The standard free energy of formation ( ΔG o f ) of acetone has to be calculated. Concept introduction: Standard free energy change: Standard free energy change is measured by subtracting the product of temperature and standard entropy change from the standard enthalpy change of a system. ΔG o = ΔH o - TΔS o where, ΔG o - standard free energy change ΔH o - standard enthalpy change ΔS o - standard entropy change and T - temperature . Standard free energy of formation: The change in free energy for the formation of 1 mole of any substance from its starting materials in their standard (stable) states (i.e. 1 atm and 25 o C ). To calculate: the value of ΔG o f for acetone
The standard free energy of formation ( ΔG o f ) of acetone has to be calculated. Concept introduction: Standard free energy change: Standard free energy change is measured by subtracting the product of temperature and standard entropy change from the standard enthalpy change of a system. ΔG o = ΔH o - TΔS o where, ΔG o - standard free energy change ΔH o - standard enthalpy change ΔS o - standard entropy change and T - temperature . Standard free energy of formation: The change in free energy for the formation of 1 mole of any substance from its starting materials in their standard (stable) states (i.e. 1 atm and 25 o C ). To calculate: the value of ΔG o f for acetone
Solution Summary: The author explains that the standard free energy of formation of acetone has to be calculated.
The standard free energy of formation (ΔGof) of acetone has to be calculated.
Concept introduction:
Standard free energy change:
Standard free energy change is measured by subtracting the product of temperature and standard entropy change from the standard enthalpy change of a system.
The change in free energy for the formation of 1mole of any substance from its starting materials in their standard (stable) states (i.e.
1atmand25oC).
Calculate the cell potential for the following reaction that takes place in an electrochemical cell at 25°C.
Mg(s) ∣ Mg2+(aq, 2.74 M) || Cu2+(aq, 0.0033 M) ∣ Cu(s)
Calculate E° for Ni(glycine)2 + 2e– D Ni + 2 glycine– given
Ni2+ + 2 glycine– D Ni(glycine)2 K = 1.2×1011
Ni2+ + 2 e– D Ni E° = -0.236 V
One method for the analysis of Fe3+, which is used with a variety of sample matrices, is to form the highly colored Fe3+–thioglycolic acid complex. The complex absorbs strongly at 535 nm. Standardizing the method is accomplished using external standards. A 10.00-ppm Fe3+ working standard is prepared by transferring a 10-mL aliquot of a 100.0 ppm stock solution of Fe3+ to a 100-mL volumetric flask and diluting to volume. Calibration standards of 1.00, 2.00, 3.00, 4.00, and 5.00 ppm are prepared by transferring appropriate amounts of the 10.0 ppm working solution into separate 50-mL volumetric flasks, each of which contains 5 mL of thioglycolic acid, 2 mL of 20% w/v ammonium citrate, and 5 mL of 0.22 M NH3. After diluting to volume and mixing, the absorbances of the external standards are measured against an appropriate blank. Samples are prepared for analysis by taking a portion known to contain approximately 0.1 g of Fe3+, dissolving it in a minimum amount of HNO3, and diluting to…
Chapter 18 Solutions
Student Solutions Manual for Ebbing/Gammon's General Chemistry
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The Laws of Thermodynamics, Entropy, and Gibbs Free Energy; Author: Professor Dave Explains;https://www.youtube.com/watch?v=8N1BxHgsoOw;License: Standard YouTube License, CC-BY