Astrochemical Correlations in Molecular Clouds
arXiv:1412.2754 · doi:10.1088/0004-637X/799/2/235
Abstract
We investigate the spectral correlations between different species used to observe molecular clouds. We use hydrodynamic simulations and a full chemical network to study the abundances of over 150 species in typical Milky Way molecular clouds. We perform synthetic observations in order to produce emission maps of a subset of these tracers. We study the effects of different lines of sight and spatial resolution on the emission distribution and perform a robust quantitative comparison of the species to each other. We use the Spectral Correlation Function (SCF), which quantifies the root mean squared difference between spectra separated by some length scale, to characterize the structure of the simulated cloud in position-position-velocity (PPV) space. We predict the observed SCF for a broad range of observational tracers, and thus, identify homologous species. In particular, we show that the pairs C and CO, C and CN, NH and HCS have very similar SCFs. We measure the SCF slope variation as a function of beam size for all species and demonstrate that the beam size has a distinct effect on different species emission. However, for beams of up to 10", placing the cloud at 1 kpc, the change is not large enough to move the SCF slopes into different regions of parameter space. The results from this study provide observational guidance for choosing the best tracer to probe various cloud length scales.
Accepted by ApJ. 19 pages, 13 figures
References in corpus (8)
- Theory of Star Formation
- Cold Dark Clouds: The Initial Conditions for Star Formation
- The COMPLETE Survey of Star-Forming Regions: Phase I Data
- An Ammonia Spectral Atlas of Dense Cores in Perseus
- Molecular line intensities as measures of cloud masses - I. Sensitivity of CO emissions to physical parameter variations
- Multidimensional chemical modelling, II. Irradiated outflow walls
- A clumpy-cloud PDR model of the global far-infrared line emission of the Milky Way
- Some like it cold: molecular emission and effective dust temperatures of dense cores in the Pipe Nebula
Cited by in corpus (11)
- Effective destruction of CO by cosmic rays: implications for tracing H gas in the Universe
- The Green Bank Ammonia Survey: Dense Cores Under Pressure in Orion A
- The Astrochemical Impact of Cosmic Rays in Protoclusters I: Molecular Cloud Chemistry
- TurbuStat: Turbulence Statistics in Python
- The Green Bank Ammonia Survey: A Virial Analysis of Gould Belt Clouds in Data Release 1
- Identifying Tools for Comparing Simulations and Observations of Spectral-line Data Cubes
- An Exploration of the Statistical Signatures of Stellar Feedback
- TIMES I: a Systematic Observation in Multiple Molecular Lines Toward the Orion A and Ophiuchus Clouds
- The link between gas and stars in the S254-S258 star-forming region
- The CARMA-NRO Orion Survey: Statistical Signatures of Feedback in the Orion A Molecular Cloud
- Probing the cold and warm molecular gas in the Whirlpool Galaxy: Herschel SPIRE-FTS Observations of the central region of M51 (NGC 5194)