Atomic magnetometer with extended measurement bandwidth
An atomic magnetometer with an extended measurement bandwidth is disclosed. The atomic magnetometer includes coils configured to transmit incident pump light and a bias magnetic field and a vapor cell positioned between the coils and receiving the pump light and the bias magnetic field transmitted from the coils and irradiation light incident from a direction perpendicular to the coils, wherein the vapor cell includes both a first alkali metal atom and a second alkali metal atom, which are isotopes of one of alkali metals.
1 . An atomic magnetometer comprising:
coils configured to transmit incident pump light and a bias magnetic field; and
a vapor cell positioned between the coils and receiving the pump light and the bias magnetic field transmitted from the coils and irradiation light incident from a direction perpendicular to positions of the coils,
wherein the vapor cell comprises both a first alkali metal atom and a second alkali metal atom, which are isotopes of one of alkali metals,
wherein the pump light and the irradiation light do not share a same ground level at energy levels of the first alkali metal atom and the second alkali metal atom.
2 . The atomic magnetometer of claim 1 , wherein a wavelength of the pump light simultaneously acts on an F g =3→F e =2,3 transition of the first alkali metal atom and an F g =2→F e =1,2 transition of the second alkali metal atom.
3 . The atomic magnetometer of claim 1 , wherein the irradiation light is tuned such that irradiation light, which is red-detuned based on an F=1→F′=1 transition of the second alkali metal atom, corresponds to radiation light, which is blue-detuned based on an F=2→F′=3 transition of the first alkali metal atom.
4 . The atomic magnetometer of claim 1 , wherein the vapor cell comprises both 85 Rb and 87 Rb, which are isotopes of rubidium.
5 . The atomic magnetometer of claim 4 , wherein the pump light is tuned to function as first pump light acting on 85 Rb and second pump light acting on 87 Rb.
6 . An atomic magnetometer comprising:
coils configured to transmit incident pump light and a bias magnetic field; and
vapor cells positioned between the coils and receiving the pump light and the bias magnetic field transmitted from the coils and irradiation light incident from a direction perpendicular to positions of the coils,
wherein the vapor cells comprise one of a first alkali metal atom and a second alkali metal atom, which are isotopes of one of alkali metals, and
wherein the bias magnetic field is a gradient magnetic field configured to cause a difference in a magnetic field applied to each of the vapor cells,
wherein the pump light and the irradiation light do not share a same ground level at energy levels of the first alkali metal atom and the second alkali metal atom.
7 . The atomic magnetometer of claim 6 , wherein a wavelength of the pump light simultaneously acts on an F g =3→F e =2,3 transition of the first alkali metal atom and an F g =2→F e =1,2 transition of the second alkali metal atom.
8 . The atomic magnetometer of claim 6 , wherein the irradiation light is tuned such that irradiation light, which is red-detuned based on an F=1→F′=1 transition of the second alkali metal atom, corresponds to radiation light, which is blue-detuned based on an F=2→F′=3 transition of the first alkali metal atom.
9 . An atomic magnetometer comprising:
coils configured to transmit incident pump light and a bias magnetic field;
a first vapor cell comprising both a first alkali metal atom and a second alkali metal atom, which are isotopes of one of alkali metals and receiving the pump light and the bias magnetic field transmitted from the coils and irradiation light incident from a direction perpendicular to positions of the coils; and
a second vapor cell comprising one of the first alkali metal atom or the second alkali metal atom, wherein the irradiation light, the pump light, and the bias magnetic field are incident on the second vapor cell,
wherein the pump light and the irradiation light do not share a same ground level at energy levels of the first alkali metal atom and the second alkali metal atom.
10 . The atomic magnetometer of claim 9 , wherein the second vapor cell is disposed in series with the first vapor cell, wherein the irradiation light, pump light passing through the first vapor cell, and a bias magnetic field are incident on the second vapor cell.
11 . The atomic magnetometer of claim 9 , wherein the second vapor cell is disposed in parallel with the first vapor cell, wherein pump light and a bias magnetic field, which are identical to pump light and a bias magnetic field incident on the first vapor cell, and the irradiation light are incident on the second vapor cell.
12 . The atomic magnetometer of claim 9 , wherein the bias magnetic field is a gradient magnetic field configured to cause a difference in a magnetic field applied to each of the first vapor cell and the second vapor cell.