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Dive into the research topics where Marc Drögeler is active.

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Featured researches published by Marc Drögeler.


Nature Communications | 2015

Raman spectroscopy as probe of nanometre-scale strain variations in graphene.

Christoph Neumann; Sven Reichardt; P. Venezuela; Marc Drögeler; Luca Banszerus; Michael Schmitz; Kenji Watanabe; Takashi Taniguchi; Francesco Mauri; Bernd Beschoten; Slava V. Rotkin; Christoph Stampfer

Confocal Raman spectroscopy has emerged as a major, versatile workhorse for the non-invasive characterization of graphene. Although it is successfully used to determine the number of layers, the quality of edges, and the effects of strain, doping and disorder, the nature of the experimentally observed broadening of the most prominent Raman 2D line has remained unclear. Here we show that the observed 2D line width contains valuable information on strain variations in graphene on length scales far below the laser spot size, that is, on the nanometre-scale. This finding is highly relevant as it has been shown recently that such nanometre-scaled strain variations limit the carrier mobility in high-quality graphene devices. Consequently, the 2D line width is a good and easily accessible quantity for classifying the crystalline quality, nanometre-scale flatness as well as local electronic properties of graphene, all important for future scientific and industrial applications.


Nano Letters | 2014

Nanosecond spin lifetimes in single- and few-layer graphene-hBN heterostructures at room temperature.

Marc Drögeler; Frank Volmer; Maik Wolter; Bernat Terrés; Kenji Watanabe; Takashi Taniguchi; G. Güntherodt; Christoph Stampfer; Bernd Beschoten

We present a new fabrication method of graphene spin-valve devices that yields enhanced spin and charge transport properties by improving both the electrode-to-graphene and graphene-to-substrate interface. First, we prepare Co/MgO spin injection electrodes onto Si(++)/SiO2. Thereafter, we mechanically transfer a graphene-hBN heterostructure onto the prepatterned electrodes. We show that room temperature spin transport in single-, bi-, and trilayer graphene devices exhibit nanosecond spin lifetimes with spin diffusion lengths reaching 10 μm combined with carrier mobilities exceeding 20,000 cm(2)/(V s).


Nano Letters | 2016

Spin Lifetimes Exceeding 12 ns in Graphene Nonlocal Spin Valve Devices

Marc Drögeler; Christopher Franzen; Frank Volmer; Tobias Pohlmann; Luca Banszerus; Maik Wolter; Kenji Watanabe; Takashi Taniguchi; Christoph Stampfer; Bernd Beschoten

We show spin lifetimes of 12.6 ns and spin diffusion lengths as long as 30.5 μm in single layer graphene nonlocal spin transport devices at room temperature. This is accomplished by the fabrication of Co/MgO-electrodes on a Si/SiO2 substrate and the subsequent dry transfer of a graphene-hBN-stack on top of this electrode structure where a large hBN flake is needed in order to diminish the ingress of solvents along the hBN-to-substrate interface. Interestingly, long spin lifetimes are observed despite the fact that both conductive scanning force microscopy and contact resistance measurements reveal the existence of conducting pinholes throughout the MgO spin injection/detection barriers. Compared to previous devices, we observe an enhancement of the spin lifetime in single layer graphene by a factor of 6. We demonstrate that the spin lifetime does not depend on the contact resistance area products when comparing all bottom-up devices indicating that spin absorption at the contacts is not the predominant source for spin dephasing.


Physical Review B | 2013

Role of MgO barriers for spin and charge transport in Co/MgO/graphene nonlocal spin-valve devices

Frank Volmer; Marc Drögeler; Eva Maynicke; N. von den Driesch; M. L. Boschen; G. Güntherodt; Bernd Beschoten

We investigate spin and charge transport in both single and bilayer graphene non-local spin-valve devices. Similar to previous studies on bilayer graphene, we observe an inverse dependence of the spin lifetime on the carrier mobility in our single layer devices. This general trend is only observed in devices with large contact resistances. Furthermore, we observe a second Dirac peak in devices with long spin lifetimes. This results from charge transport underneath the contacts. In contrast, all devices with low ohmic contact resistances only exhibit a single Dirac peak. Additionally, the spin lifetime is significantly reduced indicating that an additional spin dephasing occurs underneath the electrodes.


Physical Review B | 2014

Suppression of contact-induced spin dephasing in graphene/MgO/Co spin-valve devices by successive oxygen treatments

Frank Volmer; Marc Drögeler; Eva Maynicke; N. von den Driesch; M. L. Boschen; G. Güntherodt; Christoph Stampfer; Bernd Beschoten

By successive oxygen treatments of graphene nonlocal spin-valve devices we achieve a gradual increase of the contact-resistance\char21{}area products


arXiv: Mesoscale and Nanoscale Physics | 2015

Contact-induced charge contributions to non-local spin transport measurements in Co/MgO/graphene devices

Frank Volmer; Marc Drögeler; Tobias Pohlmann; G. Güntherodt; Christoph Stampfer; Bernd Beschoten

({R}_{c}A)


Physical Review B | 2015

Phase-coherent transport in catalyst-free vapor phase deposited Bi2Se3 crystals

R. Ockelmann; S. Jafarpisheh; Marc Drögeler; Christoph Stampfer; J. H. Hwang; Bernd Beschoten; André C. Müller

of Co/MgO spin injection and detection electrodes and a transition from linear to nonlinear characteristics in the respective differential


Applied Physics Letters | 2017

Dry-transferred CVD graphene for inverted spin valve devices

Marc Drögeler; Luca Banszerus; Frank Volmer; Takashi Taniguchi; Kenji Watanabe; Bernd Beschoten; Christoph Stampfer

dV\text{\ensuremath{-}}dI


Catalysis Science & Technology | 2018

Mesoporous manganese phthalocyanine-based materials for electrochemical water oxidation via tailored templating

Cornelia Broicher; Jens Artz; Stefan Palkovits; H. Antoni; Marc Drögeler; D. M. Morales; Christoph Stampfer; Regina Palkovits

curves. With this manipulation of the contacts, both spin lifetime and the amplitude of the spin signal can significantly be increased by a factor of seven in the same device. This demonstrates that contact-induced spin dephasing is the bottleneck for spin transport in graphene devices with small


Physica Status Solidi B-basic Solid State Physics | 2017

Simulations on the Influence of Spatially Varying Spin Transport Parameters on the Measured Spin Lifetime in Graphene Non-Local Spin Valves

Marc Drögeler; Frank Volmer; Christoph Stampfer; Bernd Beschoten

{R}_{c}A

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Kenji Watanabe

National Institute for Materials Science

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Takashi Taniguchi

National Institute for Materials Science

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Maik Wolter

RWTH Aachen University

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Sven Reichardt

University of Luxembourg

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