Scientific publications

2014
Novel galvanic nanostructures of Ag and Pd for efficient laser desorption/ionization of low molecular weight compounds

Silina, Yuliya E. | Meier, Florian | Nebolsin, Valeriy A. | Koch, Marcus | Volmer, Dietrich A.

DOI:

A simple approach for synthesis of palladium and silver nanostructures with readily adjustable morphologies was developed using galvanic electrochemical deposition, for application to surface-assisted laser desorption/ionization (SALDI) of small biological molecules. A range of fatty acids, triglycerides, carbohydrates, and antibiotics were investigated to assess the performance of the new materials. Intense analyte cations were generated from the galvanic surfaces upon UV laser irradiation such as potassium adducts for a film thickness <100 nm (originating from impurities of the electrolyte solution) and Pd and Ag cluster ions for films with a thickness >120 nm. Possible laser desorption/ionization mechanisms of these galvanic structures are discussed. The films exhibited self-organizing abilities and adjustable morphologies by changing electrochemical parameters. They did not require any stabilizing agents and were inexpensive and very easy to produce. SALDI analysis showed that the materials were stable under ambient conditions and analytical results with excellent measurement reproducibility and detection sensitivity similar to MALDI were obtained. Finally, we applied the galvanic surfaces to fast screening of natural oils with minimum sample preparation.

DOI:

Journal of The American Society for Mass Spectrometry,
2014, 25 (5), 841-851.

Preferential sliding directions on graphite

Balakrishna, Soorali Ganeshamurthy | de Wijn, Astrid S. | Bennewitz, Roland

DOI:

The anisotropy of friction on graphitic surfaces is investigated by a combined friction force microscopy and modeling study. Friction vectors deviate up to 15° from pulling directions. The strongest deviations are found for pulling directions which lie almost along one zigzag direction of the honeycomb structure, the preferred sliding direction on graphite surfaces and epitaxial graphene grown on SiC(0001). Atomic stick-slip events along and across molecular rows determine direction and magnitude of friction. Simulation and modeling reveal the role of temperature and of the two-dimensional character of the surface potential for the friction anisotropy.

DOI:

Physical Review B,
2014, 89 (24), 245440.

Do you see atoms? An interdisciplinary class on atomic force microscopy and the philosophy of imaging

Bennewitz, Roland | Strobach, Niko

DOI:

We describe an interdisciplinary class offered to undergraduate university students of Arts and Sciences, with most participants majoring in philosophy or physics. The class combines learning about the theory of atomic force microscopes (AFMs), using them for gathering data and processing images out of the data in hands-on exercises with (1) understanding important do's and don'ts of image processing and (2) with philosophical reflection on microscopy and image theory guided by philosophers' texts, written between 1690 and 2010, on microscopes, on images and on the suitable-realist or antirealist-interpretation of microscopic images.

DOI:

Journal of Nano Education,
2014, 6 (1), 30-38.

Friction: Let it slip

Carpick, Robert W. | Bennewitz, Roland

DOI:

Friction involves a complex set of phenomena spanning a large range of length scales, but experiments assessing the evolution of the slip-front between two dry sliding bodies now reveal that slip can be reasonably well described by linear fracture mechanics theory.

DOI:

Nature Physics,
2014, 10 (6), 410-411.

Schmieren und schalten mit flüssigen Salzen

Hausen, Florian | Bennewitz, Roland

DOI:

Reibung lässt sich elektrochemisch kontrollieren. Mit ionischen Flüssigkeiten elektrochemisch gesteuerte Reibvorgänge könnten in kleinskaligen, miniaturisierten Kontakten herkömmliche Schmiermittel ersetzen.

DOI:

Nachrichten aus der Chemie,
2014, 62 (6), 620-622.

Force microscopy of layering and friction in an ionic liquid

Hoth, Judith | Hausen, Florian | Müser, Martin H. | Bennewitz, Roland

DOI:

The mechanical properties of the ionic liquid 1-butyl-1-methylpyrrolidinium tris(pentafluoroethyl) trifluorophosphate ([Py1,4][FAP]) in confinement between a SiOx and a Au(1 1 1) surface are investigated by means of atomic force microscopy (AFM) under electrochemical control. Up to 12 layers of ion pairs can be detected through force measurements while approaching the tip of the AFM to the surface. The particular shape of the force versus distance curve is explained by a model for the interaction between tip, gold surface and ionic liquid, which assumes an exponentially decaying oscillatory force originating from bulk liquid density correlations. Jumps in the tip-sample distance upon approach correspond to jumps of the compliant force sensor between branches of the oscillatory force curve. Frictional force between the laterally moving tip and the surface is detected only after partial penetration of the last double layer between tip and surface.

