Qingyuan Tian, Ruyue Cui, Chaofan Feng, Gang Wang, Yongyong Hu, Yifan Chen, Chenglong Wang, Yixin Zhang, Jialiang Dai, Weidong Chen, Hongpeng Wu, Lei Dong
Tunable diode laser absorption spectroscopy (TDLAS) provides high sensitivity, superior spectral resolution, and a fast response for quantitative gas analysis across applications such as greenhouse gas monitoring, industrial process control, combustion diagnostics, and respiratory medicine. However, the traditional Herriott multipass cell (MPC)─a key optical component in TDLAS─faces challenges due to its large physical size, low mirror utilization efficiency, and strict alignment requirements, limiting portability and field deployment. In this work, we designed and fabricated a compact rectangular-like Herriott cell (RLHC) with a 12.7 m optical path length and physical dimensions of 9.00 × 6.60 × 3.45 cm 3 (closed-cell volume ∼58.9 mL), representing the smallest MPC reported for a comparable path length. By transforming a circular (24 mm diameter) beam-spot distribution into an elliptical one (24 mm long axis and 6 mm short axis) and folding the optical axis six times using two high-reflectivity plane mirrors, the RLHC achieves a fill factor of 21.9 cm –2 . Integration of a fiber-coupled collimator and an InGaAs photodetector eliminates the need for active optical alignment, resulting in a self-contained sensing module. Using a 1.65 μm distributed feedback laser, the RLHC-based methane sensor achieves a minimum detection limit (MDL) of 38.93 ppbv and a noise-equivalent absorption coefficient of 1.36 × 10 –5 Hz –1/2 (approximately an order of magnitude lower than conventional TDLAS systems). Continuous three-day measurements near sewage systems and in ambient air demonstrate strong robustness and long-term stability, underscoring the potential of RLHC-based TDLAS sensors for distributed environmental monitoring, hand-held operation, and large-scale field applications.