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Mathieu Bennet

Researcher at Max Planck Society

Publications -  29
Citations -  1039

Mathieu Bennet is an academic researcher from Max Planck Society. The author has contributed to research in topics: Magnetosome & Magnetotactic bacteria. The author has an hindex of 15, co-authored 25 publications receiving 864 citations. Previous affiliations of Mathieu Bennet include University of Edinburgh.

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Self-assembly of amorphous calcium carbonate microlens arrays

TL;DR: A simple self-assembly route leading to a CaCO3 microlens array, somewhat reminiscent of the brittlestars' microlenses, is described, by using a minimum number of components and equipment at ambient conditions, showing that advanced optical materials can be generated by a simple mineral precipitation.
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A vacuole-like compartment concentrates a disordered calcium phase in a key coccolithophorid alga

TL;DR: Cryo-preserved cells of the dominant coccolithophore Emiliania huxleyi are studied using state-of-the-art nanoscale imaging and spectroscopy to identify a compartment filled with high concentrations of a disordered form of calcium, suggesting an active role in coccoliths formation.
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Diversity of magneto-aerotactic behaviors and oxygen sensing mechanisms in cultured magnetotactic bacteria.

TL;DR: Six different magneto-aerotactic behaviors that can be described as a combination of three distinct mechanisms are reported, including the reported (di-)polar, axial, and a previously undescribed mechanism the authors named unipolar.
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On the pathway of mineral deposition in larval zebrafish caudal fin bone.

TL;DR: This study follows mineral deposition in the caudal fin of the zebrafish larva in vivo to challenge the view that mineral formation is restricted to osteoblast cells juxtaposed to bone, or to the extracellular matrix.
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Selecting for Function: Solution Synthesis of Magnetic Nanopropellers

TL;DR: It is shown that the carbon coating can be functionalized, enabling a wide range of applications and magnetically steerable nanopropellers from a set of carbon coated aggregates of magnetic nanoparticles using weak homogeneous rotating magnetic fields.