作者单位
摘要
1 东北大学 冶金学院 多金属共生矿生态化冶金教育部重点实验室,沈阳 110819
2 东北大学 轧制技术及连轧自动化国家重点实验室,沈阳 110819
利用电沉积法制备了银基底,考察了焙烧温度对基底形貌和表面增强拉曼散射效应的影响。研究结果表明,制备的电沉积银基底呈主干及两侧分支组成的枝晶状,分支均具有高曲率的尖端,可以产生避雷针效应,增强基底的表面增强拉曼散射性能;对基底进行焙烧处理,在300 ℃时分支尖端开始消失并出现团聚现象,400 ℃时枝晶变得粗大,但有新的球状纳米颗粒生成,可以为表面增强拉曼散射提供新的“热点”。以罗丹明6G为探针分子,考察了制备的银基底在焙烧前后对其拉曼光谱信号的增强作用,发现增强效应随焙烧温度的增加而减小。基底未经焙烧处理时增强因子为1.62×105,当焙烧温度为400 ℃时,其增强因子仍可达到2.16×104,表明焙烧后的银基底仍具备较显著的表面增强拉曼散射效应。将制备的银基底用于1-乙基-3-甲基咪唑氯盐离子液体不同温度下的原位拉曼光谱检测,发现其拉曼光谱信号显著增强。
表面增强拉曼散射 银基底 拉曼光谱 罗丹明6G 增强因子 Surface enhanced Raman scattering Silver substrate Raman spectroscopy Rhodamine 6G Enhancement factor 
光子学报
2022, 51(2): 0229001
Author Affiliations
Abstract
1 School of Materials and Metallurgy, Northeastern University, Shenyang 110819, China
2 Engineering Research Center for Process Technology of Nonferrous Metallurgy, Ministry of Education, Shenyang 110819, China
We study ionic structure of KNO3–NaNO2 melts under air atmosphere by using Raman spectroscopy. Molar fraction of NO3- and NO2- is obtained and thermal stability of this kind of melts system is then analyzed. The results show that when the temperature is increased to a certain value, equilibrium between the decom-position of NO3- and the oxidation of NO2- exists in KNO3–NaNO2 melts. When temperature is higher than 644 K, the molar fraction of NO3- decreases a little with temperature increasing for the melts in which the initial fraction of KNO3 is 90 wt%, but for the melts in which the initial fraction of KNO3 is 10–80 wt%, the molar fraction of NO3- increases with temperature, and the increasing rate is slower for a higher initial frac-tion of KNO3. Molar fraction of NO3- increment increases linearly with initial fraction of NaNO2. The sample in which the initial fractions of NaNO2 are 11.3 and 14.5 wt% under air atmosphere shows the best thermal stability at 762 and 880 K, respectively.
300.6450 Spectroscopy, Raman 290.5860 Scattering, Raman 
Chinese Optics Letters
2014, 12(9): 093001

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