A new window in time: a mid-infrared slit spectroscopy mode for precision time-series astronomy with JWST/MIRI
astro-ph.EP, astro-ph.IM
Submitted: 2026-08-04
Updated: 2026-08-04
License: http://creativecommons.org/licenses/by/4.0/
The gist: The Mid-Infrared Instrument (MIRI) on board the James Webb Space Telescope (JWST) provides Low Resolution Spectroscopy (LRS) over 5-12 um at a resolving power of R 100.
Terminology
Abstract
The Mid-Infrared Instrument (MIRI) on board the James Webb Space Telescope (JWST) provides Low Resolution Spectroscopy (LRS) over 5-12 um at a resolving power of R 100. To date, all MIRI LRS time-series observations (TSOs) have been carried out in slitless mode, since long-duration pointing stability within the narrow 4.7'' x 0.51'' slit could not previously be guaranteed, leading to the possibility of degraded TSOs due to jitter. Commissioning activities established the telescope jitter to be less than 1 milliarcsecond (mas), four times less than the initial requirement. It was, therefore, worth assessing the suitability of the MIRI LRS slit as a TSO mode for precision time-domain science; this is the aim of the Cycle 3 program (PID 6219, PI: A. Dyrek). We observed a transit of the exoplanet HAT-P-12b over 10 hours and compared the results to archival slitless observations of the same target (PID 1281, PI: P.-O. Lagage). Two independent data reductions of the transit spectra of both slit and slitless configurations are consistent within 1 sigma, validating the feasibility of the new mode. A joint fit of the slit and slitless observations confirms the presence of a spectral feature near 7.5 um. Using measured JWST pointing variations, we estimated slit-loss variations to be smaller than 40 ppm at 10 um. The drawback of the slitless mode is a higher background. Compellingly, the slit background is 38 times lower on average than in slitless mode, improving sensitivity for faint targets (Jmag 13-15). We also identified time-correlated noise unique to the slit dataset at long wavelengths, which requires further investigation. This new capability of TSOs in slit mode, which will be supported in Cycle 7 (in 2028), opens a new avenue for precision time-series astronomy for faint targets with JWST/MIRI.
Sources
- The Mid-Infrared Instrument for the James Webb Space Telescope: IV. The Low Resolution Spectrometer
- Spectroscopic time series performance of the Mid-Infrared Instrument on the JWST
- Detection of CO$_2$, CO, and H$_2$O in the atmosphere of the warm sub-Saturn HAT-P-12b
- Information content of JWST transmission spectroscopy of the exoplanet HAT-P-12b from the optical to the mid-infrared
- Eureka!: An End-to-End Pipeline for JWST Time-Series Observations
- The Brighter-Fatter Effect in the JWST MIRI Si:As IBC detectors I. Observations, impact on science, and modelling
- batman: BAsic Transit Model cAlculatioN in Python
- dynesty: A Dynamic Nested Sampling Package for Estimating Bayesian Posteriors and Evidences
- Exoplanet Spectroscopy with JWST NIRISS: Diagnostics and Case Studies
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