30 research outputs found

    Blood Vessel Model using Tissue Modules with on-demand Stimuli

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    Artificial vascularization of tissue has been a major barrier in the upscaling of tissue engineering. Achieving angiogenesis from a pre-existing vessel in a controlled manner is a possible solution to prevascularize tissue. Microfluidic approaches do not allow yet the creation of a complex hierarchical tissue construct that can be manipulated and removed from the creation template.Thus the challenge is to simulate angiogenesis in a 1:1 scale. We aim to assemble a blood vessel module that will include: on-demand flow, through a tubular structure comprised of endothelial cells, fibroblasts and smooth muscle cells suspended in a hydrogel environment functionalized with growth factors

    Hausdorff spectrum of harmonic measure

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    For every non-elementary hyperbolic group, we show that for every random walk with finitely supported admissible step distribution, the associated entropy equals the drift times the logarithmic volume growth if and only if the corresponding harmonic measure is comparable with Hausdorfff measure on the boundary. Moreover, we introduce one parameter family of probability measures which interpolates a Patterson-Sullivan measure and the harmonic measure, and establish a formula of Hausdorff spectrum (multifractal spectrum) of the harmonic measure. We also give some finitary versions of dimensional properties of the harmonic measure

    Ultrahigh-Throughput Production of Monodisperse and Multifunctional Janus Microparticles Using in-Air Microfluidics

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    Compartmentalized Janus microparticles advance many applications ranging from chemical synthesis to consumer electronics. Although these particles can be accurately manufactured using microfluidic droplet generators, the per-nozzle throughputs are relatively low (∌ΌL/min). Here, we use “in-air microfluidics” to combine liquid microjets in midair, thereby enabling orders of magnitude faster production of Janus microparticles (∌mL/min) as compared to chip-based microfluidics. Monodisperse Janus microparticles with diameters between 50 and 500 ÎŒm, tunable compartment sizes, and functional cargo are controllably produced. Furthermore, these microparticles are designed as magnetically steerable microreactors, which represents a novel tool to perform enzymatic cascade reactions within continuous fluid flow

    Hydrogen storage in ordered and disordered phenylene-bridged mesoporous organosilicas

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    Novel hexagonal Periodic Mesoporous Organosilicas (PMOs) and Disordered Mesoporous Organosilicas (DMOs) were synthesized by hydrolysis of 1,4-bis(trialkoxylsilyl) benzene precursor in alkaline aqueous solutions of different alkyl-trimethyl ammonium cations and evaluated for their hydrogen storage capacity. The PMO materials exhibit regular hexagonal pore arrangement and specific surface area between 640 and 782 m2 g-1 whereas the DMO materials have specific surface area that lies between 650 and 910 m2 g-1. The storage capacity of the materials is discussed in terms of number of molecules per surface unit. The materials exhibit a reversible hydrogen excess surface adsorption capacity up to 2.10 wt% at 6 MPa and 77 K. DFT calculations were performed to define the binding strength of hydrogen with the pore walls indicated an interaction energy value of -0.55 Kcal mol-1, higher than the interaction energy value of hydrogen with a single benzene or a benzene incorporated in the IRMOR-1 walls. Grand Canonical Monte Carlo (GCMC) simulations showed that no hydrogen molecule can be inserted inside the wall structure of the materials. © 2013, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights
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