What did we learn from gamma-ray burst 080319B?

被引:52
作者
Kumar, P. [1 ]
Panaitescu, A. [2 ]
机构
[1] Univ Texas Austin, Dept Astron, Austin, TX 78712 USA
[2] Los Alamos Natl Lab, Los Alamos, NM 87545 USA
关键词
radiation mechanisms: non-thermal; shock waves; gamma-rays: bursts;
D O I
10.1111/j.1745-3933.2008.00546.x
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The optical and gamma-ray observations of GRB 080319B allow us to provide a broad-brush picture for this remarkable burst. The data indicate that the prompt optical and gamma-ray photons were possibly produced at the same location but by different radiation processes: synchrotron and synchrotron self-Compton, respectively (but we note that this interpretation of the gamma-ray data faces some difficulties). We find that the burst prompt optical emission was produced at a distance of 10(16.3) cm by an ultrarelativistic source moving at Lorentz factor of similar to 500. A straightforward inference is that about 10 times more energy must have been radiated at tens of GeV than that released at 1 MeV. Assuming that the GRB outflow was baryonic and the gamma-ray source was shock-heated plasma, the collimation-corrected kinetic energy of the jet powering GRB 080319B was larger than 10(52.3) erg. The decay of the early afterglow optical emission (up to 1 ks) is too fast to be attributed to the reverse-shock crossing the GRB ejecta but is consistent with the expectations for the 'large-angle' emission released during the burst. The pure power-law decay of the optical afterglow flux from 1 ks to 10 d is most naturally identified with the (synchrotron) emission from the shock propagating into a wind-like medium. However, the X-ray afterglow requires a departure from the standard blast-wave model.
引用
收藏
页码:L19 / L23
页数:5
相关论文
共 39 条
[1]   Observation of contemporaneous optical radiation from a γ-ray burst [J].
Akerlof, C ;
Balsano, R ;
Barthelmy, S ;
Bloch, J ;
Butterworth, P ;
Casperson, D ;
Cline, T ;
Fletcher, S ;
Frontera, F ;
Gisler, G ;
Heise, J ;
Hills, J ;
Kehoe, R ;
Lee, B ;
Marshall, S ;
McKay, T ;
Miller, R ;
Piro, L ;
Priedhorsky, W ;
Szymanski, J ;
Wren, J .
NATURE, 1999, 398 (6726) :400-402
[2]  
BLOOM JS, 2008, ARXIV08033215
[3]   Gamma-ray burst environments and progenitors [J].
Chevalier, RA ;
Li, ZY .
ASTROPHYSICAL JOURNAL, 1999, 520 (01) :L29-L32
[4]  
Cucchiara A., 2008, 7456 GCN
[5]  
CUMMINGS J, 2008, 7462 GCN
[6]   Evidence for supernova signatures in the spectrum of the late-time bump of the optical afterglow of GRB 021211 [J].
Della Valle, M ;
Malesani, D ;
Benetti, S ;
Testa, V ;
Hamuy, M ;
Antonelli, LA ;
Chincarini, G ;
Cocozza, G ;
Covino, S ;
D'Avanzo, P ;
Fugazza, D ;
Ghisellini, G ;
Gilmozzi, R ;
Lazzati, D ;
Mason, E ;
Mazzali, P ;
Stella, L .
ASTRONOMY & ASTROPHYSICS, 2003, 406 (02) :L33-L37
[7]   An online repository of Swift/XRT light curves of γ-ray bursts [J].
Evans, P. A. ;
Beardmore, A. P. ;
Page, K. L. ;
Tyler, L. G. ;
Osborne, J. P. ;
Goad, M. R. ;
O'Brien, P. T. ;
Vetere, L. ;
Racusin, J. ;
Morris, D. ;
Burrows, D. N. ;
Capalbi, M. ;
Perri, M. ;
Gehrels, N. ;
Romano, P. .
ASTRONOMY & ASTROPHYSICS, 2007, 469 (01) :379-385
[8]   Late internal-shock model for bright X-ray flares in gamma-ray burst afterglows and GRB 011121 [J].
Fan, YZ ;
Wei, DM .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2005, 364 (01) :L42-L46
[9]  
Fenimore E., 1997, ALL SKY XRAY OBSERVA, P167
[10]   Beaming in gamma-ray bursts: Evidence for a standard energy reservoir [J].
Frail, DA ;
Kulkarni, SR ;
Sari, R ;
Djorgovski, SG ;
Bloom, JS ;
Galama, TJ ;
Reichart, DE ;
Berger, E ;
Harrison, FA ;
Price, PA ;
Yost, SA ;
Diercks, A ;
Goodrich, RW ;
Chaffee, F .
ASTROPHYSICAL JOURNAL, 2001, 562 (01) :L55-L58