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Dive into the research topics where Nikolaos Tsiouvaras is active.

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Featured researches published by Nikolaos Tsiouvaras.


Physical Chemistry Chemical Physics | 2013

Thermal and electrochemical decomposition of lithium peroxide in non-catalyzed carbon cathodes for Li–air batteries

Hans Beyer; Stefano Meini; Nikolaos Tsiouvaras; Michele Piana; Hubert A. Gasteiger

The decomposition of lithium peroxide during the charging process of lithium-air batteries is investigated. A novel preparation method for electrodes in the discharged state, i.e., prefilled with Li2O2 using polyethylene oxide as a binder, is presented. The composition and reactivity of Li2O2-prefilled electrodes are examined by thermal analysis coupled with on-line mass spectrometry. Voltage profiles and gas evolution during the charging process of Li2O2-prefilled electrodes in battery cells are correlated with the thermal decomposition process of Li2O2 and its impact on other electrode compounds. It is found that both thermal Li2O2 decomposition and the electrochemical decomposition of Li2O2 during charging enhance the oxidation of the electrolyte, the binder, and/or carbon, which is suggested to be due to the formation of nascent oxygen during Li2O2 decomposition into O2 and Li2O (thermally) or into O2 and lithium ions (electrochemically).


Chemcatchem | 2013

Nanosized Carbon‐Supported Manganese Oxide Phases as Lithium–Oxygen Battery Cathode Catalysts

Cüneyt Kavakli; Stefano Meini; Gregor S. Harzer; Nikolaos Tsiouvaras; Michele Piana; Armin Siebel; Arnd Garsuch; Hubert A. Gasteiger; Juan Herranz

The poor discharge and recharge efficiency demonstrated by lithium–air batteries renders the search for highly active and inexpensive oxygen reduction and evolution catalysts crucial to the development of these energy‐storage and conversion devices. Previous works have shown that manganese oxides are promising lithium–oxygen cathode catalysts, which is in agreement with their remarkable activities for the reduction and evolution of oxygen in aqueous media. Motivated by these resembling catalytic behaviors, we prepared and characterized a number of manganese oxide modifications directly on carbon black and attempted to correlate their oxygen reduction and evolution activities in aprotic and aqueous electrolytes. Although our results cannot confirm this correlation, they provide valuable insight into the reaction mechanisms at play in each medium. More precisely, in 0.1u2009M potassium hydroxide, the reduction of oxygen is related to the reduction of a manganese(III) intermediate whereas the oxidation of hydrogen peroxide (which was regarded as a mimic of the lithium peroxide produced upon lithium–oxygen battery discharge) correlates with the transition between manganese(II) and manganese(III) phases. In the aprotic medium, manganese oxide cathodes prefilled with lithium peroxide showed a strong catalytic effect but were not active in the oxidation of lithium peroxide produced in the previous discharge. This discrepancy is thought to arise from the stark differences in the sizes and morphologies of the lithium peroxide involved in each test, which implies that the catalytic activity of a material for the oxidation of lithium peroxide prefilled on electrodes is not indicative of its behavior in the charging of a real lithium–oxygen cell.


Nachrichten Aus Der Chemie | 2017

Zwischen Anode und Kathode

Hubert A. Gasteiger; Nikolaos Tsiouvaras; Benjamin Strehle; Sophie Solchenbach; Michael Metzger

Lithiumionenzellen zersetzen sich beim Laden und Entladen. Die Gasentwicklung dabei lasst sich mit elektrochemischer Massenspektrometrie verfolgen. Dafur gibt es eine Batterietestzelle mit separierten Elektrodenkompartments.


Electrochemical and Solid State Letters | 2012

The Effect of Water on the Discharge Capacity of a Non-Catalyzed Carbon Cathode for Li-O2 Batteries

Stefano Meini; Michele Piana; Nikolaos Tsiouvaras; Arnd Garsuch; Hubert A. Gasteiger


Journal of The Electrochemical Society | 2013

A Novel On-Line Mass Spectrometer Design for the Study of Multiple Charging Cycles of a Li-O2 Battery

Nikolaos Tsiouvaras; Stefano Meini; Irmgard Buchberger; Hubert A. Gasteiger


Journal of Physical Chemistry C | 2014

Generation of Cathode Passivation Films via Oxidation of Lithium Bis(oxalato) Borate on High Voltage Spinel (LiNi0.5Mn1.5O4)

Mengqing Xu; Nikolaos Tsiouvaras; Arnd Garsuch; Hubert A. Gasteiger; Brett L. Lucht


Physical Chemistry Chemical Physics | 2013

Rechargeability of Li-air cathodes pre-filled with discharge products using an ether-based electrolyte solution: implications for cycle-life of Li-air cells.

Stefano Meini; Nikolaos Tsiouvaras; K. Uta Schwenke; Michele Piana; Hans Beyer; Lukas Lange; Hubert A. Gasteiger


Journal of The Electrochemical Society | 2016

Consumption of Fluoroethylene Carbonate (FEC) on Si-C Composite Electrodes for Li-Ion Batteries

Roland Jung; Michael Metzger; Dominik Haering; Sophie Solchenbach; Cyril Marino; Nikolaos Tsiouvaras; Christoph Stinner; Hubert A. Gasteiger


Journal of The Electrochemical Society | 2014

Stability of a Pyrrolidinium-Based Ionic Liquid in Li-O2 Cells

Michele Piana; Johannes Wandt; Stefano Meini; Irmgard Buchberger; Nikolaos Tsiouvaras; Hubert A. Gasteiger


Archive | 2012

RECHARGEABLE ELECTROCHEMICAL CELLS

Arnd Garsuch; Hubert A. Gasteiger; Michele Piana; Nikolaos Tsiouvaras

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Mengqing Xu

South China Normal University

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Brett L. Lucht

University of Rhode Island

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Yang Shao-Horn

Massachusetts Institute of Technology

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