- Wavelength
- 400nm
1.656518×10⁻²⁷ kg·m/s
Open with these values1.325214×10⁻²⁷ kg·m/s
Result: 1.325214 ×10⁻²⁷ kg·m/sA photon's momentum is the Planck constant divided by its wavelength: p = h / λ. At 500 nm that is 1.325214, in units of 10⁻²⁷ kg·m/s — so 1.325214 × 10⁻²⁷ kg·m/s. Halving the wavelength doubles the momentum, which is why X-ray photons push far harder than red light.
1.656518×10⁻²⁷ kg·m/s
Open with these values1.325214×10⁻²⁷ kg·m/s
Open with these values0.946581×10⁻²⁷ kg·m/s
Open with these valuesp = h / λ, with h = 6.62607015 × 10⁻³⁴ J·s
Light carries momentum without carrying rest mass, and the amount depends on one thing only: the wavelength. The relation is p = h / λ, where h is the Planck constant. Since the 2019 revision of the SI, h is not a measured quantity at all — NIST lists it as exactly 6.626 070 15 × 10⁻³⁴ J Hz⁻¹, with the uncertainty column reading “exact”, because that value now defines the kilogram. So the arithmetic here has no experimental error in it; the only uncertainty is in the wavelength you type. Enter 500 nanometres, the calculator reads it as 5 × 10⁻⁷ metres, divides, and returns 1.325214 × 10⁻²⁷ kg·m/s. The result is displayed in units of 10⁻²⁷ kg·m/s rather than in kilogram-metres per second, because in base units every visible wavelength would show as 0.000000. Wavelength sits in the denominator, so the relation is inverse: halve the wavelength and the momentum doubles. A 400 nm violet photon carries 1.66 of those units, a 700 nm red one 0.95, and a 1 nm X-ray photon 662.6. That is the whole reason X-rays damage tissue while radio waves do not. The same photon can also be described by its energy, E = hc / λ, and the two views are tied together by p = E / c.
NIST prints h as 6.626 070 15 × 10⁻³⁴ J Hz⁻¹ and gives its uncertainty as “exact”. Since the 2019 SI revision the value is fixed by definition and defines the kilogram.
Photon momentum sits around 10⁻²⁷ kg·m/s, so in base units the display would read 0.000000 for every input. The result is therefore counted in units of 10⁻²⁷ kg·m/s.
A photon has zero rest mass, yet p = h / λ is not zero. Summed over many photons this is radiation pressure, the force that drives a solar sail.
They are linked by p = E / c. Since E = hc / λ, dividing by the speed of light returns p = h / λ.
A photon has no mass, so its momentum must be zero.
Rest mass is not what carries momentum for light; wavelength is. p = h / λ is small but real, and it is measurable as radiation pressure.
A longer wavelength means more momentum.
The wavelength sits in the denominator, so it is the other way round. A 400 nm blue photon carries 1.66 units against 0.95 for a 700 nm red one.
I can enter the wavelength in metres.
This field takes nanometres, from 1 to 10,000. Green light at 5 × 10⁻⁷ m is entered as 500.
The answer 1.325214 is in kilogram-metres per second.
It counts units of 10⁻²⁷ kg·m/s, so the momentum is 1.325214 × 10⁻²⁷ kg·m/s. Base units would show 0.000000 for every visible wavelength.
| Wavelength (nm) | Momentum (×10⁻²⁷ kg·m/s) |
|---|---|
| 1 | 662.607015 |
| 100 | 6.626070 |
| 380 | 1.743703 |
| 400 | 1.656518 |
| 500 | 1.325214 |
| 700 | 0.946581 |
| 1000 | 0.662607 |
| 10000 | 0.066261 |
Divide the Planck constant by the wavelength in metres: p = h / λ. A 500 nm photon is 5 × 10⁻⁷ m, giving 1.325214 × 10⁻²⁷ kg·m/s.
Yes. Rest mass is not what carries momentum for light, and p = h / λ is measurable as radiation pressure.
Because the wavelength is in the denominator. Halving it doubles the momentum, so a 400 nm photon beats a 700 nm one.
Kilogram-metres per second, counted in steps of 10⁻²⁷. A reading of 1.325214 means 1.325214 × 10⁻²⁷ kg·m/s.
By the speed of light: p = E / c. Since E = hc / λ, dividing by c gives back p = h / λ.
Yes, since the 2019 SI revision. NIST gives 6.626 070 15 × 10⁻³⁴ J Hz⁻¹ with no uncertainty, because that number now defines the kilogram.
Information, not professional advice.
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