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Dive into the research topics where Andreas Mertens is active.

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Featured researches published by Andreas Mertens.


Functional Materials Letters | 2016

Influence of microstructure and AlPO4 secondary-phase on the ionic conductivity of Li1.3Al0.3Ti1.7(PO4))3 solid-state electrolyte

Shicheng Yu; Andreas Mertens; Xin Gao; Deniz Cihan Gunduz; Roland Schierholz; Svenja Benning; Florian Hausen; Josef Mertens; Hans Kungl; Hermann Tempel; Rüdiger-A. Eichel

A ceramic solid-state electrolyte of lithium aluminum titanium phosphate with the composition of Li1.3Al0.3Ti1.7(PO4)3 (LATP) was synthesized by a sol–gel method using a pre-dissolved Ti-source. The annealed LATP powders were subsequently processed in a binder-free dry forming method and sintered under air for the pellet preparation. Phase purity, density, microstructure as well as ionic conductivity of the specimen were characterized. The highest density (2.77g⋅cm−3) with an ionic conductivity of 1.88×10−4 S⋅cm−1 (at 30∘C) was reached at a sintering temperature of 1100∘C. Conductivity of LATP ceramic electrolyte is believed to be significantly affected by both, the AlPO4 secondary phase content and the ceramic electrolyte microstructure. It has been found that with increasing sintering temperature, the secondary-phase content of AlPO4 increased. For sintering temperatures above 1000∘C, the secondary phase has only a minor impact, and the ionic conductivity is predominantly determined by the microstructur...


Functional Materials Letters | 2016

Influence of microstructure and AlPO4 secondary-phase on the ionic conductivity of Li1.3

Shicheng Yu; Florian Hausen; Hermann Tempel; Andreas Mertens; Roland Schierholz; Xin Gao; Hans Kungl; Svenja Benning; Rüdiger-Albert Eichel; Josef Mertens; Deniz Cihan Gunduz

A ceramic solid-state electrolyte of lithium aluminum titanium phosphate with the composition of Li1.3Al0.3Ti1.7(PO4)3 (LATP) was synthesized by a sol–gel method using a pre-dissolved Ti-source. The annealed LATP powders were subsequently processed in a binder-free dry forming method and sintered under air for the pellet preparation. Phase purity, density, microstructure as well as ionic conductivity of the specimen were characterized. The highest density (2.77g⋅cm−3) with an ionic conductivity of 1.88×10−4 S⋅cm−1 (at 30∘C) was reached at a sintering temperature of 1100∘C. Conductivity of LATP ceramic electrolyte is believed to be significantly affected by both, the AlPO4 secondary phase content and the ceramic electrolyte microstructure. It has been found that with increasing sintering temperature, the secondary-phase content of AlPO4 increased. For sintering temperatures above 1000∘C, the secondary phase has only a minor impact, and the ionic conductivity is predominantly determined by the microstructur...


Functional Materials Letters | 2016

Influence of microstructure and AlPO 4 secondary-phase on the ionic conductivity of Li

Shicheng Yu; Florian Hausen; Rüdiger-A. Eichel; Hermann Tempel; Andreas Mertens; Roland Schierholz; Deniz Guenduez; Hans Kungl; Svenja Benning; Xin Gao; Josef Mertens

A ceramic solid-state electrolyte of lithium aluminum titanium phosphate with the composition of Li1.3Al0.3Ti1.7(PO4)3 (LATP) was synthesized by a sol–gel method using a pre-dissolved Ti-source. The annealed LATP powders were subsequently processed in a binder-free dry forming method and sintered under air for the pellet preparation. Phase purity, density, microstructure as well as ionic conductivity of the specimen were characterized. The highest density (2.77g⋅cm−3) with an ionic conductivity of 1.88×10−4 S⋅cm−1 (at 30∘C) was reached at a sintering temperature of 1100∘C. Conductivity of LATP ceramic electrolyte is believed to be significantly affected by both, the AlPO4 secondary phase content and the ceramic electrolyte microstructure. It has been found that with increasing sintering temperature, the secondary-phase content of AlPO4 increased. For sintering temperatures above 1000∘C, the secondary phase has only a minor impact, and the ionic conductivity is predominantly determined by the microstructur...


Electrochimica Acta | 2017

_{1.3}

Shicheng Yu; Andreas Mertens; Hans Kungl; Roland Schierholz; Hermann Tempel; Rüdiger-A. Eichel


Journal of The Electrochemical Society | 2016

Al

Andreas Mertens; Izaak C. Vinke; Hermann Tempel; Hans Kungl; L.G.J. de Haart; Rüdiger-A. Eichel; Josef Granwehr


Journal of energy storage | 2017

_{0.3}

Andreas Mertens; Josef Granwehr


Journal of The Electrochemical Society | 2017

Ti

Shicheng Yu; Hans Kungl; Rüdiger-Albert Eichel; Hermann Tempel; Andreas Mertens; Roland Schierholz; Xin Gao; Özgür Aslanbas; Josef Mertens


Solid State Ionics | 2017

_{1.7}

Andreas Mertens; Shicheng Yu; Nino Schön; Deniz Cihan Gunduz; Hermann Tempel; Roland Schierholz; Florian Hausen; Hans Kungl; Josef Granwehr; Rüdiger-A. Eichel


Archive | 2018

(PO

Hermann Tempel; Shicheng Yu; Hans Kungl; Xin Gao; Roland Schierholz; Andreas Mertens; J. Mertens; Lambertus G J De Haart; Rüdiger-A. Eichel


Archive | 2018

_{4}

Hermann Tempel; Shicheng Yu; Hans Kungl; Xin Gao; Roland Schierholz; Andreas Mertens; J. Mertens; Lambertus G J De Haart; Rüdiger-A. Eichel

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Hans Kungl

Karlsruhe Institute of Technology

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Hermann Tempel

Forschungszentrum Jülich

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Shicheng Yu

Forschungszentrum Jülich

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Xin Gao

Forschungszentrum Jülich

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Josef Mertens

Forschungszentrum Jülich

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