Optimized structure of nanoporous carbon-based double-layer capacitors

被引:137
作者
Eikerling, M [1 ]
Kornyshev, AA
Lust, E
机构
[1] Simon Fraser Univ, Dept Chem, Burnaby, BC V5A 1S6, Canada
[2] CNR, Inst Fuel Cell Innovat, Vancouver, BC V6T 1W5, Canada
[3] Univ London Imperial Coll Sci Technol & Med, Fac Phys Sci, Dept Chem, London SW7 2AZ, England
[4] Univ Tartu, Fac Phys & Chem, Inst Phys Chem, EE-51014 Tartu, Estonia
关键词
D O I
10.1149/1.1825379
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Electrochemical double-layer capacitors with micro-to-nanoporous electrodes based on activated carbon utilize the gross interface between carbon and the electrolyte, which fills the pores of two main classes, (i) micrometer voids between agglomerates of carbon grains and (ii) micro-to-nanometer pores inside agglomerates and grains. The bigger pores provide good transport of ions throughout the layer whereas the smaller pores generate a large interfacial area. This essentially bifunctional architecture prompted us to combine two complementary concepts in the pertinent theory of double-layer capacitors, viz. linear transmission line models and self-affine fractal models. The merit of this structure-based approach, involving also the effect of hindrance of ionic conductivity in nanopores, is that it relates basic structural characteristics to the dynamic performance. Practically, with no fitting parameters, it reproduces the main features of recently reported complex impedance data. This refers to the effect of electrode thickness, constant phase angle (CPA) and crossover between CPA and non-CPA behavior. Routes toward the optimization of the capacitor architecture for the largest possible static capacitances and rapid charging-discharging are explored. The comparison of calculated optimum capacitance values with recent experimental data reveals remarkable reserves for advanced structural design. (C) 2004 The Electrochemical Society.
引用
收藏
页码:E24 / E33
页数:10
相关论文
共 46 条
[1]   Influence of the solvent properties on the characteristics of a double layer capacitor [J].
Arulepp, M ;
Permann, L ;
Leis, J ;
Perkson, A ;
Rumma, K ;
Jänes, A ;
Lust, E .
JOURNAL OF POWER SOURCES, 2004, 133 (02) :320-328
[2]   SURFACE-TOPOGRAPHY AND ELECTRICAL RESPONSE OF METAL-ELECTROLYTE INTERFACES [J].
BATES, JB ;
CHU, YT .
SOLID STATE IONICS, 1988, 28 :1388-1395
[3]   SURFACE-TOPOGRAPHY AND IMPEDANCE OF METAL-ELECTROLYTE INTERFACES [J].
BATES, JB ;
CHU, YT ;
STRIBLING, WT .
PHYSICAL REVIEW LETTERS, 1988, 60 (07) :627-630
[4]  
Becker H.I., 1957, U.S. Patent, Patent No. [2,800,616, 2800616]
[5]   IMPEDANCE OF FRACTAL INTERFACES [J].
BLENDER, R ;
DIETERICH, W ;
KIRCHHOFF, T ;
SAPOVAL, B .
JOURNAL OF PHYSICS A-MATHEMATICAL AND GENERAL, 1990, 23 (07) :1225-1232
[6]  
Chizmadjev Y, 1971, MACROKINETICS PROCES
[7]   DISTRIBUTION OF CURRENT IN POROUS ELECTRODES [J].
COLEMAN, JJ .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1951, 98 (01) :26-30
[8]   DRY CELL DYNAMICS - THE BOBBIN [J].
COLEMAN, JJ .
TRANSACTIONS OF THE ELECTROCHEMICAL SOCIETY, 1946, 90 :545-583
[9]  
Conway B. E., 1999, ELECTROCHEMICAL SUPE, DOI DOI 10.1007/978-1-4757-3058-6
[10]  
DANIELBEK VS, 1948, ZH FIZ KHIM+, V22, P697