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Dive into the research topics where Niklas Loges is active.

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Featured researches published by Niklas Loges.


Langmuir | 2013

PAA-PAMPS copolymers as an efficient tool to control CaCO3 scale formation.

Michael Dietzsch; Matthias Barz; Timo Schüler; Stefanie Klassen; Martin Schreiber; Moritz Susewind; Niklas Loges; Michael Lang; Nadja Hellmann; Monika Fritz; Karl Fischer; Patrick Theato; Angelika Kühnle; Manfred Schmidt; Rudolf Zentel; Wolfgang Tremel

Scale formation, the deposition of certain minerals such as CaCO3, MgCO3, and CaSO4·2H2O in industrial facilities and household devices, leads to reduced efficiency or severe damage. Therefore, incrustation is a major problem in everyday life. In recent years, double hydrophilic block copolymers (DHBCs) have been the focus of interest in academia with regard to their antiscaling potential. In this work, we synthesized well-defined blocklike PAA-PAMPS copolymers consisting of acrylic acid (AA) and 2-acrylamido-2-methyl-propane sulfonate (AMPS) units in a one-step reaction by RAFT polymerization. The derived copolymers had dispersities of 1.3 and below. The copolymers have then been investigated in detail regarding their impact on the different stages of the crystallization process of CaCO3. Ca(2+) complexation, the first step of a precipitation process, and polyelectrolyte stability in aqueous solution have been investigated by potentiometric measurements, isothermal titration calorimetry (ITC), and dynamic light scattering (DLS). A weak Ca(2+) induced copolymer aggregation without concomitant precipitation was observed. Nucleation, early particle growth, and colloidal stability have been monitored in situ with DLS. The copolymers retard or even completely suppress nucleation, most probably by complexation of solution aggregates. In addition, they stabilize existing CaCO3 particles in the nanometer regime. In situ AFM was used as a tool to verify the coordination of the copolymer to the calcite (104) crystal surface and to estimate its potential as a growth inhibitor in a supersaturated CaCO3 environment. All investigated copolymers instantly stopped further crystal growth. The carboxylate richest copolymer as the most promising antiscaling candidate proved its enormous potential in scale inhibition as well in an industrial-filming test (Fresenius standard method).


Langmuir | 2010

Interaction of Alkaline Metal Cations with Oxidic Surfaces: Effect on the Morphology of SnO2 Nanoparticles

Alexander Birkel; Niklas Loges; Enrico Mugnaioli; Robert Branscheid; Dominik Koll; Stefan Frank; Martin Panthöfer; Wolfgang Tremel

Reaction pathways to SnO(2) nanomaterials through the hydrolysis of hydrated tin tetrachloride precursors were investigated. The products were prepared solvothermally starting from hydrated tin tetrachloride and various (e.g., alkali) hydroxides. The influence of the precursor base on the final morphology of the nanomaterials was studied. X-ray powder diffraction (XRD) data indicated the formation of rutile-type SnO(2). Transmission electron microscopy (TEM) studies revealed different morphologies that were formed with different precursor base cations. Data from molecular dynamics (MD) simulations provide theoretical evidence that the adsorption of the cations of the precursor base to the faces of the growing SnO(2) nanocrystals is crucial for the morphology of the nanostructures.


Angewandte Chemie | 2012

Ab Initio Structure Determination of Vaterite by Automated Electron Diffraction

Enrico Mugnaioli; Iryna Andrusenko; Timo Schüler; Niklas Loges; Robert E. Dinnebier; Martin Panthöfer; Wolfgang Tremel; Ute Kolb


Angewandte Chemie | 2007

Phase Selection of Calcium Carbonate through the Chirality of Adsorbed Amino Acids

Stephan E. Wolf; Niklas Loges; Bernd Mathiasch; Martin Panthöfer; Ingo Mey; Andreas Janshoff; Wolfgang Tremel


Langmuir | 2006

Probing cooperative interactions of tailor-made nucleation surfaces and macromolecules: A bioinspired route to hollow micrometer-sized calcium carbonate particles

Niklas Loges; Karlheinz Graf; Lutz Nasdala; Wolfgang Tremel


Angewandte Chemie | 2012

Ab-initio-Strukturbestimmung von Vaterit mit automatischer Beugungstomographie

Enrico Mugnaioli; Iryna Andrusenko; Timo Schüler; Niklas Loges; Robert E. Dinnebier; Martin Panthöfer; Wolfgang Tremel; Ute Kolb


European Polymer Journal | 2015

Well-defined carbohydrate-based polymers in calcium carbonate crystallization: Influence of stereochemistry in the polymer side chain on polymorphism and morphology

Matthias Barz; Sebastian Götze; Niklas Loges; Timo Schüler; Patrick Theato; Wolfgang Tremel; Rudolf Zentel


Handbook of Biomineralization: Biological Aspects and Structure Formation | 2008

Template Surfaces for the Formation of Calcium Carbonate

Wolfgang Tremel; Jörg Küther; Mathias Balz; Niklas Loges; Stephan E. Wolf


Angewandte Chemie | 2007

Phasenselektion von Calciumcarbonat durch die Chiralität adsorbierter Aminosäuren

Stephan E. Wolf; Niklas Loges; Bernd Mathiasch; Martin Panthöfer; Ingo Mey; Andreas Janshoff; Wolfgang Tremel


Archive | 2007

Method for producing precipitated calcium carbonate with controllable aragonite content, involves utilizing substance, which has amino group at alpha, beta or gamma-positions of carboxyl group

Niklas Loges; Wolfgang Tremel; Stephan E. Wolf

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Stephan E. Wolf

University of Erlangen-Nuremberg

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Ingo Mey

University of Göttingen

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