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Thermal and mechanical stability enhancement of a 635 nm Littman-type external cavity diode laser
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DOI:10.3389/fphy.2026.1789490.png)
Abstract
En 中文
Precise wavelength control in Littman-type external cavity diode laser (ECDL) is crucial for high-resolution spectroscopy and metrology, yet their stability is often limited by thermo-mechanical perturbations. Despite active temperature control of the laser diode, the thermal and mechanical response of the entire cavity structure remains a critical challenge. This study investigates these effects using a multi-physics coupled three-dimensional finite-element model, incorporating realistic parameters of the laser diode, diffraction grating, mirror assembly, and thermoelectric controller to analyze temperature distribution, thermal stress, and structural deformation under varying ambient temperatures. The results show that while active temperature control effectively suppresses thermal fluctuations in the laser diode, significant temperature non-uniformity develops on the diffraction grating as the ambient temperature increases, with the surface temperature difference rising from 3.31 K to 6.91 K. Thermally induced structural deformation leads to changes of 0.453 mu m in the internal cavity length, 10.983 mu m in the external cavity length, and an angular deviation of 0.022 in the optical feedback path. These coupled effects result in an output wavelength drift of 0.191 nm (corresponding to a wavelength-temperature sensitivity of 9.55 pm/K), exceeding the stability requirements for precision wavelength control. The analysis clarifies the dominant thermo-mechanical mechanisms limiting wavelength stability in Littman-type ECDL and provides guidance for structural and thermal optimization in precision laser applications. A subsequent sensitivity analysis reveals that under realistic thermoelectric controller (TEC) stabilization (+/- 0.01 K), the thermo-mechanically induced wavelength drift is suppressed to +/- 0.0955 pm, validating the engineering relevance of the proposed model.
Keywords:
external cavity diode laser
optical stability
structural deformation
thermal simulation
thermo-mechanical coupling
wavelength drift
Journal
F
IF:
2.1
Papers:
200
Citations:
0
