PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Węgle aktywne jako materiał elektrodowy dla kondensatorów elektrochemicznych

Identyfikatory
Warianty tytułu
EN
Active carbons as electrode material for electrochemical capacitors
Języki publikacji
PL
Abstrakty
EN
Electrochemical capacitors (also known as supercapacitors, ultracapacitors or electric double-layer capacitors) have been extensively investigated at a number of research centres in the world. The main reason of this interest is the possibility of their use as an alternative or complement to other electric energy storage or generation devices, e.g. batteries or fuel cells as well as their potential applications in many fields including surge-power delivery devices for electric vehicles, backup-power storage for calculators, starting power for fuel cells, etc. [1]. Research concerning electrochemical capacitors is presently divided into two main areas: (a) the redox supercapacitors (also called pseudocapacitors) and (b) the electrochemical double layer capacitors (EDLC) [2]. Development of electrochemical capacitors is connected with a search of optimal electrode materials able to a high, efficient accumulating of electrical energy, high dynamic of charge exchange with a simultaneous long durability [3]. The most widely used materials for electrochemical capacitors are active carbons. This is due to their unique physico-chemical properties such as: high electrical and thermal conductivity, low density, high corrosion resistance, well developed surface area, controlled porosity as well as availability and relatively low cost [2, 4]. This paper presents the review of literature on the influence of the physico-chemical properties of active carbons on their capacitance parameters. Much attention has been paid to the redox supercapacitors.
Rocznik
Strony
461--476
Opis fizyczny
bibliogr. 68 poz.
Twórcy
autor
autor
  • Uniwersytet im. Adama Mickiewicza w Poznaniu, Wydział Chemii, Zakład Chemii i Technologii Węgla, ul. Grunwaldzka 6, 60-780 Poznań
Bibliografia
  • [1] R. Kotz, M. Carlen, Electrochim. Acta, 2000, 45, 2483.
  • [2] A.G. Pandolf, A.F. Hollenkamp, J. Power Sources, 2006, 157, 11.
  • [3] E. Frąckowiak, F. Beguin, Carbon, 2001, 39, 937.
  • [4] T.J. Bandosz, C.O. Ania, [w:] T.J. Bandosz, Activated Carbon Surfaces in Environmental Remediation, Elsevier Ltd. 2006, s. 159-230.
  • [5] B.E. Conway, Electrochemical Supercapacitors: scientific fundamentals and technological applications, Kluwer Academic/Plenum Publishers, New York 1999.
  • [6] E. Raymundo-Pinero, F. Beguin, [w:] T.J. Bandosz, Activated Carbon Surfaces in Environmental Remediation, Elsevier Ltd. 2006, s. 293-344.
  • [7] K. Hryniewicz, Elektronika Praktyczna, 2005, 8, 48.
  • [8] A. Balducci, U. Bardi, S. Caporali, M. Mastragostino, F. Soave, Electrochem. Commun., 2006, 6, 556.
  • [9] T. Sato, G. Masuda, K. Talagi, Electrochim. Acta, 2004, 49, 3603.
  • [10] A. Lewandowski, M. Galiński, J. Phys. Chem. Solids, 2004, 65, 281.
  • [11] A. Lewandowski, M. Galiński, [w:] I.V. Barsukov, C.S. Johnson, J.E. Doninger, V.Z. Barsukov, New Carbon Based Materials for Electrochemical Energy Storage Systems: Batteries, Supercapacitors and Fuel Cells, Springer 2006, s. 73-83.
  • [12] G. Gryglewicz, J. Machnikowski, E. Lorenc-Grabowska, G. Lota, E. Frąckowiak, Electrochim. Acta, 2005, 50, 1197.
  • [13] L. Eliad, G. Saletra, A. Soffer, D. Aurbach, J. Phys. Chem. B, 2001, 105, 6880.
  • [14] O. Barbieri, M. Hahn, A. Herzog, R. Kotz, Carbon, 2005, 43, 1303.
  • [15] C.T. Hsieh, H. Teng, Carbon, 2002, 40, 667.
  • [16] T. Morimoto, K. Hiratsuka, Y. Sanada, K. Kurihara, J. Power Sources, 1996, 60, 239.
