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A low operating voltage for anode materials can endow a cell with a high operation voltage.
Spinel phase LiNi0.5Mn1.5O4 (LNMO) is a promising cathode material, because of its high operation voltage (~ 4.7 V vs. Li+/Li).
The redox voltage of Co is high compared with other olivine materials, and it contributes to the high operation voltage of LiCoPO4.
In order to overcome the high operation voltage and current issue, the dimension of the switching device should be further scaled down.
LiCoPO4 has been recognized as a promising cathode material for lithium batteries due to its high stability and high operation voltage.
The plateaus of Bi between 0.3 and 0.9 V versus Na+/Na are favorable for maintaining a high operation voltage and avoiding the aforementioned detrimental effects [13, 14].
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However, the non-resonant motion requires relatively much higher operation voltage than the resonant motion [10].
This suggests that the current overshoot effect is not due to the higher operation voltage but to the AlO x formation at the Al/GeO x interface or unstable interface.
Recently, a tandem structure has been proposed as a pivotal technique to meet the stringent lighting requirements for OLED commercialization, with a research focus on decreasing the concomitant higher operation voltage.
According to several reported results, using Al electrode or Al2O3-based resistive memory devices requires higher operation voltages as well as high RESET currents[12, 44, 45]; however, a few results were reported on low-current operation[6 8, 14].
FeFET devices are also expected to exhibit a lower operation voltage, higher field effect mobility, higher transconductance, and higher ION/IOFF ratio than the other devices [20].
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