@article{4114,
  abstract     = {{Two methods to create biomimetic anti-reflection nanostructures in ordinary glass microscope object slides are presented. One technique is based on a nanosphere lithography process combined with physical vapour deposition of nickel and reactive ion etching (RIE). The other uses plasma induced dewetting of a smooth nickel surface. The amount of reflected light was measured and a method to simulate the reflectivity from an atomic force microscopy (AFM) topography scan of the glass surface is presented. The reflectivity for visible light at normal incidence was reduced to 20-50 % of the original value with both methods and the simulation gives results in good agreement to the measurement.}},
  author       = {{Achtelik, Jörn and Kemper, Ricarda M. and Sievers, Werner and Lindner, Jörg}},
  issn         = {{1946-4274}},
  journal      = {{MRS Proceedings}},
  location     = {{Boston (USA)}},
  publisher    = {{Cambridge University Press (CUP)}},
  title        = {{{Self-Organized Nanostructure Formation for Anti-Reflection Glass Surfaces}}},
  doi          = {{10.1557/opl.2012.491}},
  volume       = {{1389}},
  year         = {{2012}},
}

@inproceedings{4115,
  author       = {{Brodehl, Christoph and Greulich-Weber, Siegmund and Lindner, Jörg}},
  location     = {{Paderborn}},
  title        = {{{Gyrotropic Metamaterials}}},
  year         = {{2012}},
}

@article{4131,
  abstract     = {{We report an anisotropic formation of defects in cubic GaN grown on nano-patterned 3C-SiC/Si (001) by molecular
beam epitaxy. Nano-patterning of 3C-SiC/Si (001) is achieved by nanosphere lithography and a reactive
ion etching process. Atomic force microscopy and scanning electron microscopy show that the selectivearea-
grown cubic GaN nucleates in two structurally different domains, which most probably originate from the
substrate. In adjacent domains the formation of defects, especially hexagonal inclusions, is different and leads to
two different surface morphologies. The dominant phase within these domains was measured by electron backscatter
diffraction. Optical properties were investigated by micro-photoluminescence and cathodoluminescence spectroscopy.}},
  author       = {{Kemper, R. M. and Häberlen, M. and Schupp, T. and Weinl, M. and Bürger, M. and Ruth, M. and Meier, Cedrik and Niendorf, T. and Maier, H. J. and Lischka, K. and As, D. J. and Lindner, Jörg}},
  issn         = {{1862-6351}},
  journal      = {{physica status solidi (c)}},
  number       = {{3-4}},
  pages        = {{1028--1031}},
  publisher    = {{Wiley}},
  title        = {{{Formation of defects in cubic GaN grown on nano-patterned 3C-SiC (001)}}},
  doi          = {{10.1002/pssc.201100174}},
  volume       = {{9}},
  year         = {{2012}},
}

@inproceedings{4133,
  author       = {{Kemper, R.M. and Hiller, L. and Stauden, T. and Pezoldt, J.  and Meertens, D. and Luysberg, M.  and Tillmann, K. and Riedl, Thomas and As, Donald and Lindner, Jörg}},
  location     = {{Manchester (UK)}},
  title        = {{{TEM investigation of GaN thin films grown on nanostructured 3C-SiC/Si(001) substrates}}},
  year         = {{2012}},
}

@inproceedings{4134,
  author       = {{Lindner, Jörg}},
  location     = {{Warsaw (Poland)}},
  title        = {{{Nanosphere Lithography: State-of-the-art and Future Directions}}},
  year         = {{2012}},
}

@inproceedings{4135,
  author       = {{Pauly, Johannes and Lindner, Jörg}},
  location     = {{Warsaw (Poland)}},
  title        = {{{TEM Characterization of Nickel Nanodot Arrays on Silicon formed by Nanosphere Lithography}}},
  year         = {{2012}},
}

@inproceedings{4138,
  author       = {{Lindner, Jörg}},
  location     = {{Oberkochen und Jena (online)}},
  title        = {{{Nanokugellithographie: Grundlagen und Anwendungen}}},
  year         = {{2012}},
}

@inproceedings{4139,
  author       = {{Lindner, Jörg}},
  location     = {{Leipzig (Germany)}},
  title        = {{{Nanolithographie von Oberflächen für das Wachstum optoelektronischer Strukturen}}},
  year         = {{2012}},
}

@article{43,
  author       = {{Chen, Xianzhong and Huang, Lingling and Mühlenbernd, Holger and Li, Guixin and Bai, Benfeng and Tan, Qiaofeng and Jin, Guofan and Qiu, Cheng-Wei and Zhang, Shuang and Zentgraf, Thomas}},
  issn         = {{2041-1723}},
  journal      = {{Nature Communications}},
  publisher    = {{Springer Nature}},
  title        = {{{Dual-polarity plasmonic metalens for visible light}}},
  doi          = {{10.1038/ncomms2207}},
  volume       = {{3}},
  year         = {{2012}},
}

