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Tests of General Relativity with GW150914.

Authors :
Abbott BP
Abbott R
Abbott TD
Abernathy MR
Acernese F
Ackley K
Adams C
Adams T
Addesso P
Adhikari RX
Adya VB
Affeldt C
Agathos M
Agatsuma K
Aggarwal N
Aguiar OD
Aiello L
Ain A
Ajith P
Allen B
Allocca A
Altin PA
Anderson SB
Anderson WG
Arai K
Araya MC
Arceneaux CC
Areeda JS
Arnaud N
Arun KG
Ascenzi S
Ashton G
Ast M
Aston SM
Astone P
Aufmuth P
Aulbert C
Babak S
Bacon P
Bader MK
Baker PT
Baldaccini F
Ballardin G
Ballmer SW
Barayoga JC
Barclay SE
Barish BC
Barker D
Barone F
Barr B
Barsotti L
Barsuglia M
Barta D
Bartlett J
Bartos I
Bassiri R
Basti A
Batch JC
Baune C
Bavigadda V
Bazzan M
Behnke B
Bejger M
Bell AS
Bell CJ
Berger BK
Bergman J
Bergmann G
Berry CP
Bersanetti D
Bertolini A
Betzwieser J
Bhagwat S
Bhandare R
Bilenko IA
Billingsley G
Birch J
Birney R
Birnholtz O
Biscans S
Bisht A
Bitossi M
Biwer C
Bizouard MA
Blackburn JK
Blair CD
Blair DG
Blair RM
Bloemen S
Bock O
Bodiya TP
Boer M
Bogaert G
Bogan C
Bohe A
Bojtos P
Bond C
Bondu F
Bonnand R
Boom BA
Bork R
Boschi V
Bose S
Bouffanais Y
Bozzi A
Bradaschia C
Brady PR
Braginsky VB
Branchesi M
Brau JE
Briant T
Brillet A
Brinkmann M
Brisson V
Brockill P
Brooks AF
Brown DA
Brown DD
Brown NM
Buchanan CC
Buikema A
Bulik T
Bulten HJ
Buonanno A
Buskulic D
Buy C
Byer RL
Cadonati L
Cagnoli G
Cahillane C
Calderón Bustillo J
Callister T
Calloni E
Camp JB
Cannon KC
Cao J
Capano CD
Capocasa E
Carbognani F
Caride S
Casanueva Diaz J
Casentini C
Caudill S
Cavaglià M
Cavalier F
Cavalieri R
Cella G
Cepeda CB
Cerboni Baiardi L
Cerretani G
Cesarini E
Chakraborty R
Chalermsongsak T
Chamberlin SJ
Chan M
Chao S
Charlton P
Chassande-Mottin E
Chen HY
Chen Y
Cheng C
Chincarini A
Chiummo A
Cho HS
Cho M
Chow JH
Christensen N
Chu Q
Chua S
Chung S
Ciani G
Clara F
Clark JA
Cleva F
Coccia E
Cohadon PF
Colla A
Collette CG
Cominsky L
Constancio M
Conte A
Conti L
Cook D
Corbitt TR
Cornish N
Corsi A
Cortese S
Costa CA
Coughlin MW
Coughlin SB
Coulon JP
Countryman ST
Couvares P
Cowan EE
Coward DM
Cowart MJ
Coyne DC
Coyne R
Craig K
Creighton JD
Cripe J
Crowder SG
Cumming A
Cunningham L
Cuoco E
Dal Canton T
Danilishin SL
D'Antonio S
Danzmann K
Darman NS
Dattilo V
Dave I
Daveloza HP
Davier M
Davies GS
Daw EJ
Day R
DeBra D
Debreczeni G
Degallaix J
De Laurentis M
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Del Pozzo W
Denker T
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Dergachev V
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Di Giovanni M
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Kinzel DL
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Kleybolte L
Klimenko S
Koehlenbeck SM
Kokeyama K
Koley S
Kondrashov V
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Korth WZ
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Lackey BD
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Lazzarini A
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Lebigot EO
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Letendre N
Levin Y
Levine BM
Li TG
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Littenberg TB
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Logue J
Lombardi AL
London LT
Lord JE
Lorenzini M
Loriette V
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Losurdo G
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Magee RM
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Mason K
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Massinger TJ
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Source :
Physical review letters [Phys Rev Lett] 2016 Jun 03; Vol. 116 (22), pp. 221101. Date of Electronic Publication: 2016 May 31.
Publication Year :
2016

Abstract

The LIGO detection of GW150914 provides an unprecedented opportunity to study the two-body motion of a compact-object binary in the large-velocity, highly nonlinear regime, and to witness the final merger of the binary and the excitation of uniquely relativistic modes of the gravitational field. We carry out several investigations to determine whether GW150914 is consistent with a binary black-hole merger in general relativity. We find that the final remnant's mass and spin, as determined from the low-frequency (inspiral) and high-frequency (postinspiral) phases of the signal, are mutually consistent with the binary black-hole solution in general relativity. Furthermore, the data following the peak of GW150914 are consistent with the least-damped quasinormal mode inferred from the mass and spin of the remnant black hole. By using waveform models that allow for parametrized general-relativity violations during the inspiral and merger phases, we perform quantitative tests on the gravitational-wave phase in the dynamical regime and we determine the first empirical bounds on several high-order post-Newtonian coefficients. We constrain the graviton Compton wavelength, assuming that gravitons are dispersed in vacuum in the same way as particles with mass, obtaining a 90%-confidence lower bound of 10^{13}  km. In conclusion, within our statistical uncertainties, we find no evidence for violations of general relativity in the genuinely strong-field regime of gravity.

Details

Language :
English
ISSN :
1079-7114
Volume :
116
Issue :
22
Database :
MEDLINE
Journal :
Physical review letters
Publication Type :
Academic Journal
Accession number :
27314708
Full Text :
https://doi.org/10.1103/PhysRevLett.116.221101