Compare the de Broglie wavelength of an electron moving at 1.30×107 miles per hour (5.81×106 m/s) to that of a bullet moving at 700 miles per hour (313 m/s) and a golf ball with a speed of 70.0 miles per hour (31.3 m/s).Which region of the electromagnetic spectrum are each of these wavelengths near?A. Ultraviolet 10-8 to 10-7 metersB. X-ray 10-11 to 10-8 metersC. Gamma ray 10-16 to 10-11 metersD. Smaller than 10-20 meters. Cannot detect wave-like properties. Only particle-like behavior will be observable.Particle Mass (kg) Velocity (m/s) Wavelength (m) Regionelectron 9.11×10-31 5.81×106 ____ _bullet 1.90×10-3 313 __ _golf ball 4.50×10-2 31.3 _

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moya1316 moya1316 · Answer 1 · 2019-10-31T08:24:34+01:00

Answer:

electron λ = 12.5 nm , bullet λ = 1.11 10⁻³³ m and golf ball λ = 4.7 10⁻³⁴ m

Explanation:

The Broglie wave duality principle states that all matter has wave and particle properties, it is expressed by the equation

p = h / λ

Where lam is called broglie wavelength

Let's use the definition of momentum

p = mv

Let's calculate the wavelengths

-Electron

mv = h /λ

λ = h / mv

λ = 6.63 10⁻³⁴ / (9.1 10⁻³¹ 5.81 10⁶)

λ = 1.25 10⁻¹⁰ m

λ = 12.5 nm

This is the X-ray region

-bullet

λ = 6.63 10⁻³⁴ / (1.90 10⁻³ 313)

λ = 1.11 10⁻³³ m

It is too small, only particle characteristics are observed

-Golf ball

λ = 6.63 10⁻³⁴ / (4.50 10⁻² 31.3)

λ = 4.7 10⁻³⁴ m

Too small, only particle characteristics are visible