Chemistry Labs

Problem 1

Proton tunneling. Proton tunneling through energy barriers occurs in many hydrogen-bonded species (DNA, proteins). Propanedial (malonaldehyde) is one of the simplest molecules with intramolecular proton transfer. (1.1) Draw the condensed formula of propanedial and the structures of two of its isomers that can exist in equilibrium with it. (1.2) In aqueous solution propanedial is a weak acid comparable to acetic acid. Specify the acidic hydrogen atom and explain its acidity. The energy profile of the intramolecular proton transfer has a symmetric double-well form with two minima separated by d=0.06d = 0.06 nm. (1.3) Draw the structures corresponding to the two minima. The proton oscillates between the two minima L and R with angular frequency ω=6.48×1011\omega = 6.48\times10^{11} s−1^{-1}. The probability density is Ψ2(x,t)=12[ΨL2(x)+ΨR2(x)+(ΨL2(x)−ΨR2(x))cos⁡ωt]\Psi^2(x,t) = \frac{1}{2}[\Psi_L^2(x) + \Psi_R^2(x) + (\Psi_L^2(x) - \Psi_R^2(x))\cos\omega t] where ΨL,ΨR\Psi_L, \Psi_R describe a proton localized in the left and right wells. (1.4) Write expressions for the probability density at t=0t = 0, t=π/(2ω)t = \pi/(2\omega) and t=π/ωt = \pi/\omega. (1.5) Without calculation, determine the probability of finding the proton in the left well at t=π/(2ω)t = \pi/(2\omega). (1.6) How much time is required for a proton to transfer from one well to the other? What is the mean proton speed during transfer? (1.7) Estimate the position uncertainty Δx\Delta x from the double well and calculate the minimal velocity uncertainty Δv\Delta v from the Heisenberg relation Δx⋅m Δv≥ℏ/2\Delta x \cdot m\,\Delta v \ge \hbar/2; compare with the classical speed from (1.6) and draw a conclusion.
Step 1 of 4: Tautomerism and acidity of malonaldehyde
OHC−CHX2−CHO⇌(Z)−HO−CH=CH−CHO;−CHX2− is acidic because the carbanion is conjugated with both carbonyls\ce{OHC-CH2-CHO <=> (Z)-HO-CH=CH-CHO};\quad \ce{-CH2-}\ \text{is acidic because the carbanion is conjugated with both carbonyls}
Analysis

Propanedial has condensed formula OHC−CHX2−CHO\ce{OHC-CH2-CHO}; in water the active methylene hydrogens are acidic because the resulting enolate carbanion is stabilized by resonance across two carbonyls. Tautomerization gives the intramolecularly H-bonded (Z)(Z)-enol, where the proton sits in a symmetric double well between the two oxygen atoms.