Afshin Abrishamkar
Swiss Federal Laboratories for Materials Science and Technology
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Publication
Featured researches published by Afshin Abrishamkar.
Advanced Materials | 2016
Marta Rubio-Martínez; Inhar Imaz; Neus Domingo; Afshin Abrishamkar; Tiago Sotto Mayor; René M. Rossi; Carlos Carbonell; Andrew J. deMello; David B. Amabilino; Daniel Maspoch; Josep Puigmartí-Luis
A methodology that can be efficiently used to synthesize, isolate, and study out-of-equilibrium crystal structures employing controlled and diffusion-limited microfluidic environments is demonstrated. Unlike studies conducted with conventional mixing procedures in a flask, it is proven experimentally and with numerical simulations that microfluidic technologies can undoubtedly fine-tune reaction times and reagents concentration profiles; factors that enable out-of-equilibrium crystal forms to be obtained.
Acta Biomaterialia | 2017
L. Weidenbacher; Afshin Abrishamkar; Markus Rottmar; Anne Géraldine Guex; Katharina Maniura-Weber; Andrew J. deMello; Stephen J. Ferguson; René M. Rossi; Giuseppino Fortunato
The fabrication of functional 3D tissues is a major goal in tissue engineering. While electrospinning is a promising technique to manufacture a structure mimicking the extracellular matrix, cell infiltration into electrospun scaffolds remains challenging. The robust and in situ delivery of cells into such biomimetic scaffolds would potentially enable the design of tissue engineered constructs with spatial control over cellular distribution but often solvents employed in the spinning process are problematic due to their high cytotoxicity. Herein, microfluidic cell encapsulation is used to establish a temporary protection vehicle for the in situ delivery of cells for the development of a fibrous, cell-laden hybrid biograft. Therefore a layer-by-layer process is used by alternating fiber electrospinning and cell spraying procedures. Both encapsulation and subsequent electrospraying of capsules has no negative effect on the viability and myogenic differentiation of murine myoblast cells. Propidium iodide positive stained cells were analyzed to quantify the amount of dead cells and the presence of myosin heavy chain positive cells after the processes was shown. Furthermore, encapsulation successfully protects cells from cytotoxic solvents (such as dimethylformamide) during in situ delivery of the cells into electrospun poly(vinylidene fluoride-co-hexafluoropropylene) scaffolds. The resulting cell-populated biografts demonstrate the clear potential of this approach in the creation of viable tissue engineering constructs. STATEMENT OF SIGNIFICANCE Infiltration of cells and their controlled spatial distribution within fibrous electrospun membranes is a challenging task but allows for the development of functional highly organized 3D hybrid tissues. Combining polymer electrospinning and cell electrospraying in a layer-by-layer approach is expected to overcome current limitations of reduced cell infiltration after traditional static seeding. However, organic solvents, used during the electrospinning process, impede often major issues due to their high cytotoxicity. Utilizing microfluidic encapsulation as a mean to embed cells within a protective polymer casing enables the controlled deposition of viable cells without interfering with the cellular phenotype. The presented techniques allow for novel cell manipulation approaches being significant for enhanced 3D tissue engineering based on its versatility in terms of material and cell selection.
Journal of Visualized Experiments | 2016
Afshin Abrishamkar; Markos Paradinas; Elena Bailo; Romen Rodriguez-Trujillo; Raphael Pfattner; René M. Rossi; Carmen Ocal; Andrew J. deMello; David B. Amabilino; Josep Puigmartí-Luis
The precise localization and controlled chemical treatment of structures on a surface are significant challenges for common laboratory technologies. Herein, we introduce a microfluidic-based technology, employing a double-layer microfluidic device, which can trap and localize in situ and ex situ synthesized structures on microfluidic channel surfaces. Crucially, we show how such a device can be used to conduct controlled chemical reactions onto on-chip trapped structures and we demonstrate how the synthetic pathway of a crystalline molecular material and its positioning inside a microfluidic channel can be precisely modified with this technology. This approach provides new opportunities for the controlled assembly of structures on surface and for their subsequent treatment.
