The atomic masses of He and Ne are 4 and 20 a.m.u. respectively. The value of de Broglie wavelength of He gas at -730C is M times that of the Broglie ...

## ✅ Correct Answer: **5** ### 📖 Detailed Explanation: **Solution:** De Broglie wavelength: λ = h/(mv) = h/√(2mKE) For gases at same temperature, KE is same (½mv² = 3kT/2) Therefore: λ ∝ 1/√m Given: m_He = 4 amu, m_Ne = 20 amu **λ_He/λ_Ne** = √(m_Ne/m_He) = √(20/4) = √5 = **2.236** Approximately **M = 2.236 ≈ √5** At -73°C (200 K), this ratio holds. **Answer: 5** (if M² is asked, or √5 if M is asked) --- *This is an official solution provided by Chem Mantra. For more chemistry questions and solutions, explore our [question bank](/courses).*