Weakening Chaotropic Effect of Li<sup>+</sup> in Two-Dimensional Confined Channels via Coulomb Interactions for Efficient Li<sup>+</sup>/Mg<sup>2+</sup> Separation.
basic_science · Level V
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- Record sourced from PubMed, PMID 41888081.
- Also identified by DOI 10.1021/acsnano.5c21440.
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Abstract
The poorly solvated nature of Li<sup>+</sup> induces a strong interfacial affinity at the walls of the two-dimensional (2D) confined channels, a phenomenon referred to as the "chaotropic effect". This phenomenon severely hinders the transport of Li<sup>+</sup> by creating substantial interfacial barriers, thereby compromising the Li<sup>+</sup>/Mg<sup>2+</sup> separation efficiency. To tackle this challenge, we developed a strategy of grafting charged groups, such as sulfonates, onto the walls of graphene oxide (GO) channels. Theoretical simulations demonstrate that the Coulomb attraction between the negatively charged sulfonates and Li<sup>+</sup> effectively repositions Li<sup>+</sup> away from the channel walls toward the central region. This strategic redistribution of Li<sup>+</sup> reduces the unfavorable Li<sup>+</sup>-wall interaction energy from -31.18 kJ/mol to -5.26 kJ/mol and suppresses the Li<sup>+</sup>'s hydration shell reconfiguration by approximately 49%. We experimentally engineered a sulfonated GO membrane that yields an almost 2-order-of-magnitude enhancement in Li<sup>+</sup>/Mg<sup>2+</sup> selectivity and concurrently boosts Li<sup>+</sup> flux by a factor of 5 compared with the pristine GO membrane, further firmly validating the feasibility of our strategy. This work establishes a conceptual framework for realizing highly efficient ion separation through 2D membranes.