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The maximum volumetric power density that micro-monolithic SOFCs could achieve was estimated, based on the closest triangle packing; the results are shown in Table 1.
Furthermore, the maximum volumetric power density achieved was 123.2 ± 27.5 mW m−3.
It was found that tube MFC produced higher output power, with the maximum volumetric power density of 3773 ± 347 mW/m3, than cube MFC.
Maximum volumetric power densities approaching 20 μW cm−3 are reported, and characterization criteria that will aid in future optimization are discussed.
Moreover, the assembled device exhibited a maximum volumetric energy density of 4.05 mWh cm−3 and a maximum volumetric power density of 268 mW cm−3.
A wide range of strategies have been developed for the preparation and substantial modification of oxygen reduction reaction (ORR) catalysts to improve the maximum volumetric power density of MFCs, in which the efforts on graphene based ORR catalysts are highly imperative.
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Maximum volumetric energy (power) density of the supercapacitor reaches 38.65 mWh cm−3 (8.26 W cm−3).
Maximum sustainable volumetric power (2.3 W/m) was achieved with 100 Ω external resistance.
The CHAMP-DDIR reactor performance has been analyzed using a simplified transport model with which conditions for maximum performance, e.g. highest volumetric power density, were identified.
Also, the composite with the maximum volumetric capacitance exhibits a high-power density of 4108 W L−1 with the maximum energy density of 37.85 Wh L−1 at the current density of 1 A g−1.
where SWCmin (0.04) and SWCmax (0.49) correspond to the minimum and maximum volumetric SWC values, respectively.
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