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Diffusion of oxygen in water and hydrocarbons using an electron spin resonance spin-label technique.

机译:利用电子自旋共振自旋标记技术氧在水和碳氢化合物中的扩散。

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摘要

The Smoluchowski equation for the bimolecular collision rate of dissolved oxygen molecules with spin labels yielded values for the diffusion constant of oxygen in water that are in agreement with the Stokes-Einstein equation (D infinity T/eta, where eta is the macroscopic viscosity) and with published values obtained by conventional methods. Heisenberg exchange at an interaction distance of 4.5 A occurs with a probability close to one for each encounter. In mixed hydrocarbons (olive oil, paraffin oils) and sec-butyl benzene, D infinity (T/eta)rho, where rho lies between 0.5 and 1. Oxygen diffuses in the hydrocarbons between 10 and 100 times more rapidly than predicted from the macroscopic viscosity. Similar results would be expected for diffusion of oxygen in model and biological membranes. Parallel measurements of rotational diffusion of the spin labels show little correlation with measurements of translational diffusion of oxygen. Dipolar interactions between spin labels and oxygen appear negligible except in the limit of highest viscosities.
机译:具有自旋标记的溶解氧分子的双分子碰撞速率的Smoluchowski方程得出的氧在水中的扩散常数值与Stokes-Einstein方程一致(D无穷大T / eta,其中eta是宏观粘度)和具有通过常规方法获得的公开值。每次交互发生4.5 A的海森堡交换时,每次相遇的概率接近1。在混合碳氢化合物(橄榄油,石蜡油)和仲丁基苯中,D infinity(T / eta)rho,其中rho在0.5和1之间。氧在碳氢化合物中的扩散速度比宏观预测的快10到100倍粘度。对于氧气在模型和生物膜中的扩散,预期会有类似的结果。自旋标记的旋转扩散的并行测量显示与氧的平移扩散的测量几乎没有相关性。自旋标记物与氧气之间的偶极相互作用看起来可以忽略不计,除了最高粘度的限制。

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