The object reaches its highest point when the vertical component of its velocity becomes zero.
The initial vertical velocity is \(u \sin \theta\), and it takes time \(\frac{u \sin \theta}{g}\) to reach this point due to gravity.
The change in gravitational potential energy, which is equal to the work done by gravity, is: \[ \Delta U = mgh = mg \left(u \sin \theta \cdot \frac{u \sin \theta}{g}\right) = mu^2 \sin^2 \theta \] The average power delivered by gravity is the work done by gravity divided by the time taken to reach the highest point: \[ P_{avg} = \frac{\Delta U}{t} = \frac{mu^2 \sin^2 \theta}{\frac{2u \sin \theta}{g}} = \frac{mgu \sin \theta}{2} \]
Which of the following are ambident nucleophiles?
[A.] CN$^{\,-}$
[B.] CH$_{3}$COO$^{\,-}$
[C.] NO$_{2}^{\,-}$
[D.] CH$_{3}$O$^{\,-}$
[E.] NH$_{3}$
Identify the anomers from the following.

The standard Gibbs free energy change \( \Delta G^\circ \) of a cell reaction is \(-301 { kJ/mol}\). What is \( E^\circ \) in volts?
(Given: \( F = 96500 { C/mol}\), \( n = 2 \))