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Synthetic Polymer-based Membrane for Lithium Ion

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Synthetic Polymer-based Membrane for Lithium Ion ( synthetic-polymer-based-membrane-lithium-ion )

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SFRH/BPD/117838/2016 (JNP). and SFRH/BPD/112547/2015 (C.M.C). Financial support from the (MINECO) through UE) (including the Government Industry and Education Departments under HAZITEK and PIBA (PIBA-2018-06) programs, is also acknowledged. References Spanish Ministry of Economy and the project FEDER financial MAT2016-76039-C4-3-R [1] S. Rajendran, M. Naushad, K. Raju, R. Boukherroub, Emerging Nanostructured Materials for Energy and Environmental Science, Springer International Publishing2019. [2] J.P. Holdren, Energy and Sustainability, Science, 315 (2007) 737-737. [3] J. Gubbi, R. Buyya, S. Marusic, M. Palaniswami, Internet of Things (IoT): A vision, architectural elements, and future directions, Future Generation Computer Systems, 29 (2013) 1645-1660. [4] B. Scrosati, J. Hassoun, Y.-K. Sun, Lithium-ion batteries. A look into the future, Energy & Environmental Science, 4 (2011) 3287-3295. [5] M.M. Thackeray, C. Wolverton, E.D. Isaacs, Electrical energy storage for transportation—approaching the limits of, and going beyond, lithium-ion batteries, Energy & Environmental Science, 5 (2012) 7854-7863. [6] J.-M. Tarascon, Key challenges in future Li-battery research, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 368 (2010) 3227-3241. [7] J.M. Tarascon, M. Armand, Issues and challenges facing rechargeable lithium batteries, Nature, 414 (2001) 359-367. [8] W.A. Van Schalkwijk, B. Scrosati, Advances in Lithium-Ion Batteries, Kluwer Academic/Plenum Publishers2002. [9] M. Wakihara, O. Yamamoto, Lithium Ion Batteries: Fundamentals and Performance, John Wiley & Sons2008. [10] K.E. Aifantis, S.A. Hackney, R.V. Kumar, High Energy Density Lithium Batteries: Materials, Engineering, Applications, John Wiley & Sons2010. Competitiveness (AEI/FEDER, support) and from the Basque the ELKARTEK, 38

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