The Experts below are selected from a list of 22065 Experts worldwide ranked by ideXlab platform
Fariborz Tavangarian - One of the best experts on this subject based on the ideXlab platform.
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Review paper Carbon Nanostructures as nerve scaffolds for repairing large gaps in severed nerves
2012Co-Authors: Fariborz TavangarianAbstract:AbstractAs the field of nerve tissue engineering advances, new biomaterials and structures are required to improve the regeneration ofdamaged nerves. Carbon Nanostructures have been recognized as potential candidates to develop neural prostheses due to their one-dimensional Nanostructures and similar nanoscale dimensions to neuritis as well as their unique electrical and mechanical propertieswhen being used as a scaffold. This review addresses the promising application of Carbon Nanostructures in the repair of injured nerves.As a new viewpoint, the possibility of utilizing Carbon Nanostructures to repair a long gap in a severed nerve will be discussed as well.& 2012 Elsevier Ltd and Techna Group S.r.l. All rights reserved. Keywords: B. nanocomposites; D. Carbon; E. biomedical applications Contents1. Structure of the nervous system 60752. Repair procedures of the damaged nervous system. . . 60763. Neural tissue engineering for neuroregeneration 60774. Nanotechnology and neuroregeneration 60785. Characteristics of ideal materials for neural tissue engineering application 60786. Carbon Nanostructures as neural prostheses. . . 60787. Carbon/polymer composite scaffolds for neuroregeneration. . . 60798. Preparation of Carbon Nanostructures . 60809. Toxicity of Carbon Nanostructures . . . 608010. Purification of Carbon Nanostructures . 608111. Functionalization of Carbon Nanostructures. . . 608112. Carbon Nanostructures and cell viability 608213. Conclusions and future outlook 6083References. . . 6083
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Carbon Nanostructures as nerve scaffolds for repairing large gaps in severed nerves
Ceramics International, 2012Co-Authors: Fariborz TavangarianAbstract:Abstract As the field of nerve tissue engineering advances, new biomaterials and structures are required to improve the regeneration of damaged nerves. Carbon Nanostructures have been recognized as potential candidates to develop neural prostheses due to their one-dimensional Nanostructures and similar nanoscale dimensions to neuritis as well as their unique electrical and mechanical properties when being used as a scaffold. This review addresses the promising application of Carbon Nanostructures in the repair of injured nerves. As a new viewpoint, the possibility of utilizing Carbon Nanostructures to repair a long gap in a severed nerve will be discussed as well.
Laurent Fulcheri - One of the best experts on this subject based on the ideXlab platform.
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Carbon Nanostructures production by gas-phase plasma processes at atmospheric pressure
Journal of Physics D: Applied Physics, 2007Co-Authors: José Gonzalez-aguilar, Maryline Moreno, Laurent FulcheriAbstract:Carbon Nanostructures have received much attention for a wide range of applications. This paper reviews the historical role of plasmas in the gas-phase synthesis of Carbon Nanostructures and the present plasma technologies for industrial production purposes. It enumerates the advantages and disadvantages with respect to concurrent technologies commonly employed nowadays. Finally, some Carbon Nanostructures produced in our laboratory will serve as examples of the plasma processes potential.
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Carbon Nanostructures production by gas-phase plasma processes at atmospheric pressure
Journal of Physics D: Applied Physics, 2007Co-Authors: José Gonzalez-aguilar, Maryline Moreno, Laurent FulcheriAbstract:REVIEW ARTICLE : Carbon Nanostructures have received much attention for a wide range of applications. This paper reviews the historical role of plasmas in the gas-phase synthesis of Carbon Nanostructures and the present plasma technologies for industrial production purposes. It enumerates the advantages and disadvantages with respect to concurrent technologies commonly employed nowadays. Finally, some Carbon Nanostructures produced in our laboratory will serve as examples of the plasma processes potential.
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Production of Carbon Nanostructures by thermal plasma
2004Co-Authors: Laurent Fulcheri, Gilles Flamant, Thomas Gruenberger, Jose Gonzales-aguilar, Frédéric Fabry, Nicolas Probst, Eusebiu GriveiAbstract:The production of Carbon Nanostructures at very high temperature by thermal plasma has been one of the major research areas developed by Ecole des Mines de Paris and CNRS in association with industrial companies for more than ten years. Thermal plasmas allow operating conditions that cannot be achieved by conventional combustion processes (temperature, atmosphere) since the enthalpy is given by an external energy supply (plasma arc) in the total absence of oxygen which leads to a totally clean process (zero emission). Researches carried out on a semi-industrial pilot reactor have shown that thermal plasmas were particularly adapted to the production of Carbon based nanomaterials and have demonstrated their enormous potentials in this field. The plasma technology is characterized by a high versatility since it can be used for the synthesis of a wide range of Carbon Nanostructures ranging from Carbon Black over Fullerenes to Carbon nanotubes with a high product selectivity, using a wide range of liquid, gaseous or solid Carbon precursors.
