Flexible wearable textile thermoelectric generators (TEGs) are developed from polypyrrole (PPy) coated cotton fabric as p-type and multiwall carbon nanotube (MWCNT) coated cotton fabric as n-type materials. An in situ chemical polymerization method is used to coat cotton fabrics with PPy in an aqueous medium, using ferric chloride as the oxidant. The MWCNT coating on cotton fabric is applied by using the brushing–coating–drying process. Thermocouples are developed using PPy-coated textiles as p-type conductors and MWCNT-coated fabrics as n-type conductors. Two different TEG designs, i.e., 2D (I-design) and 3D (Pie-design), are developed and evaluated for their electrical and thermoelectric properties, including output current versus output voltage, output current versus output power, power factor, figure of merit, and Seebeck coefficient. The electrical conductivities of 2D and 3D TEGs were measured as 56.422 and 12.833 S/m, respectively. Their maximum Seebeck coefficients are found to be 100.773 and 94.958 μV/K, respectively. Their highest power factors are achieved to be 572.99 × 10–3 μW m–1 K–2 and 115.72 × 10–3 μW m–1 K–2, respectively, and the highest figures of merit at an absolute temperature of 300 K are achieved to be 37.430 × 10–4 and 6.358 × 10–4, respectively.
Jangra et al. (Sat,) studied this question.
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