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The compositionally and structurally tailored CG12 also shows stable cycling performance over 400 cycles with a low decay rate of 0.09% per cycle.
After acidification, the cycling performance of the cathode could achieve upon 300 cycles with a very low decay rate of 0.027% at 0.5C.
The as-prepared FeS2 displays a good electrochemical performance with an initial specific capacity over 80% of the theoretical value and a very low decay rate of 0.33% per cycle (calculated from 2nd to 50th at 0.1 C).
When cycling at 1C, the first and the 600th discharge capacities of 698.5 mAh g−1 and 435.7 mAh g−1 are retained, respectively, along with a low decay rate of 0.063% per cycle.
By employing the NPCP as a reservoir to impregnate sulfur for lithium-sulfur batteries, the resulting carbon/sulfur composite (NPCN/S) shows a remarkably improved rate performance and superior long-term cycling stability with an extremely low decay rate (0.1% per cycle) up to 300 cycles at a high rate of 2C (3350 mA g−1).
When coupled with a nanostructured LiMn2O4 cathode, the all-manganese-based MnO@C∥LiMn2O4 full cell characterizes a high energy density of 397 Wh kg−1, high rate capability (215 Wh kg−1 at a power density of 6.2 kW kg−1), and an extremely low decay rate of 0.087% per cycle over 1000 cycles.
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The new procedure produced the catalysts with low decay rates.
In particular for low decay rates, small absolute errors result in proportionally very large errors when calculating mass loss.
The underestimation of some low decay rates due to the poor selectivity of the criterion occurring in these cases requires further study.
For cotton strength loss, the relationship with land cover was wedge-shaped such that sites with >60% natural cover had low decay rates (<0.02 d−1) with variability below this increasing as natural cover declined.
Therefore, the loss of spliceosome components is likely the cause of reduced splicing activity, and in combination with low decay rates, results in a large proportion of unspliced transcripts.
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