Please use this identifier to cite or link to this item: https://doi.org/10.1021/acs.jpclett.7b03136
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dc.titleDetermining Li+-Coupled Redox Targeting Reaction Kinetics of Battery Materials with Scanning Electrochemical Microscopy
dc.contributor.authorYan, Ruiting
dc.contributor.authorGhilane, Jalal
dc.contributor.authorPhuah, Kia Chai
dc.contributor.authorThuan, Nguyen Pham Truong
dc.contributor.authorAdams, Stefan
dc.contributor.authorRandriamahazaka, Hyacinthe
dc.contributor.authorWang, Qing
dc.date.accessioned2020-06-10T10:12:16Z
dc.date.available2020-06-10T10:12:16Z
dc.date.issued2018-02-01
dc.identifier.citationYan, Ruiting, Ghilane, Jalal, Phuah, Kia Chai, Thuan, Nguyen Pham Truong, Adams, Stefan, Randriamahazaka, Hyacinthe, Wang, Qing (2018-02-01). Determining Li+-Coupled Redox Targeting Reaction Kinetics of Battery Materials with Scanning Electrochemical Microscopy. JOURNAL OF PHYSICAL CHEMISTRY LETTERS 9 (3) : 491-496. ScholarBank@NUS Repository. https://doi.org/10.1021/acs.jpclett.7b03136
dc.identifier.issn19487185
dc.identifier.urihttps://scholarbank.nus.edu.sg/handle/10635/169633
dc.description.abstract© 2018 American Chemical Society. The redox targeting reaction of Li+-storage materials with redox mediators is the key process in redox flow lithium batteries, a promising technology for next-generation large-scale energy storage. The kinetics of the Li+-coupled heterogeneous charge transfer between the energy storage material and redox mediator dictates the performance of the device, while as a new type of charge transfer process it has been rarely studied. Here, scanning electrochemical microscopy (SECM) was employed for the first time to determine the interfacial charge transfer kinetics of LiFePO4/FePO4 upon delithiation and lithiation by a pair of redox shuttle molecules FcBr2+ and Fc. The effective rate constant keff was determined to be around 3.70-6.57 × 10-3 cm/s for the two-way pseudo-first-order reactions, which feature a linear dependence on the composition of LiFePO4, validating the kinetic process of interfacial charge transfer rather than bulk solid diffusion. In addition, in conjunction with chronoamperometry measurement, the SECM study disproves the conventional "shrinking-core" model for the delithiation of LiFePO4 and presents an intriguing way of probing the phase boundary propagations induced by interfacial redox reactions. This study demonstrates a reliable method for the kinetics of redox targeting reactions, and the results provide useful guidance for the optimization of redox targeting systems for large-scale energy storage.
dc.language.isoen
dc.publisherAMER CHEMICAL SOC
dc.sourceElements
dc.subjectScience & Technology
dc.subjectPhysical Sciences
dc.subjectTechnology
dc.subjectChemistry, Physical
dc.subjectNanoscience & Nanotechnology
dc.subjectMaterials Science, Multidisciplinary
dc.subjectPhysics, Atomic, Molecular & Chemical
dc.subjectChemistry
dc.subjectScience & Technology - Other Topics
dc.subjectMaterials Science
dc.subjectPhysics
dc.subjectHETEROGENEOUS ELECTRON-TRANSFER
dc.subjectPHASE-TRANSITION
dc.subjectFEEDBACK MODE
dc.subjectLIFEPO4
dc.subjectINTERFACE
dc.subjectSUBSTRATE
dc.subjectFILMS
dc.subjectFEPO4
dc.typeArticle
dc.date.updated2020-06-03T16:40:11Z
dc.contributor.departmentMATERIALS SCIENCE AND ENGINEERING
dc.description.doi10.1021/acs.jpclett.7b03136
dc.description.sourcetitleJOURNAL OF PHYSICAL CHEMISTRY LETTERS
dc.description.volume9
dc.description.issue3
dc.description.page491-496
dc.published.statePublished
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