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Publication
Featured researches published by Philipp Oberhumer.
Nano Letters | 2014
Giuseppe Antonio Elia; Jusef Hassoun; Won-Jin Kwak; Yang-Kook Sun; Bruno Scrosati; Franziska Mueller; Dominic Bresser; Stefano Passerini; Philipp Oberhumer; Nikolaos Tsiouvaras; Jakub Reiter
A novel lithium-oxygen battery exploiting PYR14TFSI-LiTFSI as ionic liquid-based electrolyte medium is reported. The Li/PYR14TFSI-LiTFSI/O2 battery was fully characterized by electrochemical impedance spectroscopy, capacity-limited cycling, field emission scanning electron microscopy, high-resolution transmission electron microscopy, and X-ray photoelectron spectroscopy. The results of this extensive study demonstrate that this new Li/O2 cell is characterized by a stable electrode-electrolyte interface and a highly reversible charge-discharge cycling behavior. Most remarkably, the charge process (oxygen oxidation reaction) is characterized by a very low overvoltage, enhancing the energy efficiency to 82%, thus, addressing one of the most critical issues preventing the practical application of lithium-oxygen batteries.
ACS Applied Materials & Interfaces | 2015
Giuseppe Antonio Elia; Dominic Bresser; Jakub Reiter; Philipp Oberhumer; Yang-Kook Sun; Bruno Scrosati; Stefano Passerini; Jusef Hassoun
A novel lithium-ion/oxygen battery employing Pyr14TFSI-LiTFSI as the electrolyte and nanostructured LixSn-C as the anode is reported. The remarkable energy content of the oxygen cathode, the replacement of the lithium metal anode by a nanostructured stable lithium-alloying composite, and the concomitant use of nonflammable ionic liquid-based electrolyte result in a new and intrinsically safer energy storage system. The lithium-ion/oxygen battery delivers a stable capacity of 500 mAh g(-1) at a working voltage of 2.4 V with a low charge-discharge polarization. However, further characterization of this new system by electrochemical impedance spectroscopy, scanning electron microscopy, and energy-dispersive X-ray spectroscopy reveals the progressive decrease of the battery working voltage, because of the crossover of oxygen through the electrolyte and its direct reaction with the LixSn-C anode.
Archive | 2017
Nikolaos Tsiouvaras; Simon Nuernberger; Odysseas Paschos; Peter Lamp; Tokuhiko Handa; Hidetaka Nishikoori; Toshihiko Inoue; Philipp Oberhumer
Archive | 2017
Jakub Reiter; Philipp Oberhumer
Archive | 2016
Simon Nürnberger; Philipp Oberhumer
Archive | 2016
Philipp Oberhumer; Sebastian Scharner
Archive | 2016
Jakub Reiter; Philipp Oberhumer
Archive | 2016
Lux, Simon, Calif.; Philipp Oberhumer; Ann-Christin Gentschev; Barbara Stiaszny; Jakub Reiter
Archive | 2016
Simon Nürnberger; Philipp Oberhumer
Archive | 2015
Philipp Oberhumer; Nikolaos Tsiouvaras; Simon Nürnberger; Odysseas Paschos; Tokuhiko Handa; Peter Lamp; Hidetaka Nishikoori; Toshihiko Inoue