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利用液膜进行氨基酸的分离与浓缩。

Separation and concentration of amino acids using liquid emulsion membranes.

作者信息

Thein M P, Hatton T A, Wang D I

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.

出版信息

Biotechnol Bioeng. 1988 Aug 20;32(5):604-15. doi: 10.1002/bit.260320505.

Abstract

The separation and concentration of amino acids using liquid emulsion membranes (LEMs) are discussed. Using L- phenylalanines as a model solute, it is experimentally shown using a facilitated transport system that separation and concentration can be simultaneously achieved. The rate of separation, final product concentration, and membrane swell are shown to increase with increasing chloride driving forces in the membrane, These effects are shown to be insensitive to the particular salt used as the driving force. Changes in the carrier concentration are shown to result in higher initial fluxes and higher swell rates. Hydrodynamically induced membrane breakage is minimal for the system under consideration. Experiments indicate that osmotically induced water transport ("swelling") in the LEM system is mediated by both the carrier and the emulsion-stabilizing surfactant. The data suggest that this swell is a diffusion-limited process. The specificity of the carrier is examined and is found to be directly related to the hydrophobicity of the solute. Strategies for optimizing LEM formulations are discussed. Emphasis is placed on the hydration characteristics of the surfactant and the specificity of the carrier.

摘要

讨论了使用液膜乳液(LEM)分离和浓缩氨基酸的方法。以L-苯丙氨酸作为模型溶质,通过促进传输系统进行实验表明,可以同时实现分离和浓缩。分离速率、最终产物浓度和膜溶胀率随膜中氯化物驱动力的增加而增加,这些效应表明对用作驱动力的特定盐不敏感。载体浓度的变化会导致更高的初始通量和更高的溶胀率。在所考虑的系统中,流体动力学引起的膜破裂最小。实验表明,LEM系统中渗透诱导的水传输(“溶胀”)由载体和乳液稳定表面活性剂共同介导。数据表明这种溶胀是一个扩散受限的过程。研究了载体的特异性,发现其与溶质的疏水性直接相关。讨论了优化LEM配方的策略。重点是表面活性剂的水合特性和载体的特异性。

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