光谱学与光谱分析 |
|
|
|
|
|
Fluorescence Spectra and Fluorescence Quantum Yield of Sulfosalicylic Acid |
WEI Yong-ju, LI Na, QIN Shen-jun |
College of Chemistry, Hebei Normal University, Shijiazhuang 050016, China |
|
|
Abstract Fluorescence spectra and fluorescence quantum yield of sulfosalicylic acid (SSA) have been studied. Under the condition of pH<2, SSA has no fluorescence. With the increase in pH value, fluorescence intensity of SSA increases. In the range of pH 5-10.5, SSA gives a strong and steady fluorescence with a maximum emission wavelength at 402 nm and excitation wavelengths at 212, 238 and 297 nm, respectively. In strong alkaline solutions with pH>13, SSA exists as another fluorescence species with a maximum excitation wavelength at 261 nm and a maximum emission wavelength at 390 nm. The excitation spectrum of SSA changes when its concentration is relatively higher, but the emission spectrum remains unchanged. There is an excellent linear relationship between fluorescence intensity and the concentration of SSA under neutral condition. The linear range is 5-250 ng·mL-1, and the detection limit is 5 ng·mL-1. Using quinine bisulphate as a reference, fluorescence quantum yields of SSA at different wavelengths were measured. At the maximum excitation wavelength 297 nm, fluorescence quantum yield of SSA is 0.54.
|
Received: 2002-07-08
Accepted: 2002-11-18
|
|
Corresponding Authors:
WEI Yong-ju
|
|
Cite this article: |
WEI Yong-ju,LI Na,QIN Shen-jun. Fluorescence Spectra and Fluorescence Quantum Yield of Sulfosalicylic Acid [J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2004, 24(06): 647-651.
|
|
|
|
URL: |
http://www.gpxygpfx.com/EN/Y2004/V24/I06/647 |
[1] 黄汉国,高建文. Bunseki Kagaku(分析化学(日)),1989,38: 361. [2] YIN Hong-zong, CUI Yan, ZHU Gui-yun et al(尹洪宗,崔 彦,朱贵云等). Spectroscopy and Spectral Analysis(光谱学与光谱分析),1999,19(3): 460. [3] LI Shao-xia, ZHU Ya-xian, XU Yong-xin et al(李少霞,朱亚先,许永新等). Journal of Xiamen University (Natural Science)(厦门大学学报·自然科学版),1997,36(4): 604. [4] Parker C A, Rees W T. Analyst, 1960, 85: 587. [5] CHEN Guo-zhen, HUANG Xian-zhi, ZHENG Zhu-zi et al(陈国珍,黄贤智,郑朱梓等). Fluorescence Analytical Methods(荧光分析法·第二版). Beijing: Science Press(北京: 科学出版社),1990. 15.
|
[1] |
ZHU Xiang1, 2*, YUAN Chao-sheng1, CHENG Xue-rui1, LI Tao1, ZHOU Song1, ZHANG Xin1, DONG Xing-bang1, LIANG Yong-fu2, WANG Zheng2. Study on Performances of Transmitting Pressure and Measuring Pressure of [C4mim][BF4] by Using Spectroscopic Techniques[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(06): 1674-1678. |
[2] |
WANG Yi-ya1, WANG Yi-min1*, GAO Xin-hua2. The Evaluation of Literature and Its Metrological Statistics of X-Ray Fluorescence Spectrometry Analysis in China[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(05): 1329-1338. |
[3] |
YAN Peng-cheng1, 2, ZHANG Chao-yin2*, SUN Quan-sheng2, SHANG Song-hang2, YIN Ni-ni1, ZHANG Xiao-fei2. LIF Technology and ELM Algorithm Power Transformer Fault Diagnosis Research[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(05): 1459-1464. |
[4] |
ZHANG Yu-yang, CHEN Mei-hua*, YE Shuang, ZHENG Jin-yu. Research of Geographical Origin of Sapphire Based on Three-Dimensional Fluorescence Spectroscopy: A Case Study in Sri Lanka and Laos Sapphires[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(05): 1508-1513. |
[5] |
JIANG Xiao-yu1, 2, LI Fu-sheng2*, WANG Qing-ya1, 2, LUO Jie3, HAO Jun1, 2, XU Mu-qiang1, 2. Determination of Lead and Arsenic in Soil Samples by X Fluorescence Spectrum Combined With CARS Variables Screening Method[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(05): 1535-1540. |
[6] |
ZHANG Rui1, 2, 3, TANG Xin-yi1, 2, ZHU Wen-qing1, 2, 3. Research on Shortwave Infrared Multispectral Fluorescence Imaging of Mouse Vein[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(04): 1109-1116. |
[7] |
NI Zi-yue1, CHENG Da-wei2, LIU Ming-bo2, YUE Yuan-bo2, HU Xue-qiang2, CHEN Yu2, LI Xiao-jia1, 2*. The Detection of Mercury in Solutions After Thermal Desorption-
Enrichment by Energy Dispersive X-Ray Fluorescence[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(04): 1117-1121. |
[8] |
ZHAO Yue2, MA Feng-xiang2, WANG An-jing1*, LI Da-cheng1, SONG Yu-mei2, WU Jun1, CUI Fang-xiao1, LI Yang-yu1, CAO Zhi-cheng1. Research on Electric Breakdown Fault Diagnosis Model of Transformer Insulated Oil Based on Fluorescent Double-Color Ratio[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(04): 1134-1138. |
[9] |
CUI Ming-fang1, ZHU Jian-hua2*, HU Rui1, CHEN Shang-qian3. Research on the Chemical Composition and Process Feature of Ancient Porcelain Produced in Dongmendu Kiln[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(03): 726-731. |
[10] |
WANG Ai-chen1, 4, GAO Bin-jie1, ZHAO Chun-jiang1, 2, XU Yi-fei3, 4, WANG Miao-lin1, YAN Shu-gang1, LI Lin1, WEI Xin-hua1*. Detecting Green Plants Based on Fluorescence Spectroscopy[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(03): 788-794. |
[11] |
LI Ying-ying1, ZHANG Zhi-qing1*, WU Xiao-hong2, Andy Hsitien Shen1*. Photoluminescence in Indonesian Fossil Resins[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(03): 814-820. |
[12] |
YANG Xin1, 2, WU Zhi-hang3, YE Yin1, 2*, CHEN Xiao-fang1, 2, YUAN Zi-ran1, 2, WANG Jing1, 2. Parallel Factor Analysis of Fluorescence Excitation Emission Matrix Spectroscopy of DOM in Waters of Agricultural Watershed of Dianbu River[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(03): 978-983. |
[13] |
HUANG Yu-ying1, 2, 3, ZHONG Xin-yu2, 3. Progress of Synchrotron Radiation X-Ray Fluorescence Spectrometry in China and Overseas[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(02): 333-340. |
[14] |
YANG Jiong1, 2, QIU Zhi-li1, 4*, SUN Bo3, GU Xian-zi5, ZHANG Yue-feng1, GAO Ming-kui3, BAI Dong-zhou1, CHEN Ming-jia1. Nondestructive Testing and Origin Traceability of Serpentine Jade From Dawenkou Culture Based on p-FTIR and p-XRF[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(02): 446-453. |
[15] |
LI Yuan1, 2, SHI Yao2*, LI Shao-yuan1*, HE Ming-xing3, ZHANG Chen-mu2, LI Qiang2, LI Hui-quan2, 4. Accurate Quantitative Analysis of Valuable Components in Zinc Leaching Residue Based on XRF and RBF Neural Network[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(02): 490-497. |
|
|
|
|