Green Processing and Synthesis | 2018
Afshin Abrishamkar; Armin Franz Isenmann; Amin Abrishamkar
Abstract Glycerin (glycerol) is a co-product of biodiesel production that is widely produced and is available at a low cost. To date, various applications have been investigated and introduced for biodiesel glycerin. In this study, a number of valuable products were produced using biodiesel glycerin and formic acid as the main reactants. Allyl alcohol is one of the valuable chemicals produced from glycerin monoformate. Efficient production of this product requires successful completion of the first section of the reaction, which is an equilibrium reaction. The highest feasible yield achieved was about 83% (based on the consumption of formic acid) at 120–140°C without the addition of any catalysts. Also, the esterification reaction was further investigated at room temperature, where the equilibrium state was reached with a yield of 55% after only 4 h. Moreover, the addition of urea to the reaction with the aim of producing the other two side products, i.e. diformyl urea and glycerin carbonate, in addition to glycerin monoformate, was studied. The results showed that considerable amounts of applicable byproducts, e.g. formamid, are also produced, making the process even more economical.
Journal of Visualized Experiments | 2017
Afshin Abrishamkar; David Rodríguez-San-Miguel; Jorge A. R. Navarro; Romen Rodriguez-Trujillo; David B. Amabilino; Rubén Mas-Ballesté; Félix Zamora; Andrew J. deMello; Josep Puigmartí-Luis
Covalent Organic Frameworks (COFs) are a class of porous covalent materials which are frequently synthesized as unprocessable crystalline powders. The first COF was reported in 2005 with much effort centered on the establishment of new synthetic routes for its preparation. To date, most available synthetic methods for COF synthesis are based on bulk mixing under solvothermal conditions. Therefore, there is increasing interest in developing systematic protocols for COF synthesis that provide for fine control over reaction conditions and improve COF processability on surfaces, which is essential for their use in practical applications. Herein, we present a novel microfluidic-based method for COF synthesis where the reaction between two constituent building blocks, 1,3,5-benzenetricarbaldehyde (BTCA) and 1,3,5-tris(4-aminophenyl)benzene (TAPB), takes place under controlled diffusion conditions and at room temperature. Using such an approach yields sponge-like, crystalline fibers of a COF material, hereafter called MF-COF. The mechanical properties of MF-COF and the dynamic nature of the approach allow the continuous production of MF-COF fibers and their direct printing onto surfaces. The general method opens new potential applications requiring advanced printing of 2D or 3D COF structures on flexible or rigid surfaces.
Chemical Communications | 2016
David Rodríguez-San-Miguel; Afshin Abrishamkar; Jorge A. R. Navarro; Romen Rodriguez-Trujillo; David B. Amabilino; Rubén Mas-Ballesté; Félix Zamora; Josep Puigmartí-Luis
Iranian Polymer Journal | 2016
Mohammadreza Naeimirad; Ali Zadhoush; Afshin Abrishamkar; Ahmadreza Pishevar; A. Andrés Leal
Journal of Molecular Structure | 2014
Lorrayne O. Nascimento; Pedro P. Goulart; Jéssyca M.L. Corrêa; Afshin Abrishamkar; Jeferson G. Da Silva; Antonio S. Mangrich; Amanda A. de França; Ângelo M.L. Denadai
Journal of Molecular Structure | 2015
Jéssyca M.L. Corrêa; Afshin Abrishamkar; Jeferson G. Da Silva; Juliano R. Pereira; Fernando Castro de Oliveira; Ângelo M.L. Denadai
Ceramics International | 2017
Alan R. de Oliveira; Afshin Abrishamkar; Ewerton M. Veloso; Fernando Castro de Oliveira; Jeferson G. Da Silva; Juliano R. Pereira; Renata Diniz; Ângelo M.L. Denadai
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Swiss Federal Laboratories for Materials Science and Technology
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