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      The synergistic effect of the combined thin multi-walled carbon nanotubes and reduced graphene oxides on photothermally actuated shape memory polyurethane composites.

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          Abstract

          We evaluated the synergistic effect of the hybrid-type nanocarbon, consisting of 1D thin-walled carbon nanotubes (TWNTs) and 2D reduced graphene oxide (RGO), on the shape memory performance of hyperbranched polyurethane composites. The shape recovery of the resulting composites was activated via a photothermal process using a near-infrared laser. The best laser-induced shape recovery performance was achieved for the composites with a 7/3 of TWNT/RGO ratio and a 1wt.% of nanocarbon content. Such result can be explained by good dispersion of TWNTs and RGO in the hyperbranched polymer as well as three-dimensionally enhanced interconnection between carbon nanotubes and graphenes. The optically active TWNTs with a high optical absorption section exhibited high ability of transferring laser-induced thermal energy to polymer matrix whereas RGO provided a high mechanical property to polymer matrix. The tensile modulus and electrical conductivity of the composites also showed a similar dependence on the TWNT/RGO composition ratio as the photothermal shape recovery. Our study demonstrated an effective conversion from light, thermal to mechanical work by irradiating shape memory polymer composite containing hybrid-type fillers using a near-infrared laser.

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          Author and article information

          Journal
          J Colloid Interface Sci
          Journal of colloid and interface science
          Elsevier BV
          1095-7103
          0021-9797
          Oct 15 2014
          : 432
          Affiliations
          [1 ] Department of Organic and Nano System Engineering, Konkuk University, Seoul 143-701, Republic of Korea.
          [2 ] School of Polymer Science and Engineering, Chonnam National University, Gwangju 500-757, Republic of Korea. Electronic address: yak@jnu.ac.kr.
          [3 ] Department of Organic and Nano System Engineering, Konkuk University, Seoul 143-701, Republic of Korea. Electronic address: jwcho@konkuk.ac.kr.
          Article
          S0021-9797(14)00489-5
          10.1016/j.jcis.2014.06.060
          25086386
          0e66e08e-e27f-4d7e-8e60-aeb174fdd285
          History

          Actuator,Carbon nanotube,Graphene,Photothermal,Shape memory polymer

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