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HER measurement was also performed using a carbon counter electrode to preclude any Pt contamination.
The sample was first pretreated by the application of a constant current of 50 μ A for 5 min. Then, the HER measurement was completed by sweeping the potential from -1,400 to -1,200 mV at a scan rate of 5 mV/s.
Then, according to quantum mechanics, her measurement of the photon will change its state and leave it polarized at plus or minus 45°.
From her measurement outcome and because she is a competent experimentalist she is entitled to conclude that before the measurement took place particle $a$ possessed the value indicated later by the pointer position; see the discussion in subsection 7.2.
Again, Alice on the basis of her measurement outcome can still assign an $S_{bz}$ value to Bob's particle before measurement, and use it as a pre-probability to calculate a probability for Bob's measurement outcome.
The particles spin like little tops and, in principle, can be entangled so that if Alice measures her electron and finds it spinning "up," she'll know instantly that Bob's is spinning "down" and vice versa--even though both electrons spin both ways at the same time until Alice makes her measurement.
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Figure 6 HER measurements of two samples both before and after the dealloying process.
Figure 7 Tafel slope and current density extracted from HER measurements.
To characterize the catalytic behavior of the samples, HER measurements were made both before and after dealloying.
To assess electrocatalytic performance of vertical 1T-WS2 nanosheets in HER, measurements are performed in a 0.5 M H2SO4 solution using a typical three-electrode cell setup.
(a) Tafel slope and (b) exchange current density from HER measurements of the as-deposited and dealloyed NiCu thin films as a function of Cu content in the film before dealloying.
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