What is the exact ratio of the minimum frequency of the Lyman series to that of the Balmer series? | Atomic Structure — Chem-Mantra | Chem-Mantra

⚗️ Chem-Mantra IChO (Chemistry Olympiad) →

Atomic StructurehardMCQ SINGLE⭐ Must-Do

Question

What is the exact ratio of the minimum frequency of the Lyman series to that of the Balmer series?

Answer: D

💡 Solution & Explanation

Minimum frequency corresponds to the longest wavelength transition. Lyman ($n=2 \to 1$) $\propto R(1 - 1/4) = 3R/4$. Balmer ($n=3 \to 2$) $\propto R(1/4 - 1/9) = 5R/36$. Ratio = $(3/4) / (5/36) = 27/5 = 5.4$.

💬

Still have doubts about this question?

Send it to our AI chemistry tutor on WhatsApp — gets answered in minutes

Ask on WhatsApp →

Practice 22,000+ questions like this

AI-adaptive practice, video lectures, and full IChO (Chemistry Olympiad) content — all in one place.

Explore Courses →Free on YouTube

JEE Advanced · JEE Mains · NEET · IChO · AP Chemistry