Thermogalvanic cells: A side-by-side comparison of measurement methods

被引:36
作者
Buckingham, Mark A. [1 ]
Aldous, Leigh [1 ]
机构
[1] Kings Coll London, Dept Chem, Britannia House, London SE1 1DB, England
基金
英国工程与自然科学研究理事会;
关键词
Thermogalvanic; Thermocell; Entropy; Methodology; THERMO-ELECTROCHEMICAL CELLS; CARBON-NANOTUBE; REDOX COUPLES; THERMOELECTROCHEMICAL CELLS; TEMPERATURE; CONVERSION; POWER; HEAT; ELECTRODES; METAL;
D O I
10.1016/j.jelechem.2020.114280
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Thermogalvanic cells (or thermocells) are being increasingly investigated due to their ability to directly convert modest temperature gradients into electricity, using redox chemistry. However, this has resulted in a diverse range of cells, electrolytes, temperature gradients, etc. being reported. Recently, so-called temperature-difference 'normalised' power outputs have been reported; the power output is divided by the square of the temperature difference to yield temperature-insensitive power output values. The validity of this procedure is quantitatively assessed here, and found to be far from accurate. Additionally, numerous different experimental procedures for measuring the current and power output from thermocells can be found in the literature, covering different approaches, vastly different time scales, and employing a diverse range of measuring instruments. A range of experimental methodologies covering a sequence of constant resistances (or resistive loads), a sequence of constant currents, a sequence of constant potentials (or voltage), chronoampemmeby and linear sweep voltammetry (ISV) were evaluated in this study, using source measure units, potentiostats and voltammeters/multimeters. While most methodologies were consistent, the measurement time and number of electrodes were found to be highly influential, with ISV and 3-electrode assemblies especially overestimating the current and power output from thermocells.
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页数:10
相关论文
共 49 条
[1]   Towards ionic liquid-based thermoelectrochemical cells for the harvesting of thermal energy [J].
Abraham, Theodore J. ;
MacFarlane, Douglas R. ;
Baughman, Ray H. ;
Jin, Liyu ;
Li, Na ;
Pringle, Jennifer M. .
ELECTROCHIMICA ACTA, 2013, 113 :87-93
[2]   High Seebeck coefficient redox ionic liquid electrolytes for thermal energy harvesting [J].
Abraham, Theodore J. ;
MacFarlane, Douglas R. ;
Pringle, Jennifer M. .
ENERGY & ENVIRONMENTAL SCIENCE, 2013, 6 (09) :2639-2645
[3]   Achieving pseudo-'n-type p-type' in-series and parallel liquid thermoelectrics using all-iron thermoelectrochemical cells with opposite Seebeck coefficients [J].
Al Maimani, Mazin ;
Black, Jeffrey J. ;
Aldous, Leigh .
ELECTROCHEMISTRY COMMUNICATIONS, 2016, 72 :181-185
[4]   Success and failure in the incorporation of gold nanoparticles inside ferri/ferrocyanide thermogalvanic cells [J].
Alzahrani, Hassan A. H. ;
Buckingham, Mark A. ;
Marken, Frank ;
Aldous, Leigh .
ELECTROCHEMISTRY COMMUNICATIONS, 2019, 102 :41-45
[5]   Combining thermogalvanic corrosion and thermogalvanic redox couples for improved electrochemical waste heat harvesting [J].
Alzahrani, Hassan A. H. ;
Black, Jeffrey J. ;
Goonetilleke, Damian ;
Panchompoo, Janjira ;
Aldous, Leigh .
ELECTROCHEMISTRY COMMUNICATIONS, 2015, 58 :76-79
[6]   Substituted ferrocenes and iodine as synergistic thermoelectrochemical heat harvesting redox couples in ionic liquids [J].
Anari, E. H. B. ;
Romano, M. ;
Teh, W. X. ;
Black, J. J. ;
Jiang, E. ;
Chen, J. ;
To, T. Q. ;
Panchompoo, J. ;
Aldous, L. .
CHEMICAL COMMUNICATIONS, 2016, 52 (04) :745-748
[7]  
Bates A.M., 2017, J ENERGY RESOUR TECH, V139, P1
[8]   Temperature effect upon the thermoelectrochemical potential generated between lithium metal and lithium ion intercalation electrodes in symmetric and asymmetric battery arrangements [J].
Black, Jeffrey J. ;
Harper, Jason B. ;
Aldous, Leigh .
ELECTROCHEMISTRY COMMUNICATIONS, 2018, 86 :153-156
[10]   A fundamental study of the thermoelectrochemistry of ferricyanide/ferrocyanide: cation, concentration, ratio, and heterogeneous and homogeneous electrocatalysis effects in thermogalvanic cells [J].
Buckingham, Mark A. ;
Hammoud, Samer ;
Li, Huanxin ;
Beale, Conor J. ;
Sengel, Jason T. ;
Aldous, Leigh .
SUSTAINABLE ENERGY & FUELS, 2020, 4 (07) :3388-3399