José Gonzalez-aguilar - One of the best experts on this subject based on the ideXlab platform.
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Carbon Nanostructures production by gas-phase plasma processes at atmospheric pressure
Journal of Physics D: Applied Physics, 2007Co-Authors: José Gonzalez-aguilar, Maryline Moreno, Laurent FulcheriAbstract:Carbon Nanostructures have received much attention for a wide range of applications. This paper reviews the historical role of plasmas in the gas-phase synthesis of Carbon Nanostructures and the present plasma technologies for industrial production purposes. It enumerates the advantages and disadvantages with respect to concurrent technologies commonly employed nowadays. Finally, some Carbon Nanostructures produced in our laboratory will serve as examples of the plasma processes potential.
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Carbon Nanostructures production by gas-phase plasma processes at atmospheric pressure
Journal of Physics D: Applied Physics, 2007Co-Authors: José Gonzalez-aguilar, Maryline Moreno, Laurent FulcheriAbstract:REVIEW ARTICLE : Carbon Nanostructures have received much attention for a wide range of applications. This paper reviews the historical role of plasmas in the gas-phase synthesis of Carbon Nanostructures and the present plasma technologies for industrial production purposes. It enumerates the advantages and disadvantages with respect to concurrent technologies commonly employed nowadays. Finally, some Carbon Nanostructures produced in our laboratory will serve as examples of the plasma processes potential.
Maryline Moreno - One of the best experts on this subject based on the ideXlab platform.
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Carbon Nanostructures production by gas-phase plasma processes at atmospheric pressure
Journal of Physics D: Applied Physics, 2007Co-Authors: José Gonzalez-aguilar, Maryline Moreno, Laurent FulcheriAbstract:Carbon Nanostructures have received much attention for a wide range of applications. This paper reviews the historical role of plasmas in the gas-phase synthesis of Carbon Nanostructures and the present plasma technologies for industrial production purposes. It enumerates the advantages and disadvantages with respect to concurrent technologies commonly employed nowadays. Finally, some Carbon Nanostructures produced in our laboratory will serve as examples of the plasma processes potential.
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Carbon Nanostructures production by gas-phase plasma processes at atmospheric pressure
Journal of Physics D: Applied Physics, 2007Co-Authors: José Gonzalez-aguilar, Maryline Moreno, Laurent FulcheriAbstract:REVIEW ARTICLE : Carbon Nanostructures have received much attention for a wide range of applications. This paper reviews the historical role of plasmas in the gas-phase synthesis of Carbon Nanostructures and the present plasma technologies for industrial production purposes. It enumerates the advantages and disadvantages with respect to concurrent technologies commonly employed nowadays. Finally, some Carbon Nanostructures produced in our laboratory will serve as examples of the plasma processes potential.
Chao Wang - One of the best experts on this subject based on the ideXlab platform.
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overview of Carbon Nanostructures and nanocomposites for electromagnetic wave shielding
Carbon, 2018Co-Authors: Vignesh Murugadoss, Zhenfeng He, Qian Shao, Jie Kong, Yanjun Chen, Chao Wang, Subramania AngaiahAbstract:Abstract Based on the contributions of Carbon Nanostructures and their composited species, great advances in electromagnetic wave interference shielding have been achieved. In this article, recent progress in electromagnetic wave shielding enabled by the synergism of Carbon Nanostructures and their corresponding composites is discussed encompassing the factors of microstructural defects, filler concentration, filler alignment, filler inherent conductivity and the surrounding temperature. Carbon Nanostructures and their composites would energize the advanced electromagnetic wave shielding because of their light weight, high corrosion resistance, excellent thermal, mechanical, and electrical properties, broad absorption frequency bandwidth and cost-effectiveness. In this context of identifying suitable Carbon composites that can enhance electromagnetic wave absorption. This review provides updated electromagnetic wave shielding knowledge of Carbon Nanostructures and their composites as well as their prospects and challenges.