TY - JOUR
T1 - Enhanced Libbrecht-Hall current source
T2 - small-signal modeling and dual-mode temperature suppression
AU - Xie, Wenxiang
AU - Zhou, Xinxiu
AU - Cao, Cong
AU - Wen, Ke
AU - Wang, Le
AU - Pan, Runqi
AU - Liu, Jiaoling
AU - Hang, Shimin
AU - Shang, Jingcheng
N1 - Publisher Copyright:
© 2025
PY - 2026/1/15
Y1 - 2026/1/15
N2 - Power stability in laser systems is crucial for spin-exchange relaxation-free (SERF) atomic devices, where current fluctuations can significantly degrade measurement precision. Traditional current source designs which drive the laser diodes are particularly susceptible to temperature fluctuations, which severely compromise their stability performance and limit their practical applications. This paper presents an enhanced Libbrecht-Hall current source that addresses these challenges through a systematic approach to stability optimization. A comprehensive small-signal mathematical model was developed to identify critical factors affecting system performance, revealing the necessity for advanced compensation techniques. To enhance system stability, a parallel-series RC compensation network was implemented based on this analysis, effectively expanding the bandwidth to 5.7 MHz and reinforcing stability. This enhanced bandwidth, together with the detailed analysis of error sources—both calibratable and non-calibratable—enabled the implementation of a novel dual-mode temperature suppression technique. This integrated approach yields exceptional performance metrics: achieving a current stability of 0.5 ppm over 48 h at maximum current output, maintaining output linearity with deviations below 0.5 µA, and demonstrating superior temperature independence compared to conventional designs. To the best of our knowledge, this design achieves the smallest temperature drift coefficient among current source systems. By driving laser diodes (LDs) with exceptional stability and precision, this design enables significant improvements in performance. These results make the high-precision current source particularly suitable for demanding SERF-based atomic sensor applications, where highly stable and precise current control is critical.
AB - Power stability in laser systems is crucial for spin-exchange relaxation-free (SERF) atomic devices, where current fluctuations can significantly degrade measurement precision. Traditional current source designs which drive the laser diodes are particularly susceptible to temperature fluctuations, which severely compromise their stability performance and limit their practical applications. This paper presents an enhanced Libbrecht-Hall current source that addresses these challenges through a systematic approach to stability optimization. A comprehensive small-signal mathematical model was developed to identify critical factors affecting system performance, revealing the necessity for advanced compensation techniques. To enhance system stability, a parallel-series RC compensation network was implemented based on this analysis, effectively expanding the bandwidth to 5.7 MHz and reinforcing stability. This enhanced bandwidth, together with the detailed analysis of error sources—both calibratable and non-calibratable—enabled the implementation of a novel dual-mode temperature suppression technique. This integrated approach yields exceptional performance metrics: achieving a current stability of 0.5 ppm over 48 h at maximum current output, maintaining output linearity with deviations below 0.5 µA, and demonstrating superior temperature independence compared to conventional designs. To the best of our knowledge, this design achieves the smallest temperature drift coefficient among current source systems. By driving laser diodes (LDs) with exceptional stability and precision, this design enables significant improvements in performance. These results make the high-precision current source particularly suitable for demanding SERF-based atomic sensor applications, where highly stable and precise current control is critical.
KW - Dual-mode temperature suppression
KW - Libbrecht-Hall current source
KW - SERF
KW - Small-signal model
UR - https://www.scopus.com/pages/publications/105012966230
U2 - 10.1016/j.measurement.2025.118654
DO - 10.1016/j.measurement.2025.118654
M3 - 文章
AN - SCOPUS:105012966230
SN - 0263-2241
VL - 257
JO - Measurement: Journal of the International Measurement Confederation
JF - Measurement: Journal of the International Measurement Confederation
M1 - 118654
ER -