High-energy composite cathode for solid-state lithium-oxygen battery boosted by ultrafine carbon nanotube catalysts and amorphous lithium peroxide. (April 2023)
- Record Type:
- Journal Article
- Title:
- High-energy composite cathode for solid-state lithium-oxygen battery boosted by ultrafine carbon nanotube catalysts and amorphous lithium peroxide. (April 2023)
- Main Title:
- High-energy composite cathode for solid-state lithium-oxygen battery boosted by ultrafine carbon nanotube catalysts and amorphous lithium peroxide
- Authors:
- Yi, X.
Liu, X.
Qin, B.
Zhao, X.
Leong, K.W.
Pan, W.
Jiang, K.
Ma, S.
Hao, Z.
Leung, D.Y.C.
Wen, Z. - Abstract:
- Abstract: Rechargeable solid-state lithium-oxygen batteries (SSLOBs) promise high energy density and safety but suffer from the severe interface impedance in composite cathodes and the failure to detect discharge products by spectroscopy and microscopy originating from low actual discharge capacity. Here, an ultrafine carbon nanotube (CNT) is developed as a cathode catalyst for SSLOBs, which unexpectedly improves the solid-solid contact issue with Li1·5 Al0.5 Ge1.5 (PO4 )3 (LAGP) solid electrolyte and provides a superior specific capacity of 5803 mAh/g (100 mA/g, 2.0–5.0 V vs . Li/Li + ) in oxygen atmosphere that is about 4–5 times higher than that of SSLOBs using CNTs with large diameters. This phenomenon is attributed to the optimization of the impedance of CNTs@LAGP induced by the enhanced catalytic activity and enlarged specific surface area of ultrafine CNTs. The amorphous discharge products formed on the CNT surface and between the CNTs and LAGP particles are first found to significantly reduce the cell impedance and increase new reactive sites. Moreover, the irreversible disruption and passivation of CNTs and the accumulation of residual discharge products, which are the fundamental sources of capacity degradation, are further discussed. Importantly, Li2 O2 growth morphology as a function of discharge depth and the possible conduction paths of amorphous (Li2 O2 ) n cluster with p-type semiconductor characteristics are also determined by computations based on molecularAbstract: Rechargeable solid-state lithium-oxygen batteries (SSLOBs) promise high energy density and safety but suffer from the severe interface impedance in composite cathodes and the failure to detect discharge products by spectroscopy and microscopy originating from low actual discharge capacity. Here, an ultrafine carbon nanotube (CNT) is developed as a cathode catalyst for SSLOBs, which unexpectedly improves the solid-solid contact issue with Li1·5 Al0.5 Ge1.5 (PO4 )3 (LAGP) solid electrolyte and provides a superior specific capacity of 5803 mAh/g (100 mA/g, 2.0–5.0 V vs . Li/Li + ) in oxygen atmosphere that is about 4–5 times higher than that of SSLOBs using CNTs with large diameters. This phenomenon is attributed to the optimization of the impedance of CNTs@LAGP induced by the enhanced catalytic activity and enlarged specific surface area of ultrafine CNTs. The amorphous discharge products formed on the CNT surface and between the CNTs and LAGP particles are first found to significantly reduce the cell impedance and increase new reactive sites. Moreover, the irreversible disruption and passivation of CNTs and the accumulation of residual discharge products, which are the fundamental sources of capacity degradation, are further discussed. Importantly, Li2 O2 growth morphology as a function of discharge depth and the possible conduction paths of amorphous (Li2 O2 ) n cluster with p-type semiconductor characteristics are also determined by computations based on molecular dynamics and density functional theory for the first time. Our results innovatively reveal the controversial association between impedance and microstructure of composite cathodes, and thus, benefit the development of high-efficiency catalysts and the design of high-energy cathode structures for SSLOBs and other potential solid-state batteries. Graphical abstract: Image 1 Highlights: Ultrafine CNT-based composite cathode with low impedance and high energy is fabricated. Effects of CNT specific surface area on cell impedance and cycle performance are compared. Discharge products are first observed and identified by conventional spectroscopy and microscopy. Effect of amorphous Li2 O2 with p-type semiconductor properties on the interface impedance is determined. Morphology evolution and conduction paths of Li2 O2 on the CNT surface are revealed. … (more)
- Is Part Of:
- Materials today chemistry. Volume 29(2023)
- Journal:
- Materials today chemistry
- Issue:
- Volume 29(2023)
- Issue Display:
- Volume 29, Issue 2023 (2023)
- Year:
- 2023
- Volume:
- 29
- Issue:
- 2023
- Issue Sort Value:
- 2023-0029-2023-0000
- Page Start:
- Page End:
- Publication Date:
- 2023-04
- Subjects:
- Carbon nanotubes -- Interface impedance -- Growth mechanism -- Molecular dynamics -- Density functional theory
Chemistry -- Periodicals
Materials -- Research -- Periodicals
Materials science -- Periodicals
Chemistry
Materials -- Research
Electronic journals
Periodicals
660.282 - Journal URLs:
- https://www.journals.elsevier.com/materials-today-chemistry ↗
http://www.sciencedirect.com/science/journal/24685194 ↗
http://www.sciencedirect.com/ ↗ - DOI:
- 10.1016/j.mtchem.2023.101430 ↗
- Languages:
- English
- ISSNs:
- 2468-5194
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
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- British Library DSC - BLDSS-3PM
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