Nano Hybrid Technology Research Center, Creative and Fundamental Research Division, Korea Electrotechnology Research Institute (KERI), Changwon, 51543, South Korea.
Department of Electro-Functionality Material Engineering, University of Science and Technology (UST), Changwon, 51543, South Korea.
Sci Rep. 2017 Jul 10;7(1):4931. doi: 10.1038/s41598-017-05347-4.
Most synthetic processes of metallic nanostructures were assisted by organic/inorganic or polymeric materials to control their shapes to one-dimension or two-dimension. However, these additives have to be removed after synthesis of metal nanostructures for applications. Here we report a straightforward method for the low-temperature and additive-free synthesis of nanobelt-like silver nanostructures templated by nanocarbon (NC) materials via bio-inspired shape control by introducing supramolecular 2-ureido-4[1H]pyrimidinone (UPy) groups into the NC surface. The growth of the Ag nanobelt structure was found to be induced by these UPy groups through observation of the selective formation of Ag nanobelts on UPy-modified carbon nanotubes and graphene surfaces. The synthesized NC/Ag nanobelt hybrid materials were subsequently used to fabricate the highly conductive fibres (>1000S/cm) that can function as a conformable electrode and highly tolerant strain sensor, as well as a highly conductive and robust paper (>10000S/cm after thermal treatment).
大多数金属纳米结构的合成过程都需要有机/无机或聚合物材料的辅助,以控制其形状为一维或二维。然而,这些添加剂在合成金属纳米结构后必须被去除,以用于应用。在这里,我们报告了一种通过在 NC 表面引入超分子 2-脒基-4[1H]嘧啶酮(UPy)基团,通过生物启发的形状控制,在低温和无添加剂条件下,由纳米碳(NC)材料模板合成纳米带状银纳米结构的简单方法。通过观察 UPy 修饰的碳纳米管和石墨烯表面上 Ag 纳米带的选择性形成,发现 Ag 纳米带结构的生长是由这些 UPy 基团诱导的。所合成的 NC/Ag 纳米带混合材料随后被用于制造高导电性纤维(>1000S/cm),其可以用作可弯曲的电极和高度耐受应变的传感器,以及高导电性和坚固的纸张(热处理后>10000S/cm)。