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The Flip-Flop Diffusion Mechanism across Lipids in a Hybrid Bilayer Membrane

机译:混合双层膜中脂质间的触发器扩散机制

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In this study, we examine the mechanism of flip-flop diffusion of proton carriers across the lipid layer of a hybrid bilayer membrane (HBM). The HBM consists of a lipid monolayer appended on top of a self-assembled monolayer containing a Cu-based O-2 reduction catalyst on a Au electrode. The flip-flop diffusion rates of the proton carriers dictate the kinetics of O2 reduction by the electrocatalyst. By varying both the tail lengths of the proton carriers and the lipids, we find the combinations of lengths that maximize the flip-flop diffusion rate. These experimental results combined with biophysical modeling studies allow us to propose a detailed mechanism for transmembrane flip-flop diffusion in HBM systems, which involves the bending of the alkyl tail of the proton carrier as the rate-determining step. Additional studies with an unbendable proton carrier further validate these mechanistic findings.
机译:在这项研究中,我们研究了质子载体在混合双层膜(HBM)脂质层上的扩散扩散机制。 HBM由附着在自组装单层顶部的脂质单层组成,该自组装单层在Au电极上包含基于Cu的O-2还原催化剂。质子载流子的触发扩散速率决定了电催化剂还原O2的动力学。通过改变质子载体和脂质的尾部长度,我们找到了使触发器扩散速率最大的长度组合。这些实验结果与生物物理模型研究相结合,使我们能够提出用于HBM系统中跨膜触发器扩散的详细机制,其中涉及质子载体烷基尾部的弯曲作为速率确定步骤。使用不可弯曲的质子载体进行的其他研究进一步验证了这些机理发现。

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