Magnesium hydride has been proposed as innovative anode material for Li ion cells due to its large theoretical capacity and high-energy efficiency compared to other conversion materials. In this work, we report a combined experimental-theoretical study about the origin of voltage hysteresis in the conversion reaction of MgH2 in lithium cells. Experimentally, the extent of the thermodynamic voltage hysteresis in the first galvanostatic discharge−charge cycle has been determined by the GITT technique and decoupled from the kinetic overpotentials. Theoretically, the origin of the thermodynamic voltage hysteresis has been evaluated and studied by means density functional theory calculations within the supercell approach. Different elementary reactions have been modeled upon reduction and oxidation on the surfaces of the active phases (i.e., MgH2, LiH, and Mg), and the associated theoretical voltages have been predicted. Experimental and theoretical results have been compared and discussed to draw a comprehensive description of the elementary surface reactions of the MgH2 conversion in lithium cells.

Origin of the voltage hysteresis of MgH2 electrodes in lithium batteries / Meggiolaro, Daniele; Gigli, Guido; Paolone, Annalisa; Reale, Priscilla; Doublet, M. L.; Brutti, Sergio. - In: JOURNAL OF PHYSICAL CHEMISTRY. C. - ISSN 1932-7447. - 119:30(2015), pp. 17044-17052. [10.1021/acs.jpcc.5b04615]

Origin of the voltage hysteresis of MgH2 electrodes in lithium batteries

MEGGIOLARO, DANIELE;GIGLI, Guido;PAOLONE, Annalisa;REALE, Priscilla;BRUTTI, Sergio
2015

Abstract

Magnesium hydride has been proposed as innovative anode material for Li ion cells due to its large theoretical capacity and high-energy efficiency compared to other conversion materials. In this work, we report a combined experimental-theoretical study about the origin of voltage hysteresis in the conversion reaction of MgH2 in lithium cells. Experimentally, the extent of the thermodynamic voltage hysteresis in the first galvanostatic discharge−charge cycle has been determined by the GITT technique and decoupled from the kinetic overpotentials. Theoretically, the origin of the thermodynamic voltage hysteresis has been evaluated and studied by means density functional theory calculations within the supercell approach. Different elementary reactions have been modeled upon reduction and oxidation on the surfaces of the active phases (i.e., MgH2, LiH, and Mg), and the associated theoretical voltages have been predicted. Experimental and theoretical results have been compared and discussed to draw a comprehensive description of the elementary surface reactions of the MgH2 conversion in lithium cells.
2015
physical and theoretical chemistry; electronic, optical and magnetic materials; surfaces, coatings and films; energy
01 Pubblicazione su rivista::01a Articolo in rivista
Origin of the voltage hysteresis of MgH2 electrodes in lithium batteries / Meggiolaro, Daniele; Gigli, Guido; Paolone, Annalisa; Reale, Priscilla; Doublet, M. L.; Brutti, Sergio. - In: JOURNAL OF PHYSICAL CHEMISTRY. C. - ISSN 1932-7447. - 119:30(2015), pp. 17044-17052. [10.1021/acs.jpcc.5b04615]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/849612
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