Collisionless shock heating of heavy ions in SN 1987A
arXiv:1901.10336 · doi:10.1038/s41550-018-0677-8
Abstract
Astrophysical shocks at all scales, from those in the heliosphere up to the cosmological shock waves, are typically "collisionless", because the thickness of their jump region is much shorter than the collisional mean free path. Across these jumps, electrons, protons, and ions are expected to be heated at different temperatures. Supernova remnants (SNRs) are ideal targets to study collisionless processes because of their bright post-shock emission and fast shocks. Although optical observations of Balmer-dominated shocks in young SNRs showed that the post-shock proton temperature is higher than the electron temperature, the actual dependence of the post-shock temperature on the particle mass is still widely debated. We tackle this longstanding issue through the analysis of deep multi-epoch and high-resolution observations of the youngest nearby supernova remnant, SN 1987A, made with the Chandra X-ray telescope. We introduce a novel data analysis method by studying the observed spectra in close comparison with a dedicated full 3-D hydrodynamic simulation. The simulation is able to reproduce self-consistently the whole broadening of the spectral lines of many ions altogether. We can therefore measure the post shock temperature of protons and selected ions through comparison of the model with observations. We have obtained information about the heating processes in collisional shocks by finding that the ion to proton temperature ratio is always significantly higher than one and increases linearly with the ion mass for a wide range of masses and shock parameters.
The final version of this manuscript (including Methods) is published in Nature Astronomy and is publicly available at this link: https://rdcu.be/bhO7Z
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- Electron-Ion Temperature Ratio in Astrophysical Shocks
- Indication of a Pulsar Wind Nebula in the hard X-ray emission from SN 1987A
- Additional evidence for a pulsar wind nebula in the heart of SN 1987A from multi-epoch X-ray data and MHD modeling
- Spectral Evolution of the X-Ray Remnant of SN 1987A: A High-Resolution HETG Study
- Plasma Diagnostics of the Supernova Remnant N132D Using Deep XMM-Newton Observations with the Reflection Grating Spectrometer
- 3D modeling from the onset of the SN to the full-fledged SNR: Role of an initial ejecta anisotropy on matter mixing
- Electron heating in high Mach number collisionless shocks
- RGS Observations of Ejecta Knots in Tycho's Supernova Remnant
- Direct Evidence for Magnetic Reflection of Heavy Ions from High Mach Number Collisionless Shocks
- Density jump as a function of magnetic field for collisionless shocks in pair plasmas: the perpendicular case
- Evidence for thermal X-ray emission from the synchrotron dominated shocks in Tycho's supernova remnant
- Tracing the ejecta structure of SN 1987A: Insights and diagnostics from 3D MHD simulations
- Plasma heating and particle acceleration in collisionless shocks through astrophysical observations
- X-ray Line Diagnostics of Ion Temperature at Cosmic-Ray Accelerating Collisionless Shocks
- Polarized radio emission unveils the structure of the pre-supernova circumstellar magnetic field and the radio emission in SN1987A
- Proof of the zeroth law of turbulence in one-dimensional compressible magnetohydrodynamics and shock heating
- Modeling particle acceleration and non-thermal emission in supernova remnants
- Predicting the X-ray signatures of the imminent T Coronae Borealis outburst through 3D hydrodynamic modeling
- Unusual X-ray Oxygen Line Ratios of SN 1987A Arising From the Absorption of Galactic Hot Interstellar Medium
- Measuring the initial mass of 44Ti in SN 1987A through the 44Sc emission line