Min Kyungchan, Choi Kyoung Soon, Jeon Wook Jin, Lee Dong Kyu, Oh Sein, Lee Jouhahn, Choi Jae-Young, Yu Hak Ki
Dept. of Materials Science and Engineering & Dept. of Energy Systems Research, Ajou University Suwon 16499 Korea
The Advanced Nano Surface Research Group, Korea Basic Science Institute Daejeon 34144 Korea.
RSC Adv. 2018 Apr 6;8(23):12927-12932. doi: 10.1039/c8ra01510d. eCollection 2018 Apr 3.
Herein, we fabricated a super-hydrophobic SERS substrate using Sn-doped indium oxide (Indium-tin-oxide: ITO) nano-branches as a template. ITO nano-branches with tens of nanometer diameter are first fabricated through the vapor-liquid-solid (VLS) growth to provide roughness of the substrate. 10 nm thickness of Ag thin film was deposited and then treated with the post-annealing process to create numerous air-pockets in the Ag film, forming a hierarchical Ag nanostructures. The resulting substrate obtained Cassie's wetting property with a water contact angle of 151°. Compared to the normal hydrophobic Ag nanoparticle substrate, increase of about 4.25-fold higher SERS signal was obtained for 7 μL of rhodamine 6G aqueous solutions.
在此,我们以掺锡氧化铟(氧化铟锡:ITO)纳米分支为模板制备了一种超疏水表面增强拉曼散射(SERS)基底。首先通过气-液-固(VLS)生长法制备出直径为几十纳米的ITO纳米分支,以提供基底的粗糙度。然后沉积10nm厚的银薄膜,并进行退火后处理,在银膜中形成大量气穴,从而形成分级银纳米结构。所得基底具有Cassie浸润性,水接触角为151°。与普通疏水银纳米颗粒基底相比,对于7μL罗丹明6G水溶液,SERS信号提高了约4.25倍。