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      Nanotechnology and Nanomaterials for Improving Neural Interfaces

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          Is Open Access

          The rise of graphene

          Graphene is a rapidly rising star on the horizon of materials science and condensed matter physics. This strictly two-dimensional material exhibits exceptionally high crystal and electronic quality and, despite its short history, has already revealed a cornucopia of new physics and potential applications, which are briefly discussed here. Whereas one can be certain of the realness of applications only when commercial products appear, graphene no longer requires any further proof of its importance in terms of fundamental physics. Owing to its unusual electronic spectrum, graphene has led to the emergence of a new paradigm of 'relativistic' condensed matter physics, where quantum relativistic phenomena, some of which are unobservable in high energy physics, can now be mimicked and tested in table-top experiments. More generally, graphene represents a conceptually new class of materials that are only one atom thick and, on this basis, offers new inroads into low-dimensional physics that has never ceased to surprise and continues to provide a fertile ground for applications.
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            30 inch Roll-Based Production of High-Quality Graphene Films for Flexible Transparent Electrodes

            We report that 30-inch scale multiple roll-to-roll transfer and wet chemical doping considerably enhance the electrical properties of the graphene films grown on roll-type Cu substrates by chemical vapor deposition. The resulting graphene films shows a sheet resistance as low as ~30 Ohm/sq at ~90 % transparency which is superior to commercial transparent electrodes such as indium tin oxides (ITO). The monolayer of graphene shows sheet resistances as low as ~125 Ohm/sq with 97.4% optical transmittance and half-integer quantum Hall effect, indicating the high-quality of these graphene films. As a practical application, we also fabricated a touch screen panel device based on the graphene transparent electrodes, showing extraordinary mechanical and electrical performances.
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              Strength and Breaking Mechanism of Multiwalled Carbon Nanotubes Under Tensile Load

              M Yu (2000)
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                Author and article information

                Journal
                Advanced Functional Materials
                Adv. Funct. Mater.
                Wiley
                1616301X
                March 2018
                March 2018
                July 25 2017
                : 28
                : 12
                : 1700905
                Affiliations
                [1 ]Department of Chemical Engineering; Northeastern University; Boston Massachusetts USA
                [2 ]Wenzhou Institute of Biomaterials and Engineering; Wenzhou Medical University; Wenzhou Zhejiang China
                Article
                10.1002/adfm.201700905
                b6de15aa-d9c0-49ac-a6a6-21d45b3666bd
                © 2017

                http://doi.wiley.com/10.1002/tdm_license_1.1

                http://onlinelibrary.wiley.com/termsAndConditions#vor

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