Take the equation E(observed) = E(cell) - 0.0592 log [H+]. If the E(cell) were actually 0.300 V rather than 0.285 V, what would be true of the pH measured by the pH meter, assuming that no correction is made?
A. The pH from the pH meter would be too high, because the E(cell) in the calculation is too high.
B. The pH from the pH meter would be too high, because the E(cell) in the calculation is too low.
C. The pH from the pH meter would be too low, because the E(cell) in the calculation is too high.
D. The pH from the pH meter would be too low, because the E(cell) in the calculation is too low.
I thought it would be B. I simplified the equation to E(observed) = E(cell) + 0.0592 x pH. Now, the E(cell) in the calculation would clearly be lower than the actual, and I thought that was a given from the question stem. What this will do is make the E(observed) look higher than it would be if the E(cell) was actually 0.285 V instead of 0.300 V. Since we don't know that the E(cell) is too high, we would think that therefore it must the pH that is too high which is causing the increasing in E(observed).
But the correct answer is C. According to the text, "if the real value for E(cell) is actually higher than the value being plugged in, then a value that is too large is being subtracted to get E(observed). This means that the [H+] is too high, so the calculated pH is too low."
This doesn't make sense to me, and maybe I'm not getting the logic here, but it would seem to me that 1) we would get a higher E(observed) than expected so 2) we would think that the value for the entire (0.0592 log [H+]) term is less, meaning the pH calculated is more than the actual. Also, answer choice C says that the E(cell) in the calculation is too high. This is clearly not true, it seems to me, because it contradicts the information in the question stem. We're using 0.285 V in the calculation when the actual is 0.300 V, so this is clearly too low.
A. The pH from the pH meter would be too high, because the E(cell) in the calculation is too high.
B. The pH from the pH meter would be too high, because the E(cell) in the calculation is too low.
C. The pH from the pH meter would be too low, because the E(cell) in the calculation is too high.
D. The pH from the pH meter would be too low, because the E(cell) in the calculation is too low.
I thought it would be B. I simplified the equation to E(observed) = E(cell) + 0.0592 x pH. Now, the E(cell) in the calculation would clearly be lower than the actual, and I thought that was a given from the question stem. What this will do is make the E(observed) look higher than it would be if the E(cell) was actually 0.285 V instead of 0.300 V. Since we don't know that the E(cell) is too high, we would think that therefore it must the pH that is too high which is causing the increasing in E(observed).
But the correct answer is C. According to the text, "if the real value for E(cell) is actually higher than the value being plugged in, then a value that is too large is being subtracted to get E(observed). This means that the [H+] is too high, so the calculated pH is too low."
This doesn't make sense to me, and maybe I'm not getting the logic here, but it would seem to me that 1) we would get a higher E(observed) than expected so 2) we would think that the value for the entire (0.0592 log [H+]) term is less, meaning the pH calculated is more than the actual. Also, answer choice C says that the E(cell) in the calculation is too high. This is clearly not true, it seems to me, because it contradicts the information in the question stem. We're using 0.285 V in the calculation when the actual is 0.300 V, so this is clearly too low.
