TY - JOUR
T1 - A general method for the large-scale synthesis of uniform ultrathin metal sulphide nanocrystals
AU - Du, Yaping
AU - Yin, Zongyou
AU - Zhu, Jixin
AU - Huang, Xiao
AU - Wu, Xue Jun
AU - Zeng, Zhiyuan
AU - Yan, Qingyu
AU - Zhang, Hua
PY - 2012
Y1 - 2012
N2 - Ultrathin metal sulphide nanomaterials exhibit many unique properties, and are thus attractive materials for numerous applications. However, the high-yield, large-scale synthesis of well-defined ultrathin metal sulphide nanostructures by a general and facile wet-chemical method is yet to be realized. Here we report a universal soft colloidal templating strategy for the synthesis of high-quality ultrathin metal sulphide nanocrystals, that is 3.2 nm-thick hexagonal CuS nanosheets, 1.8 nm-diameter hexagonal ZnS nanowires, 1.2 nm-diameter orthorhombic Bi 2 S 3 nanowires and 1.8 nm-diameter orthorhombic Sb 2 S 3 nanowires. As a proof of concept, the ultrathin CuS nanosheets are used to fabricate an electrode for a lithium-ion battery, which exhibits a large capacity and good cycling stability, even after 360 cycles. Furthermore, high-yield, gram-scale production of these ultrathin metal sulphide nanomaterials has been achieved (∼100%, without size-sorting process). Our method could be broadly applicable for the high-yield production of novel ultrathin nanostructures with great promise for various applications.
AB - Ultrathin metal sulphide nanomaterials exhibit many unique properties, and are thus attractive materials for numerous applications. However, the high-yield, large-scale synthesis of well-defined ultrathin metal sulphide nanostructures by a general and facile wet-chemical method is yet to be realized. Here we report a universal soft colloidal templating strategy for the synthesis of high-quality ultrathin metal sulphide nanocrystals, that is 3.2 nm-thick hexagonal CuS nanosheets, 1.8 nm-diameter hexagonal ZnS nanowires, 1.2 nm-diameter orthorhombic Bi 2 S 3 nanowires and 1.8 nm-diameter orthorhombic Sb 2 S 3 nanowires. As a proof of concept, the ultrathin CuS nanosheets are used to fabricate an electrode for a lithium-ion battery, which exhibits a large capacity and good cycling stability, even after 360 cycles. Furthermore, high-yield, gram-scale production of these ultrathin metal sulphide nanomaterials has been achieved (∼100%, without size-sorting process). Our method could be broadly applicable for the high-yield production of novel ultrathin nanostructures with great promise for various applications.
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U2 - 10.1038/ncomms2181
DO - 10.1038/ncomms2181
M3 - Article
AN - SCOPUS:84869446752
SN - 2041-1723
VL - 3
JO - Nature Communications
JF - Nature Communications
M1 - 1177
ER -