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100

Why can a high-temperature gas be favored even though separating particles requires energy?

At high temperatures, entropy becomes an important consideration for overall "stability". The gas requires a higher potential energy state to separate molecules (unfavorable), but it also achieves more possible configurations (favorable)

100

Draw a heating curve and label the following:

State of matter

Phase change 

Type of energy being absorbed 

x = time; y = temp

melting and boiling must be present

solid liquid gas must be present 

change in KE during heating

change in PE during phase change

100

Element X has three naturally occurring isotopes:

50X = 56%

51X = 27%

52X = 17%

Calculate the average relative atomic mass of element X.

50.61 amu

100

A sample of carbon dioxide gas has a volume of 3.50 L at a pressure of 0.980 atm and a temperature of 45°C. What mass (in grams) of CO2 is present in the container?



5.76 g CO2

100

A student is given five samples: distilled water, air, copper wire, salt water, and oil + water. Classify each sample as an element, compound, homogenous mixture, or heterogenous mixture.

Distilled water = pure substance + compound

Air = homogenous mixture 

Copper wire = elementary substance

Salt water = homogenous mixture

Oil + water = heterogenous mixture

200

Explain why, during a phase change, the average kinetic energy remains constant even though heat is continuously applied.

Supplied energy is being used to overcome intermolecular attractions (PE) rather than to increase the average KE of the molecules.

200

Refer to slideshow for graph

a. Rank the liquids from most to least volatile

b. Rank the liquids from strongest to weakest intermolecular interactions

c. If the three liquids are mixed together and separated via distillation at 1 atm, in which order would the liquids be collected?

a. A > B > C

b. C > B > A

c. A, then B, then C

200

A 240 mL sample of gas is collected at 755 mmHg and 22°C. How many moles of gas are in the sample?

0.00984 mol

200

If I have 126.09 g of nitrogen, how many grams of hydrogen would I need to form an even amount of ammonia (NH3) without having any atoms left over?

27.216 g H

200

Identify whether the following gas law relationships are inverse or proportional:

a. Pressure vs. volume

b. Temperature vs. volume

c. Pressure vs. temperature

d. Volume vs. number of moles

a. Inverse

b. Proportional

c. Proportional

d. Proportional

300

How many neutrons and electrons does a neutral sulfur-34 atom contain?

18 neutrons and 16 electrons

300

Refer to slideshow for graph

Using claim, evidence, and reasoning (CER), explain which gas sample has the highest temperature.

Claim - curve C represents the gas at the highest temperature

Evidence - the peak of curve C is shifted the furthest to the right, indicating a greater proportion of molecules traveling at higher speeds

Reasoning - temperature is directly proportional to the average kinetic energy of gas particles 

300

How many carbon atoms are in 0.675 mol of acetone (C3H6O)?

1.219 x 1024 carbon atoms


300

An element has two naturally occurring isotopes with masses of 64 amu and 66 amu. Its average atomic mass if 64.60 amu. What is the relative abundance of each isotope?

64 amu = 70%

66 amu = 30%

300

Explain the significance of the slope of the solid-liquid transition line on a phase diagram.

Positive slopes indicate the solid is denser than the liquid (true for most materials)

Negative slopes indicate the liquid is denser than the solid (true for water)

400

Two containers of the sample volume hold the same gas at the same initial temperature. Container A has 100 molecules, while container B has 200.

a. Which initially has the greater pressure?

b. How would their pressures' compare if the temperature of container B was halved?

a. B has twice the pressure

b. A and B would have the same pressure (B has twice the molecules but half the temperature)

400

Refer to slideshow for graph

Two students disagree about which point on the potential-energy curve represents the most stable arrangement of particles. 

Student A claims that the particles are most stable at point B, where potential energy is the lowest.

Student B claims that the particles are most stable at point C, where they are the farthest apart.

Using claim, evidence, and reasoning (CER), determine which student's claim is supported by the graph.

Claim - student A's claim is supported by the graph

Evidence - point B is located at the minimum of the potential energy curve, while point C has a higher potential energy (closer to 0)

Reasoning - attractive and repulsive forces are balanced at the minimum of the curve. Moving particles closer together or farther apart requires energy, so point B is the most stable arrangement.

400

No periodic table:

C5H7O2Br2 has a molar mass of 258.906 g/mol. The atomic masses of the individual elements are:

C = 12.01 amu

O = 16.00 amu

H = 1.008 amu

What is the atomic mass of bromine?

79.9 amu

400

A 5.00 g sample of an unknown gas occupies 3.00 L at 27.0°C and 101.3 kPa. Determine the approximate molar mass of the sample.

41.1 g/mol

400

Element "X" has two naturally occurring isotopes, 10X and 11X. 10X forms approximately 70% of natural isotopes, while 11X forms 30%. Element X also forms diatomic molecules (X2).

Identify the possible m/z ratios for the different molecular ion peaks of element X, as well as which peak would be the most abundant.

10X + 10X peak at m/z = 20 (most abundant)

10X + 11X peak at m/z = 21

11X + 11X peak at m/z = 22 (least abundant)



500

Two hypothetical substances have potential energy curves with a minima at approximately the same inter particle distance. Substance X has a minimum of -20 kJ/mol, while substance Y has a minimum of -50 kJ/mol.

Determine which substance has stronger intermolecular attractions, and why.

Substance Y

The deeper the potential energy well, the more energy require to separate interacting particles. Substance Y requires more energy to separate its particles, indicating stronger attractive interactions.

500

Samples of helium (He), nitrogen (N2), and xenon (Xe) are all at 300 K.

a. rank their average kinetic energies

b. rank their average molecules speeds

c. sketch a Maxwell-Boltzmann graph with an approximate distribution for each graph

a. All have the same average kinetic energy

b. He > N2 > Xe

c. He is broadest and furthest to the right; N2 is intermediate; Xe is narrow and furthest to the left

500

A student has a 36.0 g sample of glucose (C6H12O6). How many total atoms are present in the sample?

2.888 x 1024 total atoms

500

An unknown compound contains 54.5% carbon, 9.1% hydrogen, and 36.4% oxygen. Its molecular ion peak appears at m/z = 88.


Determine the empirical and molecular formula of this compound.

EF = C2H4O

MF = C4H8O2

500

What is everyone going to get on this exam?

100% !!!!!