首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Average sequential water molecule binding enthalpies of M(H 2O)19-1242+ (M = Co, Fe, Mn, and Cu) measured with ultraviolet photodissociation at 193 and 248 nm
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Average sequential water molecule binding enthalpies of M(H 2O)19-1242+ (M = Co, Fe, Mn, and Cu) measured with ultraviolet photodissociation at 193 and 248 nm

机译:M(H 2O)19-1242 +(M = Co,Fe,Mn和Cu)的平均顺序水分子结合焓在193和248 nm处进行紫外光解离

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摘要

The average sequential water molecule binding enthalpies to large water clusters (between 19 and 124 water molecules) containing divalent ions were obtained by measuring the average number of water molecules lost upon absorption of an UV photon (193 or 248 nm) and using a statistical model to account for the energy released into translations, rotations, and vibrations of the products. These values agree well with the trend established by more conventional methods for obtaining sequential binding enthalpies to much smaller hydrated divalent ions. The average binding enthalpies decrease to a value of ~10.4 kcal/mol for n > ~40 and are insensitive to the ion identity at large cluster size. This value is close to that of the bulk heat of vaporization of water (10.6 kcal/mol) and indicates that the structure of water in these clusters may more closely resemble that of bulk liquid water than ice, owing either to a freezing point depression or rapid evaporative cooling and kinetic trapping of the initial liquid droplet. A discrete implementation of the Thomson equation using parameters for liquid water at 0 °C generally fits the trend in these data but provides values that are ~0.5 kcal/mol too low.
机译:通过测量吸收紫外线光子(193或248 nm)后损失的平均水分子数,可以获得与包含二价离子的大型水簇(19至124个水分子)的平均顺序水分子结合焓。考虑到产品平移,旋转和振动释放的能量。这些值与通过更常规的方法建立的趋势相一致,该趋势用于获得与更小的水合二价离子的顺序结合焓。当n>〜40时,平均结合焓降低到〜10.4 kcal / mol的值,并且在大簇尺寸下对离子身份不敏感。该值接近于水汽化的总热量(10.6 kcal / mol),表明这些团簇中的水结构可能由于冰点降低或冰点降低而比冰更类似于液态水。快速蒸发冷却并动态捕获初始液滴。使用温度为0°C的液态水的参数的Thomson方程的离散实现通常符合这些数据的趋势,但提供的值太低了〜0.5 kcal / mol。

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