only a single hydrogen bond at higher internal energies. Vibrational configuration interaction calculations confirm that much of the structure observed in the IRMPD spectra derives from progressions in the water rocking mode resulting from strong cubic coupling between the O-H (O-D) stretch and water rock degrees of freedom. The spectra of both NO_3~-·H_2O and NO_3~-·D_2O display a strong peak that does not derive from the water rock progression but results instead from a Fermi resonance between the O-H (O-D) stretch and H-O-H (D-O-D) bend overtone. Additional insight into the nature of the O-H (O-D) stretch and water rocking coupling in these complexes is provided by an effective Hamiltonian that allows for the cubic coupling between the O-H stretch and water rock degrees of freedom.
机译:利用与温度有关的红外多光子解离光谱结合非谐谱的计算,研究了O-H和O-D拉伸区中硝酸盐-水同位素的振动光谱。在15 K的温度下,在NOMP3〜-·H_2O,NO_3〜-·HDO和NO_3〜-·D_2O的IRMPD光谱中观察到一系列离散峰。这种结构比谐波计算所预测的复杂得多。仅在氢键键合的O-H(O-D)拉伸区域中观察到信号,该信号具有双氢键键合的供体结合基序。随着温度升高,峰变宽,导致NO_3〜-·H_2O(NO_3〜-·D_2O)的吸收从3150 cm〜(-1)(2300-2700cm〜(-1))近似连续吸收,并且高于100 K时,在游离OH(OD)拉伸区域出现一个附加谱带,表明在较高内能下仅含一个氢键的络合物群。振动构型相互作用计算证实,IRMPD光谱中观察到的许多结构源自水摇摆模式的进展,这是由O-H(O-D)伸展度和水岩石自由度之间的强立方耦合引起的。 NO_3〜-·H_2O和NO_3〜-·D_2O的光谱均显示出一个强峰,该峰并非源于水岩石的发展,而是O-H(O-D)拉伸和H-O-H(D-O-D)弯曲泛音之间的费米共振。通过有效的哈密顿量,可以进一步了解这些配合物中O-H(O-D)拉伸和水摇摆耦合的性质,从而可以实现O-H拉伸和水岩石自由度之间的三次耦合。

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