  • [17] P. Azai L. Duclaux, P. Florian, D. Massiot, M.A. Lillo-Rodenas, A. Linares-Solano, J.P. Peres, C. Jehoulet, F. Beguin, J. Power Sources, 2007, 171, 1046.
  • [18] B. Fang, Y.Z. Wei, K. Suzuki, M. Kumagai, Electrochim. Acta, 2005, 50, 3616.
  • [19] E. Frąckowiak, F. Beguin, Carbon, 2002, 40, 1775.
  • [20] E. Frąckowiak, K. Jurewicz, S. Delpeux, F. Beguin, J. Power Sources, 2001, 97-98, 822.
  • [21] K. Jurewicz, C. Vix-Guterl, E. Frackowiak, Saadallah, M. Reda, J. Parmentier, J. Patarin, F. Beguin, J. Phys. Chem. Solids, 2004, 65, 287.
  • [22] T. Kyotani, Z. Ma, A. Tomita, Carbon 2003, 41, 1451.
  • [23] A.B. Fuertes, G. Lota, T.A. Centeno, E. Frąckowiak, Electrochim. Acta, 2005, 50, 2799.
  • [24] M. Sevilla, S. Alvarez, T.A. Centeno, A.B. Fuertes, F. Stoeckli, Electrochim. Acta, 2007, 52, 3207.
  • [25] J. Górka, A. Zawislak, J. Choma, M. Jaroniec, Carbon, 2008, 46, 1159.
  • [26] S. Biniak, Praca habilitacyjna, Wydawnictwo Uniwersytetu Mikołaja Kopernika, Toruń 2001.
  • [28] M.J. Bleda-Martinez, J.A. Macia-Agulloa, D. Lozano-Castello, E. Morallon, D. Cazorla-Amoro, A. Linares-Solano, Carbon, 2005, 43, 2677.
  • [29] M.J. Bleda-Martinez, D. Lozano-Castello, E. Morallon, D. Cazorla-Amoro, A. Linares-Solano, Carbon, 2006, 44, 2642.
  • [30] Y.R. Nian, H. Teng, J. Electroanal. Chem., 2003, 540, 119.
  • [31] V. Ruiz, C. Blanco, E. Raymundo-Pinero, V. Khomenko, F. Beguin, R. Santamaria, Electrochim. Acta, 2007, 52, 4969.
  • [32] K. Jurewicz, K. Babeł, A. Ziółkowski, H. Wachowska, Electrochim. Acta, 2003, 48, 1491.
  • [33] R. Pietrzak, H. Wachowska, P. Nowicki, K. Babeł, Fuel Process. Technol., 2007, 88, 409.
  • [34] K. Jurewicz, K. Babeł, A. Ziółkowski, H. Wachowska, M. Kozłowski, Fuel Process. Technol., 2002, 77-78, 191
  • [35] K. Jurewicz, K. Babeł, R. Pietrzak, S. Delpeux, H. Wachowska, Carbon, 2006, 44, 2368.
  • [36] K. Jurewicz, R. Pietrzak, H. Wachowska, P. Nowicki, K. Babeł, Extended Abstracts of International Conference on Carbon 2006, Aberdeen (Szkocja), 16-21 VII 2006, materiały w wersji elektronicznej.
  • [37] K. Jurewicz, R. Pietrzak, P. Nowicki, H. Wachowska, Electrochim. Acta, 2008, 53, 5469.
  • [38] K.P. Wang, H. Teng, Carbon, 2006, 44, 3218.
  • [39] D. Hulicova, M. Kodama, H. Hatori, Chem. Mater., 2006, 18, 2318.
  • [40] G. Lota, B. Grzyb, H. Machnikowska, J. Machnikowski, E. Frąckowiak, Chem. Phys. Lett., 2005, 404, 53.
  • [41] D. Hulicova, J. Yamashita, Y. Soneda, H. Hatori, M. Kodama, Chem. Mater., 2005, 17, 1241.
  • [42] E. Frackowiak, G. Lota, J. Machnikowski, C. Vix-Guterl, F. Beguin, Electrochim. Acta, 2006, 51, 2209.
