Gamma-ray burst studies with wide-field X-ray detectors on a SmallSat platform

被引:0
作者
Fuchs, Jared E. [1 ]
Veres, Peter [2 ]
Briggs, Michael S. [2 ]
Jenke, Peter [2 ]
机构
[1] Univ Alabama Huntsville, Dept Phys, Huntsville, AL 35899 USA
[2] Univ Alabama Huntsville, Dept Space Sci, Huntsville, AL USA
关键词
gamma-ray bursts; X-ray; CubeSats; SmallSats; high-energy instruments; astrophysics; ANTIREFLECTIVE SURFACE-STRUCTURES; PERFORMANCE; FILMS; SIO2;
D O I
10.1117/1.JATIS.10.2.026003
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
. The study of gamma-ray burst (GRB) jets has focused predominantly on the gamma-ray portion of the spectral energy distribution (SED) to understand jet properties and their physics. Recent theoretical development has turned to the lower-energy side of the SED to test competing jet models. We considered the application of wide-field X-ray detectors to extend the observation of the SED and for better distinguishing spectral models, aimed at resolving theoretical features existing at or below the sensitivity of missions such as Fermi and Swift. A proposed SmallSat reference mission is introduced, and analysis is conducted on simulated GRBs to determine its improvement in understanding the SED compared with the Fermi-gamma-ray burst monitor (GBM). Detection rates of the reference mission are simulated using a GRB population model and convolved with the energy flux needed to resolve models to find estimated rates of GRBs that the reference mission can resolve better than Fermi-GBM. We discuss the methods and results along with the scientific context for this type of mission.
引用
收藏
页数:28
相关论文
共 27 条
[1]  
Busse LE, 2017, CONF LASER ELECTR
[2]   Review of antireflective surface structures on laser optics and windows [J].
Busse, Lynda E. ;
Frantz, Jesse A. ;
Shaw, L. Brandon ;
Aggarwal, Ishwar D. ;
Sanghera, Jasbinder S. .
APPLIED OPTICS, 2015, 54 (31) :F303-F310
[3]   Anti-reflective surface structures for spinel ceramics and fused silica windows, lenses and optical fibers [J].
Busse, Lynda E. ;
Florea, Catalin M. ;
Frantz, Jesse A. ;
Shaw, L. Brandon ;
Aggarwal, Ishwar D. ;
Poutous, Menelaos K. ;
Joshi, Rajendra ;
Sanghera, Jas S. .
OPTICAL MATERIALS EXPRESS, 2014, 4 (12) :2504-2515
[4]   Design of optical path for wide-angle gradient-index antireflection coatings [J].
Chen, Minfeng ;
Chang, Hung-chun ;
Chang, Allan S. P. ;
Lin, Shawn-Yu ;
Xi, J.-Q. ;
Schubert, E. F. .
APPLIED OPTICS, 2007, 46 (26) :6533-6538
[5]  
Hattori H, 2001, ADV MATER, V13, P51, DOI 10.1002/1521-4095(200101)13:1<51::AID-ADMA51>3.3.CO
[6]  
2-6
[7]   Update on the development of high performance anti-reflecting surface relief micro-structures [J].
Hobbs, Douglas S. ;
MacLeod, Bruce D. ;
Riccobono, Juanita R. .
WINDOW AND DOME TECHNOLOGIES AND MATERIALS X, 2007, 6545
[8]   Characterization of SiO2 and TiO2 films prepared using rf magnetron sputtering and their application to anti-reflection coating [J].
Jeong, SH ;
Kim, JK ;
Kim, BS ;
Shim, SH ;
Lee, BT .
VACUUM, 2004, 76 (04) :507-515
[9]  
Joshi R., 2019, NOVEL OPT MAT APPL, pNoW2D3, DOI [10.1364/NOMA.2019.NoW2D.3, DOI 10.1364/NOMA.2019.NOW2D.3]
[10]  
Kaminski PM, 2014, 2014 IEEE 40TH PHOTOVOLTAIC SPECIALIST CONFERENCE (PVSC), P2778, DOI 10.1109/PVSC.2014.6925506