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Calculate ΔsubH of the H2O from the given data:
\[\ce{H2O_{(s)}->H2O_{(l)},}\] ΔfusH = 6.01kJ mol−1
\[\ce{H2O_{(l)}-> H2O_{(g)},}\] ΔVapH = 45.07 kJ mol−1.
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Prove that: M2 = `(W_2RT)/(πV)`.
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Calculate heat evolved for combustion of 13 gm of acetylene (C2H2).
Given: \[\ce{C2H2_{(g)} + 5/2O_{2(g)}-> 2CO_{2(g)} + H2O_{(l)} \Delta_{(c)}H^{0} = - 1300 kJ}\]
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Arrange the following solutions in the order of increasing osmotic pressure (π) assuming complete ionization.
- 0.5M Li2 SO4
- 0.5M KCl
- 0.5M Al2 (SO4)3
- 0.1 M BaCl2
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Heat of combustion of CH4(g) is -890 kJ/mole. What is the value of Δc H of 8gm of methane?
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Name the four colligative properties that are oftently used for determination of molecular mass.
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Write a note on the aldol condensation reaction of acetaldehyde.
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What is aldol condensation? Explain it with suitable examples.
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Draw a neat labelled diagram of a lead accumulator.
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Discuss the trends in electronegativity and atomic radii for elements of group 16 17, 18.
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How will you determine molar mass of solute from osmotic pressure?
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Write the condition of reverse osmosis.
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Write two uses of neon.
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Write the net cell reaction during discharging of lead accumulator.
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Calculate the standard enthalpy of combustion of methane if the standard enthalpy of formation of methane, carbon dioxide and water are −74.8, −393.5 and −285.8 kJmol−1 respectively.
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Iron (z=26) is highly ferromagnetic. Explain.
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The molecular formula H2S2O2 represents which oxoacid?
- Hydrosulphurous acid
- Thiosulphurous acid
- Sulphuric acid
- Pyrosulphurous acid
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Write the molecular formula and structure of dithionic acid.
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