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      Extrusion Foaming of Lightweight Polystyrene Composite Foams with Controllable Cellular Structure for Sound Absorption Application

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          Abstract

          Polymer foams are promising for sound absorption applications. In order to process an industrial product, a series of polystyrene (PS) composite foams were prepared by continuous extrusion foaming assisted by supercritical CO 2. Because the cell size and cell density were the key to determine the sound absorption coefficient at normal incidence, the bio-resource lignin was employed for the first time to control the cellular structure on basis of hetero-nucleation effect. The sound absorption range of the PS/lignin composite foams was corresponding to the cellular structure and lignin content. As a result, the maximum sound absorption coefficient at normal incidence was higher than 0.90. For a comparison, multiwall carbon nanotube (MWCNT) and micro graphite (mGr) particles were also used as the nucleation agent during the foaming process, respectively, which were more effective on the hetero-nucleation effect. The mechanical property and thermal stability of various foams were measured as well. Lignin showed a fire retardant effect in PS composite foam.

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          Most cited references33

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          Carbon nanosheet frameworks derived from peat moss as high performance sodium ion battery anodes.

          We demonstrate that peat moss, a wild plant that covers 3% of the earth's surface, serves as an ideal precursor to create sodium ion battery (NIB) anodes with some of the most attractive electrochemical properties ever reported for carbonaceous materials. By inheriting the unique cellular structure of peat moss leaves, the resultant materials are composed of three-dimensional macroporous interconnected networks of carbon nanosheets (as thin as 60 nm). The peat moss tissue is highly cross-linked, being rich in lignin and hemicellulose, suppressing the nucleation of equilibrium graphite even at 1100 °C. Rather, the carbons form highly ordered pseudographitic arrays with substantially larger intergraphene spacing (0.388 nm) than graphite (c/2 = 0.3354 nm). XRD analysis demonstrates that this allows for significant Na intercalation to occur even below 0.2 V vs Na/Na(+). By also incorporating a mild (300 °C) air activation step, we introduce hierarchical micro- and mesoporosity that tremendously improves the high rate performance through facile electrolyte access and further reduced Na ion diffusion distances. The optimized structures (carbonization at 1100 °C + activation) result in a stable cycling capacity of 298 mAh g(-1) (after 10 cycles, 50 mA g(-1)), with ∼150 mAh g(-1) of charge accumulating between 0.1 and 0.001 V with negligible voltage hysteresis in that region, nearly 100% cycling Coulombic efficiency, and superb cycling retention and high rate capacity (255 mAh g(-1) at the 210th cycle, stable capacity of 203 mAh g(-1) at 500 mA g(-1)).
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            Sensors and actuators based on carbon nanotubes and their composites: A review

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                Author and article information

                Journal
                Polymers (Basel)
                Polymers (Basel)
                polymers
                Polymers
                MDPI
                2073-4360
                09 January 2019
                January 2019
                : 11
                : 1
                : 106
                Affiliations
                [1 ]College of Materials Science and Engineering, Zhejiang University of Technology, Hangzhou 310014, China; 201101391305@ 123456zjut.edu.cn (Y.F.); 2111625018@ 123456zjut.edu.cn (W.F.); zhongmq@ 123456zjut.edu.cn (M.Z.); fanping@ 123456zjut.edu.cn (P.F.); yangjt@ 123456zjut.edu.cn (J.Y.); feizd@ 123456zjut.edu.cn (Z.F.)
                [2 ]College of Mechanical Engineering, Zhejiang University of Technology, Hangzhou 310014, China
                Author notes
                Author information
                https://orcid.org/0000-0001-5908-3320
                Article
                polymers-11-00106
                10.3390/polym11010106
                6401839
                8fbfa3b4-c1b0-4bd3-bf75-70c705198172
                © 2019 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 08 December 2018
                : 04 January 2019
                Categories
                Article

                extrusion foaming,super critical co2,lignin,sound absorption coefficient,mechanical property

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