Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
4907940 | Journal of Electroanalytical Chemistry | 2017 | 10 Pages |
Abstract
In this report, we present the finite element analysis for the electrolysis of Brâ in electrochemically generated quaternary ammonium polybromide (QBr2n+1) droplets, and revealed that the Brâ transfer from aqueous phase into QBr2n+1 (Brâ transfer-waterâQBr2n+1) as the preceding step limits the rate of the Brâ-electrolysis. At first, the theoretical dimensionless i-t and the polarization curves based on the EC (electrochemical-chemical) and CEC (chemical-electrochemical-chemical) mechanisms were studied. The simulation based on the EC pathway indicates the only limiting factor for the total electrolysis time in the droplet regime was the rate of the charge transfer in the EC reaction, while the kinetics of the proceeding chemical reaction did not have any effects on the total rate of the Brâ-electrolysis. Compared with the simulation by the EC mechanism, the results by the CEC elucidated the importance of not only the rate of the charge transfer, but also the kinetics of its preceding process for the total electrolysis time in the droplet. We adopted the theoretical simulation models based on the EC and CEC mechanisms to the Brâ electro-oxidation occurring in a discrete N-methyl-N-ethyl pyrrolidinium polybromide (MEPBr2n+1) droplet. We confirmed the CECC (chemical-electrochemical-chemical-chemical) mechanism well explained the electrolysis behavior of Brâ in a MEPBr2n+1 droplet, implicating the existence of the Brâ transfer-waterâMEPBr2n+1 as the preceding process for the Brâ-electrolysis in a MEPBr2n+1 droplet. We also attempted to explain the experimental data by the simulation results based on the ECC (electrochemical-chemical-chemical) mechanism without the preceding Brâ transfer-waterâMEPBr2n+1 step. In this case, the charge transfer rate of Br·/Brâ redox reaction should be unrealistically slow for the explanation of current spikes from the Brâ electro-oxidation in a MEPBr2n+1 droplet. However, the simulation results gave the significant disagreement with the experimentally obtained polarization curve, which indicates that the Brâ-electrolysis in MEPBr2n+1 cannot be explained without the Brâ transfer-waterâMEPBr2n+1. We further estimated the rate of the Brâ transfer from aqueous phase to an ethylpyridinium polybromide (EPyBr2n+1) droplet based on the CECC mechanism, and the rate of the Brâ transfer-waterâEPyBr2n+1 is three times higher than that into a MEPBr2n+1 droplet. We believe the discrepancy of the rate of the Brâ transfer-waterâQBr2n+1 with different Q+ mainly results from the different degree of interaction of Brâ with Q+.
Keywords
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Physical Sciences and Engineering
Chemical Engineering
Chemical Engineering (General)
Authors
Sangmee Park, Seulgi Shin, Dayoung Jung, Junghyun Chae, Jinho Chang,