Acta Phys. -Chim. Sin. ›› 2023, Vol. 39 ›› Issue (2): 2203043.doi: 10.3866/PKU.WHXB202203043
• ARTICLE • Previous Articles Next Articles
Ru Wang1,3, Zhikang Liu1, Chao Yan4, Long Qie2,*(
), Yunhui Huang2,*(
)
Received:2022-03-25
Accepted:2022-04-26
Published:2022-05-09
Contact:
Long Qie,Yunhui Huang
E-mail:qie@hust.edu.cn;huangyh@hust.edu.cn
About author:Email: huangyh@hust.edu.cn (Y.H.)Supported by:Ru Wang, Zhikang Liu, Chao Yan, Long Qie, Yunhui Huang. Interface Strengthening of Composite Current Collectors for High-Safety Lithium-Ion Batteries[J]. Acta Phys. -Chim. Sin. 2023, 39(2), 2203043. doi: 10.3866/PKU.WHXB202203043
Table 2
Electrolyte compatibility of composite current collectors and electrodes."
| Step | Detailed operation | Cautions |
| 1.Electrolyte compatibility test of CCs | 1. Take out three kinds of composite current collectors in advance, and take out 5 cm × 5 cm slices in the direction of size 2. Pre-dry the current collector for 12 h at 60 ℃ 3. Packaged in clean aluminum-plastic soft bag with the size of 10 cm × 10 cm 4. Inject 1.5 g electrolyte into the aluminum-plastic film soft bag 5. After sealing, put them into the oven at 25, 60 and 85 ℃ for compatibility test, soak for 72 h | Before soaking, dry the film to remove water, and sufficient electrolyte is injected into the soft bag to ensure that the electrolyte in the soft bag can fully infiltrate the electrode. |
| 2.Electrolyte compatibility test of electrode | 1. Select NCM523 material as positive electrode 2. Pre-dry the current collector at 60 ℃ for 12 h 3. Coating with NCM523 material, the coating area density is 40 mg?cm?2 4. Dry the electrode at 60 ℃ for 24 h 5. Rolled electrode at the compacted density of 3.5 g?cm?3 5. Inject 1.5 g of electrolyte 6. Soak for 24 h at the temperature of 25, 60 and 80 ℃ 7. Observe the delamination after disassembling |
Fig 5
XPS curves of composite CCs with different intermediate reinforcement layers: (a) binding energy spectra of elements on the surface of the intermediate reinforcement layer of AlOx, (b) binding energy spectra of Al 2p in AlOx intermediate reinforcement layer at higher resolution, (c) binding energy spectra of O 1s in AlOx intermediate reinforcement layer at higher resolution, (d) binding energy spectra of elements on the surface of the intermediate reinforcement layer of silicon oxide, (e) binding energy spectra of Si 2p in SiOx intermediate reinforcement layer at higher resolution, (f) binding energy spectra of O 1s in SiOx intermediate reinforcement layer at higher resolution."
Fig 8
Energy spectrum of cross section of composite current collectors: (a) element distribution in cross section of PET-AlOx-Al, (b) energy spectrum of cross section of PET-AlOx-Al, (c) element distribution in cross section of PET-SiOx-Al, (d) energy spectrum of cross section of PET-SiOx-Al."
Fig 9
Electrolyte immersion test results: (a, b, c) Images of PET-AlOx-Al after 72 h immersion with electrolyte at 25, 60 and 85 ℃ in turns, (d, e, f) PET-AlOx-Al electrodes after 72 h immersion with electrolyte at 25, 60 and 85 ℃, (g, h, i) PET-SiOx-Al after 72 h immersion with electrolyte at 25, 60 and 85 ℃, (j, k, l) PET-SiOx-Al electrodes after 72 h immersion with electrolyte at 25, 60 and 85 ℃, (m, n, o) PET-Al after 72 h immersion with electrolyte at 25, 60 and 85 ℃, (p, q, r) PET-Al electrodes after 72 h immersion with electrolyte at 25, 60 and 85 ℃."
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