Physical Chemistry I CHEM 4641 Final Exam 13 questions, 30 points
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1 Physical Chemistry I CHEM 4641 Final Exam 13 questions, 30 points Name: KEY Gas constant: R = J mol -1 K -1 = kj mol -1 K -1. Boltzmann constant k = J/K = cm -1 /K h = J s c = m/s Units: 1 bar = 10 5 Pa. 1 GPa = 10 9 Pa 1 Joule = 1 Pa m 3. 1 L bar = 100 J. 1L=10-3 m 3. Formulae: A = - kt ln Q Q = q N or q N /N! μ indist = - kt ln(q/n) μ dist = - kt ln(q) Λ= h / 2π m k B T B= h 2 /(8π 2 μ R 2 ) 1 H Li Na K Rb Cs Fr Be Mg Ca Sr Ba Ra Sc Y La Ac Ce Th Ti Zr Hf Rf Pr Pa V Nb Ta Db Nd U Cr Mo W Sg Pm Np Mn Tc Re Bh Sm Pu Fe Ru Os Hs Eu Am Co Rh Ir Mt Gd Cm Ni Pd Pt Ds Tb Bk Cu Ag Au Rg Dy Cf Zn Cd Hg Cn Ho Es B Al Ga In Tl Nh Er Fm C Si Ge Sn Pb Fl Tm Md N P As Sb Bi Mc Yb No O S Se Te Po Lv Lu Lr F Cl Br I At Ts He Ne Ar Kr Xe Rn Og 294
2 1. (2 points) The word "reversible" has related but different meanings in thermodynamics and in kinetics. Explain what "reversible" means in the context of the expansion of a gas, and what "reversible" means in a reaction mechanism. A few sentences can suffice. Expansion: An ionfinitessimal change in the driving force (e.g., pressure) changes expansion to compression. Mechanism: Reaction goes both ways: reactants to products and products to reactants. 2. (1 point) When graphite begins to melt at 4800K, does the graphite sink in the liquid or does it float on top of the liquid? Explain how you know. The left-sloping coexistence line, dp/dt < 0, implies that ΔV<0; the molar volume of graphite is larger than the molar volume of liquid carbon. That is, graphite is less dense than liquid carbon. Graphite floats. Another argument, giving the same conclusion, is that at a fixed temperature liquid is the high-pressure phase, so it must be the higher-density phase. 3. (2 points) The vibrational modes of the water molecule have frequencies 1595, 3657 and 3756 cm -1. Which mode contributes most to the zero-point energy? 3756 Which mode contributes most to the heat capacity at 1000 K? 1595
3 4. (3 points) Consider one mole of ideal gas. C P = J/(mol K). A three-step cycle is graphed. I. Isotherm at K from 10.0 L to 20.0 L. II. Isobar from the end of step I, back to 10.0 L. III. Isochore from the end of step II to the beginning of step I, all at 10.0 L. Calculate ΔU, w and ΔS for step I, the reversible isotherm. ΔU = 0 for an ideal gas at constant temperature. w= P dv = nrt dv V = RT ln ( ) = 1740 J Δ S = d q rev T OR Δ S = q rev T = d w T = n R T /V T = w T = R ln ( ) dv = n R d V V = R ln ( ) = 5.76 J/K = 5.76 J/K 5. (4 points) Consider the gas-phase equilibrium I 2 2 I. Both I 2 and I are gases. Assume ideal-gas behavior. gas Δ f G o 298 (kj/mol) Δ f H o 298 (kj/mol) S o 298 (J/mol K) C P at 298 K (J/mol K) I I a) Calculate the equilibrium constant K at 298K. b) Given that the pressure of I 2 at 298 K is 1.0X10-4 bar, calculate the pressure of I. c) At 350 K, is K larger or smaller than at 298 K? You need not calculate K at 350 K, but explain how you know. d) Explain why the heat capacity of I 2 is larger than the heat capacity of I. a) Δ rxn G o 298 = = kj/mol. Or, Δ rxn G o 298 = Δ rxn H o TΔS o = ( ) = = = kj/mol ln K = /( ) = K = b) K = (P I /P o ) 2 / (P I2 /P o ) so P I = P o [ K ] 1/2 = 1 bar [ ] = bar. c) K is larger at larger T because the reaction is endothermic. A test taker might take that as obvious, this being a dissociation reaction, or might calculate Δ rxn H o 298 = = kj/mol. d) The heat capacity of I 2 is larger because of rotation (a contribution of R) and of vibration ( about 0.9R).
