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Correlation of Electrical and Permeability Properties of Ion-Selective Membranes

机译:离子选择膜的电导率和磁导率特性的相关性

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摘要

The linear phenomenological equations giving particle and practical fluxes of a single electrolyte across an ion-selective membrane are stated and interrelated. It is shown that the experimental measurements commonly made in biological and synthetic membrane studies may be used, with minor modification, to obtain the phenomenological transport coefficients and their concentration dependences. It is demonstrated that the electrical properties of a homogeneous membrane may be obtained as functions of the bathing solution concentration by combining fluxes measured under open and short circuit. Attention is paid to the use of radiotracers when measuring ionic fluxes. To obtain all the phenomenological coefficients at least one measurement must be made under a pressure gradient. The experimental difficulties in such measurements are discussed and the merits and demerits of various experiments considered. The problems of measuring potentials and concentrations at the low pressure face of a supported membrane make several mathematically simple approaches experimentally unattractive. The best methods appear to be either the measurement of a succession of “apparent osmotic pressures” under concentration differences sufficiently small that the membrane does not require support or the study of “reverse osmosis”. Sets of equations are given which enable the phenomenological coefficients to be evaluated from convenient experiments. With a stable homogeneous membrane nine coefficients may be obtained thus enabling either the applicability of the reciprocal relations or the applicability of linear theory under the conditions of the experiments to be tested. For a discontinuous system the six independent coefficients may be obtained from experiments in a single membrane cell.
机译:给出了线性现象学方程,这些方程给出了单个电解质在离子选择膜上的颗粒通量和实际通量。结果表明,在生物学和合成膜研究中通常进行的实验测量可以稍加修改即可用于获得现象学传输系数及其浓度依赖性。已经证明,通过组合在开路和短路条件下测得的通量,可以获得均质膜的电学性质作为浴液浓度的函数。在测量离子通量时应注意使用放射性示踪剂。为了获得所有现象学系数,必须在压力梯度下至少进行一次测量。讨论了这种测量中的实验困难,并考虑了各种实验的优缺点。测量被支撑膜的低压面上的电势和浓度的问题使得几种数学上简单的方法在实验上没有吸引力。最好的方法似乎是在足够小的浓度差以致膜不需要支撑的情况下测量一系列“表观渗透压”或研究“反渗透”。给出了方程组,这些方程组使得可以从方便的实验中评估现象学系数。利用稳定的均质膜,可以获得九个系数,从而使得在要测试的实验条件下,倒数关系的适用性或线性理论的适用性成为可能。对于不连续系统,可以从单个膜单元中的实验获得六个独立系数。

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