Electrospun carbon fibers as air cathodes for aprotic Li-O2 battery: Towards cathode design for enhanced capacity
被引:7
作者:
Osman, Manel Ben
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UPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, FranceUPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, France
Osman, Manel Ben
[1
]
Yin, Wei
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Coll France, Chim Solide & Energie, UMR 8260, F-75231 Paris 05, FranceUPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, France
Yin, Wei
[2
]
Petenzi, Thomas
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Univ Paris Saclay, CEA Saclay, CNRS, LICSEN,NIMBE,CEA, F-91191 Gif Sur Yvette, FranceUPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, France
Petenzi, Thomas
[3
]
Jousselme, Bruno
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Univ Paris Saclay, CEA Saclay, CNRS, LICSEN,NIMBE,CEA, F-91191 Gif Sur Yvette, FranceUPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, France
Jousselme, Bruno
[3
]
Cornut, Renaud
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Univ Paris Saclay, CEA Saclay, CNRS, LICSEN,NIMBE,CEA, F-91191 Gif Sur Yvette, FranceUPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, France
Cornut, Renaud
[3
]
Raymundo-Pinero, Encarnacion
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CEMHTI CNRS Orleans, Site Haute Temp,1D Ave Rech Sci, F-45071 Orleans 02, FranceUPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, France
Raymundo-Pinero, Encarnacion
[4
]
Grimaud, Alexis
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Coll France, Chim Solide & Energie, UMR 8260, F-75231 Paris 05, FranceUPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, France
Grimaud, Alexis
[2
]
Robert, Christel Laberty
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UPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, FranceUPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, France
Robert, Christel Laberty
[1
]
机构:
[1] UPMC Univ Paris 06, Sorbonne Univ, Chim Matiere Condensee Paris, CNRS,Coll France, F-75005 Paris, France
[2] Coll France, Chim Solide & Energie, UMR 8260, F-75231 Paris 05, France
[3] Univ Paris Saclay, CEA Saclay, CNRS, LICSEN,NIMBE,CEA, F-91191 Gif Sur Yvette, France
[4] CEMHTI CNRS Orleans, Site Haute Temp,1D Ave Rech Sci, F-45071 Orleans 02, France
This report investigates how the microstructures and chemical properties of carbon cathodes influence the discharge capacity of aprotic Li-O-2 batteries. For that, electrospun carbon fibers (CFs), Multi-wall carbon nanotubes (MWCNTs), carbon Super P and gas diffusion layer (GDL) were fully discharged at various applied current densities (0.05-0.5 mA cm((geom))(-2)) and characterized by means of ex-situ techniques such as XRD and FEG-SEM. The major discharge product for every carbon electrode was identified as Li2O2 by both XRD and gas pressure analysis. The corresponding electrochemical results showed two different behaviors depending on the current density. At high current densities, all the carbon electrodes presented quite similar discharge capacities due to the most favored formation of Li2O2 conformal film on the carbon surface. In contrast, at lower current densities, the morphology of the discharge product changed and Li2O2 was preferably deposited as micrometer-sized tordids particles on all the carbon cathodes (except for GDL). In this particular regime, the specific capacity normalized by the active carbon surface area of the electrospun CFs cathode was surprisingly promoted compared to the other carbon materials. Interestingly, it was found that unlike for the other cathode materials, Li2O2 homogenously occupies the void volume of the electrospun carbon structure without any pores clogging, which was attributed to its particular macroporous architecture presumably facilitating a continuous O-2 diffusion through the electrode. The enhancement in discharge capacity might also be related to the presence of nitrogen active sites, as revealed by XPS analysis of the pristine carbon surface. All these features highlight that the carbon porosity and surface chemistry are key parameters to design efficient air cathodes for Li-O-2 batteries performing at low current density. (C) 2020 Elsevier Ltd. All rights reserved.