English

FRB Energetics and detectability from high redshifts

High Energy Astrophysical Phenomena 2018-11-14 v2

Abstract

We estimate the upper limit redshifts of known FRBs using the dispersion measure (DM) - redshift (zz) relation and derive the upper limit peak luminosity LpL_p and energy EE of FRBs within the observational band. The average zz upper limits range from 0.17 to 3.10, the average LpL_p upper limits range from 1.24×1042erg s11.24 \times 10^{42} \rm erg \ s^{-1} to 7.80×1044erg s17.80 \times 10^{44} \rm erg \ s^{-1}, and the average EE upper limits range from 6.91×10396.91 \times 10^{39} erg to 1.94×10421.94 \times 10^{42} erg. FRB 160102 with DM =2596.1±0.3 pc cm3=2596.1 \pm 0.3 \ {\rm pc \ cm^{-3}} likely has a redshift greater than 3. Assuming that its intrinsic DM contribution from the host and FRB source is DMhost+DMscr100 pc cm3{\rm DM_{host}+DM_{scr}}\sim 100 \ {\rm pc \ cm^{-3}}, such an FRB can be detected up to z3.6z \sim 3.6 by Parkes and by FAST under ideal conditions up to z10.4z \sim 10.4. Assuming that there exist FRBs detectable at z15z\sim 15 by sensitive telescopes such as FAST, the upper limit DM for FRB searches may be set to 9000 pc cm3\sim 9000 \ {\rm pc \ cm^{-3}}. For single-dish telescopes, those with a larger aperture tend to detect more FRBs than those with a smaller aperture if the FRB luminosity function index αL\alpha_{\rm L} is steeper than 2, and vice versa. In any case, large-aperture telescopes such as FAST are more capable of detecting high-zz FRBs, even though most of FRBs detected by them are still from relatively low redshifts.

Keywords

Cite

@article{arxiv.1808.05277,
  title  = {FRB Energetics and detectability from high redshifts},
  author = {Bing Zhang},
  journal= {arXiv preprint arXiv:1808.05277},
  year   = {2018}
}

Comments

8 pages, ApJL, in press

R2 v1 2026-06-23T03:35:11.086Z