摘要(英) |
Carbon aerogel papers have been used in electrosorption as a capacitor to remove inorganic compounds in the aqueous solution. However, little of the studies discussed about the electrosorption of heavy metal ions in a solution by carbon aerogel. The characterization of carbon aerogel electrodes are analyzed by Accelerated Surface area and Porosimeter System (ASAP), Scanning Electron Microscopy (SEM), and Fourier Transform Infrared (FTIR). The surface area of the carbon aerogel paper is about 390 m2/g. Carbon aerogel are consisted of carbon fibers and the width of carbon fiber is about 6 μm. From the FTIR measurement, there are COOH- functional groups on the surface of the carbon aerogel. When the voltage was 1.2 V during the electrosorption and the initial concentration was 0.5 mM for PbCl2 and CuCl2 system, because the voltage is higher than the redox potential, there are some precipitates, such as orthorhombic crystals and polygonal crystals, formed on the negative electrodes. While applied voltage for different ionic radius of the same ionic charge, such as Pb2+, Cd2+, and Cu2+, the electrosorption efficiency increases with decreasing ionic radius. For the effect of ionic charge, the removal efficiency of Cr3+ is greater than that of Cu2+. The effect of applied voltage was examined by giving 0.4 V, 0.8 V, and 1.2 V in CrCl3 system, and the electrosorption efficiency increases with increasing applied voltage. Also, the removal efficiency increases with decreasing initial concentration. The conductivity of all the experiments are drops and the raise with the concentration of the heavy metal ions during the electrosorptive and the regeneration, except when the initial concentration was 1 mM, 2 mM, and the applied voltage of 0.4 V for Cr3+. |
參考文獻 |
1. Baizeng Fang and Leo Binder, “A modified activated carbon aerogel for high-energy storage in electric double layer capacitors”, Journal of Power Sources, 163, 616-622 (2006).
2. R. W. Pekala, J. C. Farmer, C. T. Alviso, T.D. Tran, S. T. Mayer, J. M. Miller, and B. Dunn, “Carbon Aerogel for Electrochemical Applications”, Journal of Non-Crystalline Solids, 225, 74-80 (1998).
3. K.-L. Yang, T.-Y. Ying, Sotira Yiacoumi, Costas Tsouris, and E. Steven Vittoratos, “Electrosorption of Ions from Aqueous Solutions by Carbon Aerogel: An Electrical Double-Layer Model”, Langmuir, 17, 1961-1969 (2001).
4. T.-Y. Ying, K.-L. Yang, Sotira Yiacoumi, and Costas Tsouris, “Electrosorption of Ions from Aqueous Solution by Nanostructured Carbon aerogel”, Journal of Colloid and Interface Science, 250, 18-27 (2002).
5. 柯以侃,「儀器分析」,文京圖書有限公司,601-634,1996。
6. RUSSELL L. MEADE 原著,陳俊勝 等翻譯,「基本電學」,文京圖書有限公司,162-174,1995。
7. Aerogel composite: http://www.aerogelcomposite.com/technology/technology.html
8. Marketech International Inc.: http://www.mkt-intl.com/aerogels/pages/carbon.html
9. X. Lu, O. Nilsson, J. Fricke, and R. W. Pekala, “Thermal and Electrical Conductivity of Monolithic Carbon Aerogels”, Journal of Applied Physics, 73(2), 581-584 (1993)
10. A. W. P. Fung, Z. H. Wang, K. Lu, M. S. Dresselhaus, and R. W. Pekala, “Characterization of Carbon Aerogels by Transport Measurements”, Journal of Materials Research, 8(8), 1875-1885 (1993).
11. R. W. Pekala, S. T. Mayer, J. F. Poco, and J. L. Kaschmitter, “Structure and Performance of Carbon Aerogel Electrodes”, Materials Research Society, 349, 79-84 (1994)
12. Marketech International:http://www.mkt-intl.com/index.html
13. S.-W. Hwang, H.-H. Jung, S.-H. Hyum, K.-H. Lee, and G.- T. Kim, “Capacitive Deionization Characteristics of Nanostructured Carbon Aerogel Electrodes”, The Electrochemical Society, Inc., 206th Meeting, 1459 (2004).
14. T. J. Welgemoed and C. F. Schutte, “Capacitive Deionization Technology: An Alternative Desalination Solution”, Desalination, 183, 327-340 (2005).
15. J. C. Farmer, D. V. Fix, G. V. Mack, R. W. Pekala, and J. F. Poco, “Capacitive Deionization of NH4ClO4 Solutions with Carbon Aerogel Electrodes”, Journal of Applied Electrochemistry, 26, 1007-1018 (1996).
16. Joseph C. Farmer, David V. Fix, Gregory V. Mack, Richard W. Pekala, and John F. Poco, “Capacitive Deionization of NaCl and NaNO3 Solutions with Carbon Aerogel Electrodes”, The Journal of The Electrochemical Society.,143, No. 1, 159-169 (1996).
17. Jyotsna Goel, K. Kadirvelu, C. Rajagopal, and V. K. Garg, “Cadmium (Ⅱ) Uptake from Aqueous Solution by Adsorption onto Carbon Aerogel Using a Response Surface Methodological Approach”, Industrial & Engineering Chemistry Research, 45, 6531-6537 (2006).
18. P. M. Parul, Mohan Nagarajan, Chitra Rajagopal, and B. S. Garg, “Removal of Chromium from Aqueous Solutions by Treatment with Carbon Aerogel Electrodes Using Response Surface Methodology”, Industrial & Engineering Chemistry Research , 44, 6549 – 6559 (2005).
19. A. K. Meena, G. K. Mishra, P. K. Rai, Chitra Rajagopal, and P. N. Nagar, “Removal of Heavy Metal Ions from Aqueous Solutions Using Carbon Aerogel as an Adsorbent”, Journal of Hazardous Materials B, 122, 161 – 170, (2005).
20. C. J. Gabelich, T. D. Tran, and I. H., “Electrosorption of Inorganic Salts from Aqueous Solution Using Carbon Aerogels”, Environmental Science & Technology, 36, 3010 – 3019, (2002).
21. 熊楚強、王月,「電化學」,新文京開發出版股份有限公司,2004。
22. 廖仲洲,「利用碳氣凝膠紙電吸附於二氯化銅水溶液現象之探討」,碩士論文,國立中央大學環境工程研究所,桃園,2006。
23. 中國大百科智慧藏:
http://203.72.198.245/web/Content.asp?ID=24874&Query= |