DOI:

Journal of Physics: Condensed Matter,
2014, 26 (28), 284110.

Atomic scale mechanisms of friction reduction and wear protection by graphene

Klemenz, Andreas | Pastewka, Lars | Balakrishna, Soorali Ganeshamurthy | Caron, Arnaud | Bennewitz, Roland | Moseler, Michael

DOI:

We study nanoindentation and scratching of graphene-covered Pt(111) surfaces in computer simulations and experiments. We find elastic response at low load, plastic deformation of Pt below the graphene at intermediate load, and eventual rupture of the graphene at high load. Friction remains low in the first two regimes, but jumps to values also found for bare Pt(111) surfaces upon graphene rupture. While graphene substantially enhances the load carrying capacity of the Pt substrate, the substrate's intrinsic hardness and friction are recovered upon graphene rupture.

DOI:

Nano Letters,
2014, 14 (12), 7145-7152.

Novel W-based metallic glass with high hardness and wear resistance

Madge, Shantanu Vijay | Caron, Arnaud | Gralla, Robert | Wilde, Gerhard | Mishra, S. K.

DOI:

An attempt has been made to develop a new metallic glass (MG) that combines high hardness with wear resistance. Refractory metallic films of W33Ni32B35 (at.%) have been deposited on stainless steel and Si substrates by dc magnetron sputtering. The alloy films are glassy, have a high crystallization temperature of 873 °C and rank among the very hard metallic materials (∼24 GPa). Importantly, this MG also shows excellent wear resistance, approaching that of standard tribological materials like TiN and hence it represents one of the most wear-resistant known metallic materials. Based on its unique combination of high strength and low elastic modulus, other potential applications are also discussed.

DOI:

Intermetallics,
2014, 47, 6-10.

Surface structure influences contact killing of bacteria by copper

Zeiger, Marco | Solioz, Marc | Edongué, Hervais | Arzt, Eduard | Schneider, Andreas S.

DOI:

Copper kills bacteria rapidly by a mechanism that is not yet fully resolved. The antibacterial property of copper has raised interest in its use in hospitals, in place of plastic or stainless steel. On the latter surfaces, bacteria can survive for days or even weeks. Copper surfaces could thus provide a powerful accessory measure to curb nosocomial infections. We here investigated the effect of the copper surface structure on the efficiency of contact killing of Escherichia coli, an aspect which so far has received very little attention. It was shown that electroplated copper surfaces killed bacteria more rapidly than either polished copper or native rolled copper. The release of ionic copper was also more rapid from electroplated copper compared to the other materials. Scanning electron microscopy revealed that the bacteria nudged into the grooves between the copper grains of deposited copper. The findings suggest that, in terms of contact killing, more efficient copper surfaces can be engineered.

DOI:

MicrobiologyOpen,
2014, 3 (3), 327-332.

OPEN ACCESS
Porous poly(para-phenylene) scaffolds for load-bearing orthopedic applications

DiRienzo, Amy L. | Yakacki, Christopher M. | Frensemeier, Mareike | Schneider, Andreas S. | Safranski, David L. | Hoyt, Anthony J. | Frick, Carl P.

DOI:

The focus of this study was to fabricate and investigate the mechanical behavior of porous poly(para-phenylene) (PPP) for potential use as a load-bearing orthopedic biomaterial. PPPs are known to have exceptional mechanical properties due to their aromatic backbone; however, the manufacturing and properties of PPP porous structures have not been previously investigated. Tailored porous structures with either small (150–250 µm) or large (420–500 µm) pore sizes were manufactured using a powder-sintering/salt-leaching technique. Porosities were systematically varied using 50 vol.% to 90 vol.%. Micro-computed tomography (µCT) and scanning electron microscopy (SEM) were used to verify an open-cell structure and investigate pore morphology of the scaffolds. Uniaxial mechanical behavior of solid and porous PPP samples was characterized through tensile and compressive testing. Both modulus and strength decreased with increasing porosity and matched well with foam theory. Porous scaffolds showed a significant decrease in strain-to-failure (< 4%) under tensile loading and experienced linear elasticity, plastic deformation, and densification under compressive loading. Over the size ranges tested, pore size did not significantly influence the mechanical behavior of the scaffolds on a consistent basis. These results are discussed in regards to use of porous PPP for orthopedic applications and a prototype porous interbody fusion cage is presented.

DOI:

Journal of the Mechanical Behavior of Biomedical Materials,
2014, 30, 347-357.