TY - JOUR
T1 - Fabrication of transparent, tough, and conductive shape-memory polyurethane films by incorporating a small amount of high-quality graphene
AU - Jung, Yong Chae
AU - Kim, Jin Hee
AU - Hayashi, Takuya
AU - Kim, Yoong Ahm
AU - Endo, Morinobu
AU - Terrones, Mauricio
AU - Dresselhaus, Mildred S.
PY - 2012/4/23
Y1 - 2012/4/23
N2 - We report a mechanically strong, electrically and thermally conductive, and optically transparent shape-memory polyurethane composite which was fabricated by introducing a small amount (0.1 wt%) of high-quality graphene as a filler. Geometrically large (â4.6 Îm 2), but highly crystallized few-layer graphenes, verified by Raman spectroscopy and transmission electron microscopy, were prepared by the sonication of expandable graphite in an organic solvent. Oxygen- containing functional groups at the edge plane of graphene were crucial for an effective stress transfer from the graphene to polyurethane. Homogeneously dispersed few-layered graphene enabled polyurethane to have a high shape recovery force of 1.8 MPa cm -3. Graphene, which is intrinsically stretchable up to 10%, will enable high-performance composites to be fabricated at relatively low cost and we thus envisage that such composites may replace carbon nanotubes for various applications in the near future.
AB - We report a mechanically strong, electrically and thermally conductive, and optically transparent shape-memory polyurethane composite which was fabricated by introducing a small amount (0.1 wt%) of high-quality graphene as a filler. Geometrically large (â4.6 Îm 2), but highly crystallized few-layer graphenes, verified by Raman spectroscopy and transmission electron microscopy, were prepared by the sonication of expandable graphite in an organic solvent. Oxygen- containing functional groups at the edge plane of graphene were crucial for an effective stress transfer from the graphene to polyurethane. Homogeneously dispersed few-layered graphene enabled polyurethane to have a high shape recovery force of 1.8 MPa cm -3. Graphene, which is intrinsically stretchable up to 10%, will enable high-performance composites to be fabricated at relatively low cost and we thus envisage that such composites may replace carbon nanotubes for various applications in the near future.
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U2 - 10.1002/marc.201100674
DO - 10.1002/marc.201100674
M3 - Article
C2 - 22328293
AN - SCOPUS:84859851240
SN - 1022-1336
VL - 33
SP - 628
EP - 634
JO - Macromolecular Rapid Communications
JF - Macromolecular Rapid Communications
IS - 8
ER -