| \(\mathrm{(A)}\) |  | \(\mathrm{(B)}\) |  | 
| \(\mathrm{(C)}\) |  | \(\mathrm{(D)}\) |  | 
| 1. | \(c\sqrt{\dfrac{2m}{E}}\) | 2. | \(\dfrac{1}{c}\sqrt{\dfrac{E}{2m}}\) | 
| 3. | \(\sqrt{\dfrac{E}{2m}}\) | 4. | \(c\sqrt{2mE}\) | 
If \(c\) is the velocity of light in free space, the correct statements about photons among the following are:
| (A) | The energy of a photon is \(E=h\nu.\) | 
| (B) | The velocity of a photon is \(c.\) | 
| (C) | The momentum of a photon, \(p={\dfrac{h\nu}{c}}.\) | 
| (D) | In a photon-electron collision, both total energy and total momentum are conserved. | 
| (E) | Photon possesses a positive electric charge. | 
| 1. | (A), (B), (C) and (D) only | 
| 2. | (A), (C) and (D) only | 
| 3. | (A), (B), (D) and (E) only | 
| 4. | (A) and (B) only | 
| 1. |  | 2. |  | 
| 3. |  | 4. |  | 
| 1. | \(4.4~\text{eV}\) | 2. | \(7.103\times10^{-15}~\text{J}\) | 
| 3. | \(1.9~\text{eV}\) | 4. | \(4.60~\text{eV}\) | 
| Statement I: | The de Broglie wavelength associated with a material particle depends on its charge and nature. | 
| Statement II: | The wave nature of particles in sub-atomic domain is significant and measurable. | 
| 1. | Both Statement I and Statement II are correct. | 
| 2. | Both Statement I and Statement II are incorrect. | 
| 3. | Statement I is correct but Statement II is incorrect. | 
| 4. | Statement I is incorrect but Statement II is correct. | 
| 1. | \(\lambda_{\mathrm{e}}>\lambda_{\alpha}\) | 2. | \(\lambda_{\mathrm{e}}=4\lambda_{\alpha}\) | 
| 3. | \(\lambda_{\mathrm{e}}=\lambda_{\alpha}\) | 4. | \(\lambda_{\mathrm{e}}<\lambda_{\alpha}\) | 
| 1. | \({e}+2\phi \) | 2. | \(2{e}-\phi \) | 
| 3. | \({e}-\phi \) | 4. | \({e}+\phi \) | 
| 1. | \(\mathrm{Na}\) only | 2. | \(\mathrm{Cs}\) only | 
| 3. | both \(\mathrm{Na}\) and \(\mathrm{K}\) | 4. | \(\mathrm{K}\) only |