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The modified cathodes exhibited significantly improved capacity retention.
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Among the surface modified cathodes, Bi2O3 coated LiNi0.4Mn0.4Co0.2O2 cathode exhibits appreciable specific capacity values of 196 mAh g−1Qdc1c1) and 175 mAh g−1 (Qdc100) with 89% capacity retention, thus evidencing the superiority of Bi2O3 modifier in improving the electrochemical behavior of pristine LiNi0.4Mn0.4Co0.2O2 cathode.
Accordingly, the CVD graphene-modified LFP cathodes exhibit larger reversible capacities of 132 and 80 mAh g−1 at even high charge/discharge rates of 1 and 20 C [56].
Compared with traditional carbon cloth cathodes, all nanotube modified cathodes showed higher performance in electrochemical response and power generation in MFCs.
The modified cathode was equally effective in reducing oxygen, but the gold slowed the degradation of the cathode.
The cathode in a metal vapor vacuum arc (MEVVA) source was modified and co-implantation of V+C was carried out with the modified cathode.
The structurally modified niobium sulfur chloride cathode exhibited excellent rechargeability.
Furthermore, Ti substituted cathodes exhibit enhanced rate capability over pristine P2-Na2/3Ni1/4Mn3/4O2 P2-Na2/3Ni1/4Mn3/4O2
In the present paper, we report on a relatively simple, fast, efficient, and very cost-effective approach to achieve CNT-based cold cathodes exhibiting very low threshold fields.
The LBCO-50SDC composite cathode exhibited the best electrochemical performance in the LBCO-xSDC cathodes.
On the other hand, owing to the large polarization at high rate and improved lithium-ion diffusion coefficient, the doped LiNi0.5Mn1.5O4 cathode exhibited higher specific capacity.
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