4 6. (1 point) Consider the four-state energy level diagram that is sketched at right. Let T=288K, so k B T=200 cm -1. Calculate the canonical partition function, q. 4 q = e E i /(k B T ) = 1 + e 200 /200 + e 400/ /200 + e i=0 q = 1+e 1 +e 2 +e 3 = = (2 points) Consider a nitrogen molecule, N 2, in a volume of m 3. Its mass is kg. At what temperature does the translational partition function, q T, equal ? q T = V Λ 3 = V (2πm k B )3/2 T 3/2 h 3 (2 π m k B ) 3/2 =(2 π kg J/K) 3/2 = (kg m/s) 3 (2 π m k B ) 3/2 /h 3 = m 3 K 3/2 V (2π m k B ) 3/2 /h 3 = m m 3 K 3/2 = 27.8 K 3/2 q T = K 3/2 T 3/2 so T = ( /27.86 K 3/2 ) 2/3 = (3590) 2/3 = 234 K 8. Let E be the translational kinetic energy of one gas molecule. The probability distribution is f (E ) = 2 π E 1/2 (π k B T ) 3/2 e E /(k B T ) ; 0 E a) (2 points) What is the most probable kinetic energy? (Derive a formula.) d f d E = 2π ( 1/2 1 E /(k T) (π kt ) 3/2 e E 1/ 2 2 E k T ) d f d E = 0 for E = 1 2 k B T b) (1 point) For comparison, what is the translational kinetic energy of a molecule that has the average speed? (Again, the answer is a formula, not a number.) average speed = 8 k B T π m so E= 1 2 mv2 = 4 π k B T
5 9. (2 points) Rare earth elements produced in a nuclear reactor may enter liquid sodium coolant. Simulated diffusion of Ce atoms in liquid Na at 1000 K is graphed at right. (Samin, et al., J. Appl. Phys., 118, , 2015). Recall that 1 ps = s, and 1 Å = m. What is the diffusion coefficient, in m 2 /s? < r 2 > = 6Dt so 6D = slope = 3.34 A 2 /ps D = (3.34 /6) (10-10 m) 2 /(10-12 s) D = 5.57 X 10-9 m 2 /s 10. (2 points) Marteza Waskasi, et al., (J. Am. Chem. Soc., 2016, 138, ) measured the rate of electron transfer between a porphyrin cation and a C 60 anion. The two were covalently bound. Data are below. a) At what temperature is the activation energy zero? b) At that temperature, what is the half-life (t 1/2 ) of P + -C - 60? Give t 1/2 in seconds. a) E a =0 where d ln(k R )/d(1/t) =0, so at 1000/T=6.1. T = 1000/6.1 = 164 K. b) ln(k R )=20.65 so k R = s -1. t 1/2 =ln(2)/k R = s.
6 11. Consider the second-order reaction A + B products. The rate law is, rate = k [A] [B]. Initial concentrations are [A] 0 = 0.12 M, [B] 0 = 0.24 M. The reaction is 50.0% complete in 50.0 s. As you may recall, the integrated rate law is ln( [A] 0 [B] [A][B] 0 ) = k ([B] 0 [A] 0 )t. a) (2 points) Calculate the rate coefficient, k. b) (1 point) After how many seconds is the reaction 75.0% complete? [B] 0 -[A] 0 = = 0.12 M. a) At 50% completion, [A]=0.06M and [B] = = 0.18 M. ln k = ( ) = ln(1.5) 0.12 M 50 s 6.0 M s = = M 1 s 1 6 M s b) At 75% completion, [A]=0.03 M and [B] = = 0.15 M. ln t = ( ) M 1 s M = ln(2.5) = = 113 s s s 12. (3 points) Consider the net reaction I - + OCl - OI - + OCl -, which occurs in water. Here is a possible mechanism: k 1 k-1 OCl - + H 2 O HOCl + OH - k 2 I - + HOCl HOI + Cl - a) Based on the initial-rate data, what is the reaction order with respect to OCl -? b) Write the differential rate law for HOCl: d [HOCl ] = d t c) What is the steady-state expression for [HOCl] in terms of OCl -, H 2 O, OH - and rate coefficients? k 3 HOI + OH - H 2 O + OI - [I - ] 0 (mm) [OCl - ] 0 (mm) initial rate (mm/s) a) Doubling [OCl - ] increases the rate by a factor of two, so the order with respect to OCl - is 1. d [HOCl ] b) = k d t 1 [OCl - ] k 1 [HOCl ][OH - ] k 2 [HOCl ][I - ] d [HOCl ] k 1 [OCl - ] c) Setting = 0 gives [HOCl ] d t ss = k 1 [OH - ]+k 2 [I - ]
7 13. (2 points) Guanyi Chen, et al., (Biochemical Engineering Journal, 113, 2016, 86 92) studied biodiesel production catalyzed by bacteria. triglyceride bacteria biodiesel The reaction rate is in mg/min: milligrams of biodiesel produced per minute. The concentration of substrate (triglyceride) is in mg/ml and appears as "C s " on the graph. Methanol was added as an inhibitor. The concentration of methanol is given as percent by volume of the reaction mixture. methanol a) In terms of Michaelis-Menten kinetics, what is the value of R max? b) What sort of inhibitor is methanol: competitive or non-competitive? How do you know? a) R max = 1/intercept = 1/(0.45 min/mg) = 2.2 mg/min. b) Inhibition is competitive because R max is unchanged (constant intercept) while K M (slope R max ) changes. Chen wrote, "higher methanol concentration gives higher slope of lines, but an invariant rmax, indicating that methanol was a competitive inhibitor of enzyme activity."
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