  • [43] G. Lota, K. Lota, E. Frąckowiak, Electrochem. Commun., 2007, 9, 1828.
  • [44] K. Jurewicz, E. Frąckowiak, A. Didion, C. Vix-Guterl, R. Gadiou, F. Beguin, Proceedings of International Conference on Carbon 2007, Seattle (USA), 15-20 VII 2007, materiały w wersji elektronicznej.
  • [45] J.O. Iroh, K. Levine, J. Power Sources, 2003, 117, 267.
  • [46] M. Mastragostino, C. Arbizzani, F. Soavi, J. Power Sources, 2001, 97-98, 812.
  • [47] M. Mastragostino, C. Arbizzani, F. Soavi, Solid State Ionics, 2002, 148, 493.
  • [48] V. Khomenko, E. Frackowiak, V. Barsukov, F. Béguin, [w:] I.V. Barsukov, C.S. Johnson, J.E. Doninger, V.Z. Barsukov, New Carbon Based Materials for Electrochemical Energy Storage Systems: Batteries, Supercapacitors and Fuel Cells, Springer 2006, s. 41-50.
  • [49] J.H. Park, J.M. Ko, O.O. Park, D.W. Kim, J. Power Sources, 2002, 105, 20.
  • [50] E. Frackowiak, V. Khomenko, K. Jurewicz, K. Lota, F. Beguin, J. Power Sources, 2006, 153, 413.
  • [51] K. Mondal, K. Barai, N. Munichandraiah, Electrochim. Acta, 2007, 57, 3258.
  • [52] X. Yang, Y. Wang, H. Xiong, Y. Xia, Electrochim. Acta, 2007, 53, 752.
  • [53] W. Sugimoto, K. Yokoshima, Y. Murakami, Y. Takasu, Electrochim. Acta, 2006, 52, 1742.
  • [54] E. Machefaux, T. Brousse, D. Belanger, D. Guyomard, J. Power Sources, 2007, 165, 651.
  • [55] J. Jiang, A. Kucernak, Electrochim. Acta, 2002, 47, 2381.
  • [56] J.W. Long, K.E. Swider, C.I. Merzbacher, D.R. Rolison, Langmuir, 1999, 15, 780.
  • [57] V. Khomenko, E. Raymundo-Pinero, F. Beguin, J. Power Sources, 2006, 153, 183.
  • [58] V. Khomenko, E. Raymundo-Pinero, F. Beguin, [w:] I.V. Barsukov, C.S. Johnson, J.E. Doninger, V.Z. Barsukov, New Carbon Based Materials for Electrochemical Energy Storage Systems: Batteries, Supercapacitors and Fuel Cells, Springer 2006, s. 33-40.
  • [59] V. Ganesh, Pitchumani, V. Lakshminarayanan, J. Power Sources, 2006, 158, 1523.
  • [60] J.H. Park, O.O. Park, J. Power Sources, 2002, 111, 185.
  • [61] L. Wang, T. Morishita, M. Toyoda, M. Inagaki, Electrochim. Acta, 2007, 53, 882.
  • [62] T. Brousse, P.L. Tabern, O. Crosnier, R. Dugas, P. Guillemet, Y. Scudeller, Y. Zhou, F. Favier, D. Belanger, P. Simon, J. Power Sources, 2007, 173, 633.
  • [63] C. Arbizzani, M. Mastragostino, F. Soavi, J. Power Sources, 2001, 100, 164.
  • [64] Nomoto, H. Nakata, K. Yoshioka, A. Yoshida, H. Yoneda, J. Power Sources, 2001, 97-98, 807.
  • [65] G. Pede, A. Iacobazzi, Passerini, A. Bobbio, G. Botto, J. Power Sources, 2004, 125, 280.
  • [66] J.N. Marie-Francoise, H. Gualous, R. Outbib, A. Berthon, J. Power Sources, 2005, 143, 275.
  • [67] A. Chu, P. Braatz, J. Power Sources, 2002, 112, 236.
  • [68] C. Ashtiani, R. Wright, G. Hunt, J. Power Sources, 2006, 154, 561.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUS5-0017-0054
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.