| 1. | 2. | ||
| 3. | 4. |
The molar solubility of in 0.1 M solution of NaF will be:
| 1. | 2. | ||
| 3. | 4. |
Reversible expansion of an ideal gas under isothermal and adiabatic conditions are shown in the figure:
ABIsothermal expansion
ACAdiabatic expansion
Which of the following options is not correct?
| 1. | \(\Delta S_{\text {isothermal }}>\Delta S_{\text {adiabatic }} \) | 2. | \(T_A=T_B \) |
| 3. | \(W_{\text {isothermal }}>W_{\text {adiabatic }} \) | 4. | \(T_C>T_A\) |
Limiting molar conductivity of NH4OH (i.e., is equal to -
1.
2.
3.
4.
The IUPAC name of the given compound is:
1. 3-keto-2-methylhex-4-enal
2. 5-formylhex-2-en-3-one
3. 5-methyl-4-2-en-5-el
4. 3-keto-2-methylhex-5-enal
The compound among the following that used in cosmetic surgery is:
1. Silica
2. Silicates
3. Silicones
4. Zeolites
The major products C and D formed in the following reaction respectively are:
\(CH_3CH_2CH_2OC{(CH_3)}_3 \xrightarrow[\Delta]{\text{Excess}\ HI}\ C + D\)
1. H3C-CH2-CH2-I and I-C(CH3)3
2. H3C-CH2-CH2-OH and I-C(CH3)3
3. H3C-CH2-CH2-I and HO-C(CH3)3
4. H3C-CH2-CH2-OH and HO-C(CH3)3
| 1. | |
| 2. | |
| 3. | |
| 4. |
Limiting molar conductivities, for the given solutions, are:
\(\lambda_{m}^{0} \left(\right. H_{2} S O_{4} \left.\right) = x\) \(S c m^{2}\) \(m o l^{- 1}\)
\(\lambda_{m}^{0} \left(\right. K_{2} S O_{4} \left.\right) = y\) \(S c m^{2}\) \(m o l^{- 1}\)
\(\lambda_{m}^{0} \left(\right. C H_{3} C O O K \left.\right) = z\) \(S c m^{2}\) \(m o l^{- 1}\)
From the data given above, it can be concluded that \(\lambda_m^0 \) in (\(S\ cm^2\ mol^{-1}\)) for CH3COOH will be:
| 1. | \(\mathrm{x-y+2z}\) | 2. | \(\mathrm{x+y+z}\) |
| 3. | \(\mathrm{x-y+z}\) | 4. | \(\mathrm{{(x-y) \over 2}+z}\) |
Which of the following cannot act both as a Bronsted acid and as a Bronsted base?
| 1. | \(\mathrm{H C O_{3}^{-}}\) | 2. | \(\mathrm{NH_3}\) |
| 3. | \(\mathrm{HCl}\) | 4. | \(\mathrm{H S O_{4}^{-}}\) |