> If the wavelength of the laser is chosen exactly right ... then maybe a special atomic nucleus could be manipulated with a laser, namely thorium-229. On November 21, 2023, the team was finally successful: the correct energy of the thorium transition was hit exactly, the thorium nuclei delivered a clear signal for the first time. So what's the wavelength? I felt like the article left me hanging. The answer is: 148.3…
Atomic nucleus excited with laser: A breakthrough after decades
31–40 of 229 posts
Re: Atomic nucleus excited with laser: A breakthrough after decades
#32Is there some direct application? Like using the excitation states of different atoms for storing information?
The article directly stated more precise atomic clocks.
Re: Atomic nucleus excited with laser: A breakthrough after decades
#33Now how the heck do you generate ~148.38nm light with a narrow linewidth? Their approach using four-wave mixing inherently results in short pulses. .. and given that it decays through gamma emission, does this mean we could now build an optically pumped gamma ray laser?
Re: Atomic nucleus excited with laser: A breakthrough after decades
#34Now how the heck do you generate ~148.38nm light with a narrow linewidth? Their approach using four-wave mixing inherently results in short pulses. .. and given that it decays through gamma emission, does this mean we could now build an optically pumped gamma ray laser?
A "wavelength converter" might be possible.
PS: Are you sure it's gamma emission? That takes more energy than the exciting UV photon.
Re: Atomic nucleus excited with laser: A breakthrough after decades
#35What does "exciting a nucleus" mean?
It means getting the nucleus to absorb a certain energy above its ground state. Since it is a quantum object, it can only absorb/emit energy in very specific amounts at once (“quanta”). The details of how the nucleus manifests that extra energy are complicated, but you can imagine it as like, picking up a certain vibrational frequency.
Re: Atomic nucleus excited with laser: A breakthrough after decades
#36Earlier quoted context omitted.
The article directly stated more precise atomic clocks.
Not a physicist, so I am asking out of curiosity and to learn: have the limitations to the precision of current atomic clocks posed any problems?
Re: Atomic nucleus excited with laser: A breakthrough after decades
#37> If the wavelength of the laser is chosen exactly right ... then maybe a special atomic nucleus could be manipulated with a laser, namely thorium-229. On November 21, 2023, the team was finally successful: the correct energy of the thorium transition was hit exactly, the thorium nuclei delivered a clear signal for the first time. So what's the wavelength? I felt like the article left me hanging. The answer is: 148.3…
Re: Atomic nucleus excited with laser: A breakthrough after decades
#38What does "exciting a nucleus" mean?
It means getting the nucleus to absorb a certain energy above its ground state. Since it is a quantum object, it can only absorb/emit energy in very specific amounts at once (“quanta”). The details of how the nucleus manifests that extra energy are complicated, but you can imagine it as like, picking up a certain vibrational frequency.
Re: Atomic nucleus excited with laser: A breakthrough after decades
#39Earlier quoted context omitted.
Thorium-229 has two energy states. A ground state, and an excited isometric state. The laser is used to transition the nucleus from the ground state to the excited isometric state.
And then?
Re: Atomic nucleus excited with laser: A breakthrough after decades
#40Earlier quoted context omitted.
And then?
And then the nuclei return to the ground state. That process is probabilistic and measured in half-lives. The key point is that the decay back to ground state happens at a very precise rate that is not influenced by effectively anything, and can be measured accurately. Thus, a clock.
> The decay back to ground state happens at a very precise rate that is not influenced by effectively anything
That sounds contradictory to me.