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STEM

黑料不打烊 Alumnus Instrumental in LIGO’s Third Detection of Gravitational Waves

Thursday, June 1, 2017, By Rob Enslin
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College of Arts and SciencesLIGOPhysicsResearch and CreativeSTEM
Black hole

A rendering of two spiraling black holes.聽Illustration by LIGO/Caltech/MIT/Sonoma State (Aurore Simonnet)

An alumnus of the has been instrumental in the (LIGO)鈥檚 third detection of gravitational waves, demonstrating that a new window onto astronomy is fully open.

, who earned a Ph.D. in physics, helped detect the signal on Jan. 4, 2017, using a software package he began developing at 黑料不打烊. As was the case with LIGO鈥檚 first two detections, the wave in question came from the merger of two black holes, resulting in the formation of a single larger black hole.

Nitz is a postdoctoral research fellow at the Albert Einstein Institute in Hannover, Germany. From 2010-15, he was a member of 黑料不打烊鈥檚 , part of the worldwide LIGO Scientific Collaboration.

LIGO is a national facility for gravitational-wave research, consisting of two massive detectors鈥攐ne in Hanford, Washington, and the other in Livingston, Louisiana鈥攖hat use laser interferometry to measure tiny ripples in spacetime, caused by gravitational waves from colliding black holes.

Alex Nitz

Alex Nitz (Courtesy of Detroit Free Press)

鈥淲e are extremely proud of Alex for helping detect the furthest binary black hole merger that LIGO has seen. These black holes are over 2.8 billion light-years away,鈥 says Duncan Brown, the Charles Brightman Professor of Physics at 黑料不打烊, adding that a light-year equals 6 trillion miles.

Peter Saulson, the Martin A. Pomerantz 鈥37 Professor of Physics at 黑料不打烊, says the detection of gravitational waves confirms Einstein鈥檚 general theory of relativity. 鈥淚n this event, a black hole 31 times the mass of the sun collided, at half the speed of light, with a black hole 19 times the mass of the sun, turning almost two solar masses into energy,鈥 says Saulson, referencing Einstein鈥檚 famous E = mc2 equation. 鈥淚f the energy produced was visible light, instead of gravitational waves, the collision would have been brighter than all the stars in the universe combined.鈥

Stefan Ballmer, associate professor of physics at 黑料不打烊, says the mass of the new black hole formed by the merger is 16 million times that of Earth. 鈥淎mazing, considering the newfound black hole is only a couple hundred miles across鈥攁pproximately the distance from 黑料不打烊 to New York City,鈥 he adds.

Nitz was in Hannover, examining data from LIGO Livingston, when he helped discover the new signal. 鈥淣ormally, our analyses alert us of events observed by both [LIGO] detectors, but, on this day, data from LIGO Hanford was not being analyzed automatically,鈥 Nitz says. 鈥淚 knew that the data, itself, was good quality, so I decided to manually check if there was any sign of a corresponding signal in the other detector. What I saw made my heart jump.鈥

Nitz confirmed the findings with his colleagues, before reconfiguring the analysis to look for the signal in the recorded data from the two detectors. Again, the data produced a significant event, now known as 鈥淕W170104.鈥

鈥淚 alerted the group, beginning a process that woke up a lot of people a bit early in the United States,鈥 says Nitz, a co-author of a paper about the discovery in Physical Review Letters (American Physical Society, 2017). 鈥淲e compared the waveform to data we got from the detectors鈥 instruments, hunting for a small signal buried amid the noise. The analysis confirmed both instruments saw the same kind of signal at nearly the same time.鈥

three physicists

Peter Saulson, Duncan Brown and Stefan Ballmer, from left

Central to the detection was PyCBC Live, a type of software Nitz developed that helps find signals and study their parameters. Although he began working on the software toward the end of LIGO鈥檚 initial phase, Nitz says that being at 黑料不打烊 during the project鈥檚 five-year upgrade, resulting in Advanced LIGO, helped him 鈥済et in on the ground floor鈥 with people looking for gravitational waves from binary black hole mergers.

Ballmer, Brown and Saulson co-lead 黑料不打烊鈥檚 Gravitational-Wave Research Group. With more than two dozen members, it is one of the larger, more diverse groups in the LIGO Scientific Collaboration.

LIGO is funded by the National Science Foundation (NSF), and operated by MIT and Caltech, which conceived and built the project. Financial support for the Advanced LIGO project was led by NSF with Germany (Max Planck Society), the U.K. (Science and Technology Facilities Council) and Australia (Australian Research Council) making significant commitments and contributions to the project. More than 1,000 scientists from around the world participate in the effort through the LIGO Scientific Collaboration, which includes the GEO Collaboration. LIGO partners with the Virgo Collaboration, a consortium including 280 additional scientists throughout Europe supported by the Centre National de la Recherche Scientifique (CNRS), the Istituto Nazionale di Fisica Nucleare (INFN) and Nikhef, as well as Virgo鈥檚 host institution, the European Gravitational Observatory. Additional partners are listed at .enter(

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Rob Enslin

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