On the Ortho:Para Ratio of H3+ in Diffuse Molecular Clouds
arXiv:1101.4641 · doi:10.1088/0004-637X/729/1/15
Abstract
The excitation temperature T_01 derived from the relative intensities of the J = 0 (para) and J = 1 (ortho) rotational levels of H2 has been assumed to be an accurate measure of the kinetic temperature in interstellar environments. In diffuse molecular clouds, the average value of T_01 is ~70 K. However, the excitation temperature T(H3+) derived from the (J,K) = (1,1) (para) and (1,0) (ortho) rotational levels of H3+ has been observed to be ~30 K in the same types of environments. In this work, we present observations of H3+ in three additional diffuse cloud sight lines for which H2 measurements are available, showing that in 4 of 5 cases T_01 and T(H3+) are discrepant. We then examine the thermalization mechanisms for the ortho:para ratios of H3+ and H2, concluding that indeed T_01 is an accurate measure of the cloud kinetic temperature, while the ortho:para ratio of H3+ need not be thermal. By constructing a steady-state chemical model taking into account the nuclear-spindependence of reactions involving H3+, we show that the ortho:para ratio of H3+ in diffuse molecular clouds is likely governed by a competition between dissociative recombination with electrons and thermalization via reactive collisions with H2.
13 pages, 8 figures, 5 tables, accepted for publication in ApJ
References in corpus (2)
Cited by in corpus (24)
- Investigating the Cosmic-Ray Ionization Rate in the Galactic Diffuse Interstellar Medium through Observations of H3+
- Chemical evolution of turbulent protoplanetary disks and the Solar nebula
- Interstellar chemistry of nitrogen hydrides in dark clouds
- Nitrogen hydrides and the H2 ortho-to-para ratio in dark clouds
- The Deuterium Fractionation Timescale in Dense Cloud Cores: A Parameter Space Exploration
- Isotopic Anomalies in Primitive Solar System Matter: Spin-state Dependent Fractionation of Nitrogen and Deuterium in Interstellar Clouds
- Chemistry in Disks. IX. Observations and modeling of HCO+ and DCO+ in DM Tau
- HD depletion in starless cores
- The Deuterium Fraction in Massive Starless Cores and Dynamical Implications
- Detection of interstellar ortho-D2H+ with SOFIA
- Widespread deuteration across the IRDC G035.39-00.33
- First Time-dependent Study of H2 and H3+ Ortho-Para Chemistry in the Diffuse Interstellar Medium: Observations Meet Theoretical Predictions
- The ortho-to-para ratio of water in interstellar clouds
- The Low-Temperature Nuclear Spin Equilibrium of H3+ in Collisions with H2
- Physical and chemical modeling of the starless core L1512
- Ortho-to-para ratio of NH2. Herschel-HIFI observations of ortho- and para-NH2 rotational transitions towards W31C, W49N, W51 and G34.3+0.1
- On the role of the H2 ortho:para ratio in gravitational collapse during star formation
- H ortho-to-para conversion on grains: A route to fast deuterium fractionation in dense cloud cores?
- The ortho-to-para ratio of HCl: Quasi-classical trajectory calculations and new simulations in light of new observations
- The ortho-to-para ratio of interstellar NH: Quasi-classical trajectory calculations and new simulations
- Absorption Line Observations of H and CO in Sight Lines Toward the Vela and W28 Supernova Remnants
- Deuterium fractionation of the starless core L 1498
- Role of NH3 Binding Energy in the Early Evolution of Protostellar Cores
- Chemical analysis of prestellar cores in Ophiuchus yields short timescales and rapid collapse