首页> 外文期刊>Physical chemistry chemical physics: PCCP >Comment on 'Negative effective Li transference numbers in Li salt/ionic liquid mixtures: does Li drift in the 'Wrong' direction?' by M. Gouverneur, F. Schmidt and M. Schonhoff, Phys. Chem. Chem. Phys., 2018, bold20/bold, 7470
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Comment on 'Negative effective Li transference numbers in Li salt/ionic liquid mixtures: does Li drift in the 'Wrong' direction?' by M. Gouverneur, F. Schmidt and M. Schonhoff, Phys. Chem. Chem. Phys., 2018, bold20/bold, 7470

机译:评论“李盐/离子液体混合物中的负效锂转移数:李在”错误“方向上漂移?” 由M.Gouverneur,F. Schmidt和M. Schonhoff,Phys。 化学。 化学。 物理。,2018,& bold& 20& / bold&,7470

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Gouverneur et al. have recently reported effective transport numbers for mixtures of lithium and 1-ethyl-3-methylimidazolium salts with common (fluorinated) anions using Li-7, H-1 and F-19 and electrophoretic NMR to determine the electrophoretic mobilities of all three ionic species. The effective transport number for lithium is small, but negative. From this they deduce that the Li+ ions are each associated with two or more anions to form negatively charged complexes. However this interpretation may be incorrect: only a single independent transport number can be measured in such a system as the three ion fluxes are not independent. One ion flow must define the reference frame and then the transport numbers for the other two ions must sum to unity. Electrophoretic NMR appears to produce what are called external ion mobilities and transport numbers in the notation used by Klemm and Haase for molten salts. These are defined in the laboratory frame of reference and can depend on the boundary conditions of the experiment. Simple relations exist for their conversion to internal transport numbers where ion mobilities for two ions are given relative to that of the third, analogous to the more familiar Hittorf transport numbers of ions in electrolyte solutions which are given in the solvent-fixed frame of reference, i.e. relative to the flow of solvent. It is not unusual for a cation external transport number to be negative in molten salt mixtures, e.g. (LiNO3 + AgNO3) in a Hittorf experiment employing nitrate electrodes whereas true ion association would produce negative internal transport numbers. In the examples studied by Gouverneur et al. the cation internal transport numbers are both positive. Those for Li+ are also very small, and close to zero within experimental error. This may simply reflect that the mixtures employed are dilute in lithium ions.
机译:gouverneur等。最近报道了使用Li-7,H-1和F-19和电泳NMR的常见(氟化)阴离子的锂和1-乙基-3-甲基咪唑鎓盐的混合物的有效运输号,以确定所有三种离子物种的电泳迁移率。锂的有效运输号码很小,但为阴性。由此,它们推导出Li +离子各自与两个或更多个阴离子相关,以形成带负电荷的复合物。然而,这种解释可能是不正确的:只有三个离子磁通不是独立的,可以在这样的系统中测量单个独立的传输号码。一个离子流必须定义参考帧,然后将其他两个离子的传输号码必须总和成1个。电泳NMR似乎在Klemm和Haase用于熔融盐中使用的符号中所谓的外离子迁移率和运输号。这些是在实验室参考框架中定义的,并且可以取决于实验的边界条件。将其转换为内部传输数存在简单的关系,其中相对于第三个离子迁移率,类似于在溶剂固定框架中给出的电解质溶液中的离子的熟悉的Hittorf传输数,即相对于溶剂的流动。对于熔盐混合物中的阳离子外部运输号码是阴性的,这并不罕见,例如,熔盐混合物中的阴性。 (LINO3 + AGNO3)在采用硝酸盐电极的Hittorf实验中,而真正的离子关联将产生负内部传输数。在Gouverneur等人研究的例子中。阳离子内部传输数字都是积极的。 Li +的那些也非常小,在实验误差内靠近零。这可以简单地反映所用的混合物在锂离子中稀释。

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