@inproceedings{4380,
  abstract     = {{The structural and vibrational properties of lithium niobate (LN) – lithium tantalate (LT) mixed crystals (LNT, LiNb1-xTaxO3) are investigated over the whole composition range by first-principles simulations. The crystal volume grows roughly linearly from LT to LN, whereby the lattice parameters a and c show minor deviations from the Vegard behavior between the end compounds, LiNbO3 and LiTaO3. Our calculations in the framework of the density functional theory show the TO1, TO2 and TO4-modes to become harder with increasing Nb concentration. TO3 becomes softer with increasing Nb content, instead. The frequency shifts of the zone center A1-TO phonon modes for crystals with different compositions are found to be as large as 30 cm-1. Raman spectroscopy, which is sensitive to the A1 modes, can be therefore employed to determine the crystal composition.}},
  author       = {{Sanna, Simone and Riefer, Arthur and Neufeld, Sergej and Schmidt, Wolf Gero and Berth, Gerhard and Widhalm, Alex and Zrenner, Artur}},
  booktitle    = {{Proceedings of ISAF-ECAPD-PFM 2012}},
  keywords     = {{Ferroelectrics, Vibrational properties, LiNbO3, LiTaO3, Mixed Crystals}},
  location     = {{Aveiro, Portugal}},
  title        = {{{Vibrational fingerprints of LiNbO3-LiTaO3 mixed crystals}}},
  year         = {{2012}},
}

@inbook{4381,
  abstract     = {{Coherent physics and applications of exciton qubits in electric fi eld tunable quantum dot structures are our focus. Excitations with picosecond (ps) laser pulses result in qubit rotations. Using state projection by tunnelling the readout can be performed in quantitative way. As a function of electric fi eld induced detuning Ramsey fringes of a single exciton qubit can be observed and controlled for double pulse excitation. Therefore it is possible to demonstrate voltage controlled qubit manipulations within a wide range of pulse delays. Using fast electric signals, phase-locked to ps-laser pulses, the coherent control of an exciton qubit can be obtained by electric interaction. Such voltage controlled qubit manipulations seem to be essential for new types of optoelectronic quantum gates and novel applications in the fi eld of coherent optoelectronics.}},
  author       = {{Michaelis de Vasconcellos, Steffen and Gordon, Simon and Mantei, Dirk and Leier, Yves Alexander and Al-Hmoud, M. and Quiring, Wadim and Zrenner, Artur}},
  booktitle    = {{QUANTUM OPTICS WITH SEMICONDUCTOR NANOSTRUCTURES}},
  editor       = {{Jahnke, Frank}},
  isbn         = {{9780857092328 0857092324}},
  keywords     = {{excitons, quantum bits, coherent manipulation, Ramsey interference, quantum gate}},
  pages        = {{528--559}},
  publisher    = {{Woodhead Publishing}},
  title        = {{{Coherent optoelectronics with quantum dots}}},
  year         = {{2012}},
}

@article{1711,
  author       = {{Huang, Lingling and Chen, Xianzhong and Mühlenbernd, Holger and Li, Guixin and Bai, Benfeng and Tan, Qiaofeng and Jin, Guofan and Zentgraf, Thomas and Zhang, Shuang}},
  issn         = {{1530-6984}},
  journal      = {{Nano Letters}},
  number       = {{11}},
  pages        = {{5750--5755}},
  publisher    = {{American Chemical Society (ACS)}},
  title        = {{{Dispersionless Phase Discontinuities for Controlling Light Propagation}}},
  doi          = {{10.1021/nl303031j}},
  volume       = {{12}},
  year         = {{2012}},
}

@article{1712,
  author       = {{Ye, Ziliang and Zhang, Shuang and Wang, Yuan and Park, Yong-Shik and Zentgraf, Thomas and Bartal, Guy and Yin, Xiaobo and Zhang, Xiang}},
  issn         = {{1098-0121}},
  journal      = {{Physical Review B}},
  number       = {{15}},
  publisher    = {{American Physical Society (APS)}},
  title        = {{{Mapping the near-field dynamics in plasmon-induced transparency}}},
  doi          = {{10.1103/physrevb.86.155148}},
  volume       = {{86}},
  year         = {{2012}},
}

@article{1713,
  author       = {{Liu, Yongmin and Palomba, Stefano and Park, Yongshik and Zentgraf, Thomas and Yin, Xiaobo and Zhang, Xiang}},
  issn         = {{1530-6984}},
  journal      = {{Nano Letters}},
  number       = {{9}},
  pages        = {{4853--4858}},
  publisher    = {{American Chemical Society (ACS)}},
  title        = {{{Compact Magnetic Antennas for Directional Excitation of Surface Plasmons}}},
  doi          = {{10.1021/nl302339z}},
  volume       = {{12}},
  year         = {{2012}},
}

