Concept explainers
Interpretation:
The density of gaseous
Concept introduction:
Density is calculated as follows:
Here,
The
Here,
The density formula for an ideal gas is derived by substituting the value of
Here, R is the gas constant,
Want to see the full answer?
Check out a sample textbook solutionChapter 24 Solutions
EBK CHEMISTRY
- Data are given in Appendix 1 for white phosphorus, P4(s). P4(g) has the following thermodynamic values: Hf=58.9kJ/mol , S=280.0J/kmol . What is the temperature at which white phosphorus sublimes at 1 atm pressure?arrow_forwardAre changes in state physical or chemical changes? Explain. What type of forces must be overcome to melt or vaporize a substance (are these forces intramolecular or intermolecular)? Define the molar heat of fusion and molar heat of vaporization. Why is the molar heat of vaporization of water so much larger than its molar heat of fusion? Why does the boiling point of a liquid vary with altitude?arrow_forwardExplain the meaning of ‘Equilibrium lattice constant’.arrow_forward
- In liquid ammonia, NaH and NH3 react to form sodamide (NaNH2). What happens when NaNH2 is placed in water? Use at least one balanced chemical equation in your explanation.arrow_forwarda) Using electronegativity values, predict the type of bond expected between hydrogen and sulphur. b) Write the chemical formula for hydrogen sulphide. Show your workings. c) Would you expect the hydrogen sulphide molecule to be linear or non-linear in shape? Justify your answer. d) Hydrogen sulphide has a boiling point of 212.3 K and water has a boiling point of 373 K. Account for the difference in the boiling points of these substances. you expect hydrogen sulphide to be soluble in water? Explain your answer. e) Wouldarrow_forwardWrite the thermochemical equation of reaction between solid phosphorus, P4 and oxygen gas, produces P4O6 and 1640.1 J kj of heat.arrow_forward
- The enthalpy of vaporization of Substance X is 16.0kJmol and its normal boiling point is 123.°C. Calculate the vapor pressure of X at −35.°C.arrow_forwardGiven the information below, calculate the lattice enthalpy for MX(s), where M is a group 1 metal, and X is a group 17 element (standard state: X2(g)). ΔfH°(MX) = -462 kJ mol−1 ΔsubH°(M) = 127 kJ mol−1 D(X2) = 442 kJ mol−1 IE1(M) = 480 kJ mol−1 Eeg1(X) = -142 kJ mol−1 Express your answer to four significant figures. ΔlattH°(MX) = Answer kJ mol−1arrow_forwardwhen hydrogen and oxygen are burned to produce water. heat is produced at 58 kcal mol of water. A mole 6.02 x 10^23 molecules. how much heat energy is produced per molecule of water.arrow_forward
- Calculate the heat released when 2.280 L O2 with a density of 1.11 g/L at 25°C reacts with an excess of hydrogen to form liquid water at 25°C. The enthalpy of formation of liquid water is -285.8 kJ/mol. Heat released kJarrow_forwardThe average enthalpy of vaporization of isopropyl alcohol is 42.65 kJ/mol. Its vapor pressure at 20.0 °C is 33.1 torr. Calculate its normal boiling point.arrow_forwardNn.156. Subject :- Chemistryarrow_forward
- Introductory Chemistry: A FoundationChemistryISBN:9781337399425Author:Steven S. Zumdahl, Donald J. DeCostePublisher:Cengage LearningChemistry: Principles and ReactionsChemistryISBN:9781305079373Author:William L. Masterton, Cecile N. HurleyPublisher:Cengage LearningChemistry: The Molecular ScienceChemistryISBN:9781285199047Author:John W. Moore, Conrad L. StanitskiPublisher:Cengage Learning