Advanced Light Source, Lawrence Berkeley National Laboratory, Berkeley, CA, 94720, USA.
McKetta Department of Chemical Engineering, The University of Texas at Austin, Austin, TX, 78712, USA.
Nat Commun. 2022 Oct 6;13(1):5880. doi: 10.1038/s41467-022-33592-3.
Selective transport of solutes across a membrane is critical for many biological, water treatment and energy conversion and storage systems. When a charged membrane is equilibrated with an electrolyte, an unequal distribution of ions arises between phases, generating the so-called Donnan electrical potential at the solution/membrane interface. The Donnan potential results in the partial exclusion of co-ion, providing the basis of permselectivity. Although there are well-established ways to indirectly estimate the Donnan potential, it has been widely reported that it cannot be measured directly. Here we report the first direct measurement of the Donnan potential of an ion exchange membrane equilibrated with salt solutions. Our results highlight the dependence of the Donnan potential on external salt concentration and counter-ion valence, and show a reasonable agreement with current theoretical models of IEMs, which incorporate ion activity coefficients. By directly measuring the Donnan potential, we eliminate ambiguities that arise from limitations inherent in current models.
溶质在膜中的选择性传输对于许多生物、水处理和能量转换与存储系统至关重要。当带电荷的膜与电解质达到平衡时,离子在相间会出现不均匀分布,在溶液/膜界面产生所谓的唐南电势。唐南电势导致共离子的部分排斥,为选择性提供了基础。尽管有许多成熟的方法可以间接估计唐南电势,但广泛报道的是,它不能直接测量。在这里,我们报告了首次直接测量与盐溶液达到平衡的离子交换膜的唐南电势。我们的结果突出显示了唐南电势对外界盐浓度和抗衡离子价态的依赖性,并与当前包含离子活度系数的 IEM 理论模型具有合理的一致性。通过直接测量唐南电势,我们消除了当前模型固有局限性所带来的歧义。