| Literature DB >> 28747774 |
Kim Seng Tan1,2, Andrew C Grimsdale2, Rachid Yazami3.
Abstract
We demonstrate a new refuelable lithium cell using lithium solvated electron solution (Li-SES) as anolyte and iodine solutions as catholyte. This cell shows a high OCV (~3 V). Unlike conventional rechargeable Li batteries, this kind of cell can be re-fueled in several minutes by replacing the spent liquids. We also show for the first time, that Li-SES/I2 cells which operate at room temperature, can be prepared in a fully discharged state (~0 V OCV) for safe handling, transportation and storage. Li-SES and iodine are then electrochemically generated during charge as is confirmed by UV-VIS and a qualitative test. We have also conducted proof-of-concept tests for an "indirect lithium-air" cell in which iodine is reduced at the cathode and subsequently is catalytically re-oxidized by oxygen dissolved in the catholyte.Entities:
Year: 2017 PMID: 28747774 PMCID: PMC5529521 DOI: 10.1038/s41598-017-06321-w
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(A) Schematic diagram of cell in 100% state-of-charge (S.O.C.)[11]. (B) Schematic diagram of cell in 0% state-of-charge (S.O.C). The entire cell sits on two magnetic stirring plates which keep the stirrer bars in the cell stirring.
Figure 2Open-circuit voltage (OCV) and closed-circuit voltage (CCV) profiles[11].
Figure 3Current vs. time profile during CV cycling (voltage sweeping rate v = 2.5 × 10−4 V/s).
Figure 4UV-VIS spectra of anolyte solutions of S1 and S2. S1: uncharged anolyte S2: charged anolyte at the 9th cycle S3: Chemically prepared Li-SES.
Figure 5UV-VIS spectra of catholyte solutions before and after charging. S4: Electrochemically prepared iodine in methanol (by charging LiI/CH3OH). S5: Chemically prepared iodine in methanol. S6: Lithium Iodide in methanol.