TY - JOUR
T1 - Chip-scale reflective optically pumped SERF magnetometer with distributed Bragg reflector
AU - Liu, Lu
AU - Liang, Zihua
AU - Sun, Yuan
AU - Hu, Gen
AU - Zhou, Peng
AU - Hu, Jinsheng
AU - Hou, Gaopu
AU - Zhang, Yuhao
AU - Ye, Mao
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/11
Y1 - 2026/11
N2 - Emerging miniaturized optically pumped magnetometers (OPMs) are attracting widespread attention due to enormous potential in biomagnetic imaging. However, construction of ultrasensitive reflective OPMs within small footprint remains long-standing challenge. In this study, a novel chip-scale femtotesla-level atomic magnetometer is developed with distributed Bragg reflector (DBR) directly integrated onto a microfabricated vapor cell to realize a self-aligned double-pass pumping configuration. The all-dielectric DBR achieves a peak reflectivity of 95% at 795 nm (the Rb D1 line), while maintaining reflectivity above 93% for incident angles up to ± 10°. We integrated the DBR onto the microfabricated vapor cell and performed proof-of-concept experiments in the SERF regime, which show that the double-pass configuration enhances the average electron polarization by 21.92% compared with the single-pass configuration. The DBR-integrated magnetometer achieves a long-term average sensitivity of 10.59 fT/Hz1/2 over 800 s and best instantaneous sensitivity of 6.75 fT/Hz1/2. In comparison, the mirror-based double-pass configuration achieves 10.72 fT/Hz1/2 and 8.54 fT/Hz1/2, respectively, while the corresponding values for the single-pass configuration are 12.24 fT/Hz1/2 and 8.97 fT/Hz1/2. The slightly improved performance of the DBR-integrated configuration over the mirror-based double-pass configuration is attributed to its higher robustness, which eliminates complex external alignment and reduces parasitic reflections. This work presents a scalable, cost-effective approach to high-performance miniaturized OPMs, which further pave the way for future wearable, high-spatial-resolution biomagnetic imaging applications.
AB - Emerging miniaturized optically pumped magnetometers (OPMs) are attracting widespread attention due to enormous potential in biomagnetic imaging. However, construction of ultrasensitive reflective OPMs within small footprint remains long-standing challenge. In this study, a novel chip-scale femtotesla-level atomic magnetometer is developed with distributed Bragg reflector (DBR) directly integrated onto a microfabricated vapor cell to realize a self-aligned double-pass pumping configuration. The all-dielectric DBR achieves a peak reflectivity of 95% at 795 nm (the Rb D1 line), while maintaining reflectivity above 93% for incident angles up to ± 10°. We integrated the DBR onto the microfabricated vapor cell and performed proof-of-concept experiments in the SERF regime, which show that the double-pass configuration enhances the average electron polarization by 21.92% compared with the single-pass configuration. The DBR-integrated magnetometer achieves a long-term average sensitivity of 10.59 fT/Hz1/2 over 800 s and best instantaneous sensitivity of 6.75 fT/Hz1/2. In comparison, the mirror-based double-pass configuration achieves 10.72 fT/Hz1/2 and 8.54 fT/Hz1/2, respectively, while the corresponding values for the single-pass configuration are 12.24 fT/Hz1/2 and 8.97 fT/Hz1/2. The slightly improved performance of the DBR-integrated configuration over the mirror-based double-pass configuration is attributed to its higher robustness, which eliminates complex external alignment and reduces parasitic reflections. This work presents a scalable, cost-effective approach to high-performance miniaturized OPMs, which further pave the way for future wearable, high-spatial-resolution biomagnetic imaging applications.
KW - Biomagnetic imaging
KW - Chip-integrated quantum sensors
KW - Distributed Bragg reflector
KW - Electron polarization uniformity
KW - OPM
KW - SERF magnetometers
UR - https://www.scopus.com/pages/publications/105043593551
U2 - 10.1016/j.optlastec.2026.115885
DO - 10.1016/j.optlastec.2026.115885
M3 - 文章
AN - SCOPUS:105043593551
SN - 0030-3992
VL - 203
JO - Optics and Laser Technology
JF - Optics and Laser Technology
M1 - 115885
ER -