Mid-infrared multiheterodyne spectroscopy with phase-locked quantum cascade lasers

Abstract

Fabry-Pérot (FP) quantum cascade lasers (QCLs) provide purely electronically controlled monolithic sources for broadband mid-infrared (mid-IR) multiheterodyne spectroscopy (MHS), which benefits from the large gain bandwidth of the QCLs without sacrificing the narrowband properties commonly associated with the single mode distributed feedback variant. We demonstrate a FP-QCL based multiheterodyne spectrometer with a short-term noise-equivalent absorption of ∼3 × 10−4/Hz, a mid-IR spectral coverage of 25 cm−1, and very short acquisition time (10 μs) capability. The broadband potential is demonstrated by measuring the absorption spectra of ammonia and isobutane under atmospheric pressure conditions. The stability of the system is enhanced by a two-stage active frequency inter-locking procedure, where the two QCLs are pre-locked with a slow feedback loop based on an analog frequency discriminator, followed by a high bandwidth optical phase-locked loop. The locking system provides a relative frequency stability in the sub kHz range over seconds of integration time. The strength of the technique lies in the ability to acquire spectral information from all optical modes simultaneously and individually, which bodes for a versatile and cost effective spectrometer for mid-IR chemical gas sensing.

Document Details

Document Type
Pub Defense Publication
Publication Date
Apr 03, 2017
Source ID
10.1063/1.4979825

Entities

People

  • Gerard Wysocki
  • Jonas Westberg
  • Lukasz A. Sterczewski

Organizations

  • Defense Advanced Research Projects Agency
  • Princeton University
  • Wrocław University of Science and Technology

Tags

Fields of Study

  • Physics

Readers

  • Optical Physics and Photonics.
  • Systems Analysis and Design

Technology Areas

  • Directed Energy
  • Microelectronics
  • Quantum Computing