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Within the whole current density range, the VO2-N microarray electrode yielded high specific capacitances.
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The conductive, porous nanoATO film-supported TiO2 electrodes, yielded a highest photocurrent density of 0.58 mA/cm(2) under AM 1.5G simulated sunlight of 100 mW/cm(2).
63 electrodes yielded somatosensory responses from the two animals.
Two specific types of electrodes yielded the greatest amount of expression.
Micropatterns with living cells were rapidly formed on glass substrates using negative dielectrophoretic force induced at a template microarray electrode consisting of assembly of microband electrodes.
Results showed microarray electrode behavior, greatly improving the signal-to-noise ratio.
The electrochemical properties of the SnO2 films with lithium were studied by in situ conductivity measurements using an interdigitated microarray electrode as well as by cyclic voltammetry, galvanostatic cycling measurements and ac-impedance spectroscopy in 1 M LiClO4/ PC+EC).
The considerably depressed semicircle and low inside resistance suggested rapid ion transport within the VO2-N microarray electrode.
No capacitance fading was observed during cycling for VO2-N microarray electrode, and the capacitance of 239 F/g maintained unchanged after 3000 cycles.
On the other hand, No capacitance fading was observed during cycling for VO2-N microarray electrode after 3000 cycles at a high current density (2 A/g).
Fig. 4 CV curves at the scan rates of 5 50 mV/s (a) and EIS spectra of 2D VO2 microarrays (b). Figure 5a showed the galvanostatic charge-discharge curves of the VO2-N microarray electrode at the current density ranged from 0.5 to 10 A/g, and the corresponding specific capacitances were illustrated in Fig. 5b.
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