@article{1714,
  author       = {{Lanzillotti-Kimura, N. D. and Zentgraf, Thomas and Zhang, X.}},
  issn         = {{1098-0121}},
  journal      = {{Physical Review B}},
  number       = {{4}},
  publisher    = {{American Physical Society (APS)}},
  title        = {{{Control of plasmon dynamics in coupled plasmonic hybrid mode microcavities}}},
  doi          = {{10.1103/physrevb.86.045309}},
  volume       = {{86}},
  year         = {{2012}},
}

@article{1715,
  author       = {{Ishikawa, Atsushi and Oulton, Rupert F. and Zentgraf, Thomas and Zhang, Xiang}},
  issn         = {{1098-0121}},
  journal      = {{Physical Review B}},
  number       = {{15}},
  publisher    = {{American Physical Society (APS)}},
  title        = {{{Slow-light dispersion by transparent waveguide plasmon polaritons}}},
  doi          = {{10.1103/physrevb.85.155108}},
  volume       = {{85}},
  year         = {{2012}},
}

@article{16109,
  author       = {{Bartley, Tim and Donati, Gaia and Spring, Justin B. and Jin, Xian-Min and Barbieri, Marco and Datta, Animesh and Smith, Brian J. and Walmsley, Ian A.}},
  issn         = {{1050-2947}},
  journal      = {{Physical Review A}},
  title        = {{{Multiphoton state engineering by heralded interference between single photons and coherent states}}},
  doi          = {{10.1103/physreva.86.043820}},
  year         = {{2012}},
}

@article{16242,
  author       = {{Elsässer, Brigitta and Dohmeier-Fischer, Silvia and Fels, Gregor}},
  issn         = {{1610-2940}},
  journal      = {{Journal of Molecular Modeling}},
  pages        = {{3169--3179}},
  title        = {{{Theoretical investigation of the enzymatic phosphoryl transfer of β-phosphoglucomutase: revisiting both steps of the catalytic cycle}}},
  doi          = {{10.1007/s00894-011-1344-5}},
  year         = {{2012}},
}

@article{35341,
  abstract     = {{<jats:title>Abstract</jats:title>
               <jats:p>Flow fields and shear-induced structures in the lamellar (L<jats:sub>
                     <jats:italic>α</jats:italic>
                  </jats:sub>) phase of the system triethylene glycol mono <jats:italic>n</jats:italic>-decyl ether (C<jats:sub>10</jats:sub>E<jats:sub>3</jats:sub>)/water were investigated by NMR velocimetry, diffusometry, and <jats:italic />
                  <jats:sup>2</jats:sup>
                  <jats:italic />H NMR spectroscopy. The transformation from multilamellar vesicles (MLVs) to aligned planar lamellae is accompanied by a transient gradient shear banding. A high-shear-rate band of aligned lamellae forms next to the moving inner wall of the cylindrical Couette shear cell while a low-shear-rate band of the initial MLV structure remains close to the outer stationary wall. The band of layers grows at the expense of the band of MLVs until the transformation is completed. This process scales with the applied strain. Wall slip is a characteristic of the MLV state, while aligned layers show no deviation from Newtonian flow. The homogeneous nature of the opposite transformation from well aligned layers to MLVs <jats:italic>via</jats:italic> an intermediate structure resembling undulated multilamellar cylinders is confirmed. The strain dependence of this transformation appears to be independent of temperature. The shear diagram, which represents the shear-induced structures as a function of temperature and shear rate, contains a transition region between stable layers and stable MLVs. The steady-state structures in the transition region show a continuous change from layer-like at high temperature to MLV-like at lower temperature. These structures are homogeneous on a length scale above a few micrometers.</jats:p>}},
  author       = {{Medronho, Bruno and Olsson, Ulf and Schmidt, Claudia and Galvosas, Petrik}},
  issn         = {{2196-7156}},
  journal      = {{Zeitschrift für Physikalische Chemie}},
  keywords     = {{Physical and Theoretical Chemistry}},
  number       = {{11-12}},
  pages        = {{1293--1314}},
  publisher    = {{Walter de Gruyter GmbH}},
  title        = {{{Transient and Steady-State Shear Banding in a Lamellar Phase as Studied by Rheo-NMR}}},
  doi          = {{10.1524/zpch.2012.0313}},
  volume       = {{226}},
  year         = {{2012}},
}

@article{35336,
  author       = {{Quiñones, Javier Pérez and Gothelf, Kurt V. and Kjems, Jørgen and Heras, Angeles and Schmidt, Claudia and Peniche, Carlos}},
  issn         = {{2157-9083}},
  journal      = {{Journal of Biomaterials and Tissue Engineering}},
  keywords     = {{Biomedical Engineering, Medicine (miscellaneous), Bioengineering, Biotechnology}},
  number       = {{1}},
  pages        = {{164--172}},
  publisher    = {{American Scientific Publishers}},
  title        = {{{Novel Self-Assembled Nanoparticles of Testosterone-Modified Glycol Chitosan and Fructose Chitosan for Controlled Release}}},
  doi          = {{10.1166/jbt.2013.1071}},
  volume       = {{3}},
  year         = {{2012}},
}

