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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Structure and water exchange of the hydrated thiosulfate ion in aqueous solution using QMCF MD simulation and large angle X-ray scattering?
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Structure and water exchange of the hydrated thiosulfate ion in aqueous solution using QMCF MD simulation and large angle X-ray scattering?

机译:使用QMCF MD模拟和大角度X射线散射分析水溶液中水合硫代硫酸根离子的结构和水交换?

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Theoretical ab initio quantum mechanical charge field molecular dynamics (QMCF MD) has been applied in conjunction with experimental large angle X-ray scattering (LAXS) to study the structure and dynamics of the hydrated thiosulfate ion, S_2O_3~(2?), in aqueous solution. The S–O and S_C–S_T bond distances have been determined to be 1.479(5) and 2.020(6) ? by LAXS and to be 1.478 and 2.017 ? by QMCF MD simulations, which are slightly longer than the mean values found in the solid state, 1.467 and 2.002 ?, respectively. This is due to the hydrogen bonds formed at hydration. The water dynamics show that water molecules are exchanged at the hydrated oxygen and sulfur atoms, and that the water exchange is ca. 50% faster at the sulfur atom than at the oxygen atoms with mean residence times, τ0.5, of 2.4 and 3.6 ps, respectively. From this point of view the water exchange dynamics mechanism resembles the sulfate ion, while it is significantly different from the sulfite ion. This shows that the lone electron-pair in the sulfite ion has a much larger impact on the water exchange dynamics than a substitution of an oxygen atom for a sulfur one. The LAXS data did give mean S_C?O_(aq1) and S_C?O_(aq2) distances of 3.66(2) and 4.36(10) ?, respectively, and S_C–O_(thio) and O_(thio)?O_(aq1), S_C–S_T and S_T?O_(aq2) distances of 1.479(5), 2.845(10), 2.020(6) and 3.24(5) ?, respectively, giving S_C–O_(thio)?O_(aq1) and S_C–S_T?O_(aq2) angles close to 110°, strongly indicating a tetrahedral geometry around the terminal thiosulfate sulfur and the oxygens, and thereby, three water molecules are hydrogen bound to each of them. The hydrogen bonds between thiosulfate oxygens and the hydrating water molecules are stronger and with longer mean residence times than those between water molecules in the aqueous bulk, while the opposite is true for the hydrogen bonds between the terminal thiosulfate sulfur and the hydrating water molecules. The hydration of all oxo sulfur ions is discussed using the detailed observations for the sulfate, thiosulfate and sulfite ions, and the structure of the hydrated peroxodisulfate ion, S_2O_8~(2?), in aqueous solution has been determined by means of LAXS to support the general observations. The mean S–O bond distances are 1.448(2) and 1.675(5) ? to the oxo and peroxo oxygens, respectively.
机译:理论上从头算起量子机械电荷场分子动力学(QMCF MD)结合实验大角度X射线散射(LAXS)研究了水合硫代硫酸根离子S_2O_3〜(2?)的结构和动力学解。 S-O和S_C-S_T键距已确定为1.479(5)和2.020(6)?由LAXS分别为1.478和2.017?通过QMCF MD模拟得到的结果,分别略长于固态的平均值1.467和2.002?。这是由于在水合时形成的氢键。水动力学表明,水分子在水合的氧原子和硫原子上交换,并且水交换约为。硫原子比氧原子快50%,平均停留时间τ0.5分别为2.4和3.6 ps。从这个角度看,水交换动力学机理类似于硫酸根离子,而与亚硫酸根离子却有很大不同。这表明亚硫酸根离子中的孤电子对对水交换动力学的影响远大于用氧原子取代硫原子。 LAXS数据确实给出了分别为3.66(2)和4.36(10)?的S_C?O_(aq1)和S_C?O_(aq2)平均距离,以及S_C–O_(thio)和O_(thio)?O_(aq1 ),S_C–S_T和S_T?O_(aq2)的距离分别为1.479(5),2.845(10),2.020(6)和3.24(5)?,得出S_C–O_(thio)?O_(aq1)和S_C–S_T?O_(aq2)角接近110°,强烈指示末端硫代硫酸盐硫和氧周围的四面体几何形状,因此,三个水分子被氢键合。硫代硫酸盐氧与水合水分子之间的氢键比水性本体中的水分子之间的氢键更强,并且具有更长的平均停留时间,而末端硫代硫酸盐硫与水合水分子之间的氢键则相反。通过对硫酸根,硫代硫酸根和亚硫酸根离子的详细观察,讨论了所有含氧硫离子的水合情况,并通过LAXS的测定,确定了水溶液中水合过氧二硫酸根离子S_2O_8〜(2?)的结构。一般观察。 S–O的平均键距为1.448(2)和1.675(5)?分别含氧和过氧。

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