Chemistry · General chemistry I · Worked example
Find the wavelength that can break a bond
A bond has a dissociation energy of 400. kJ/mol. What is the longest wavelength of light whose photons can break it?
Energy for one bond
Divide the molar energy by Avogadro’s number: each bond needs 6.64 × 10⁻¹⁹ J.
Solve for the wavelength
Rearrange E = hc/λ to λ = hc/E.
Interpret
2.99 × 10⁻⁷ m is 299 nm, in the ultraviolet. Shorter wavelengths carry more energy and can also break the bond; longer ones, including all visible light, cannot.
Result
299 nm, in the ultraviolet.
Your turn
Can one photon of 650 nm light break that 400. kJ/mol bond?
Show the answer and explanation
No: a mole of 650 nm photons carries only 184 kJ.
Per mole, E = N_A·hc/λ = (6.022 × 10²³)(6.626 × 10⁻³⁴)(2.998 × 10⁸)/(6.50 × 10⁻⁷) = 1.84 × 10⁵ J/mol = 184 kJ/mol, less than half of 400 kJ/mol.
Keep exploring
In Photons & spectrophotometry, enter 400 kJ/mol as the known energy: the studio returns the wavelength, 299 nm.
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