Showing posts with label GW250114. Show all posts
Showing posts with label GW250114. Show all posts

Friday, June 12, 2026

The new LIGO-Virgo-KAGRA catalog sets records in precision gravitational-wave astronomy

The spectrograms of all gravitational-wave events in the new catalog GWTC-5.0 that were found in O4b and have a false-alarm rate of less than one per year. Credit: Derek Davis / University of Rhode Island / LIGO-Virgo-KAGRA



To the point
  • New gravitational-wave catalog: The LIGO-Virgo-KAGRA collaboration releases the largest gravitational-wave catalog, GWTC-5, with 161 new events, totaling 390 confirmed detections since 2015.

  • A wealth of results: The catalog contains many astrophysical highlights: the gravitational-wave source with the most precise sky localization, the first measurement of three gravitational-wave tones from a black hole, evidence for the existence of second-generation black holes, and new measurements of how fast the Universe is expanding.

  • More results to come: Data from the last part of the fourth observing run are being analyzed at the moment. Information on the 68 signal candidates and new discoveries will be published in a catalog update in the coming months.



Researchers at the Max Planck Institute for Gravitational Physics contribute to discoveries in the largest gravitational-wave catalog ever compiled.

Today, the LIGO-Virgo-KAGRA (LVK) collaboration published an updated catalog of the gravitational-wave events observed by its international network of gravitational-wave detectors in the United States, Italy, and Japan. The new version of the catalog, called Gravitational-Wave Transient Catalogue-5.0 (GWTC-5), has been posted as three core and three companion papers on the arXiv preprint server. These will be submitted to The Astrophysical Journal and The Astrophysical Journal Letters.

The detector network collected the data analyzed in this work between April 2024 and the end of January 2025, during O4b, the second part the fourth joined observing run (O4). A total of 161 new gravitational-wave events were discovered, of which scientists extracted parameters from 104. The latest revision of the catalog increases the grand total of confirmed events observed by the network since the first detection in September 2015 to 390.

As detector upgrades make the instruments increasingly more sensitive, the number of events detected in each successive observing run is growing significantly. This is underlined by the fact that 75% of all gravitational-wave signals observed so far have been discovered in the first and second part of O4.

An ever-growing treasure trove of data

“Our detectors have now become so sensitive that we discover new gravitational-wave signals about three to four times each week of our observing runs, unlocking an ever-growing treasure trove of data,” says Frank Ohme, group leader in the Precision Interferometry and Fundamental Interactions department at the Max Planck Institute for Gravitational Physics (Albert Einstein Institute; AEI) in Hannover. “Each new signal helps to deepen our understanding of the dark, invisible side of the Universe.”

“Ten years after our first discoveries, we are now entering the era of precision gravitational-wave astronomy,” adds Karsten Danzmann, director emeritus at the AEI in Hannover. “What we can do with gravitational-wave astronomy today is truly amazing! We can study the population of coalescing black holes, conduct some of the most precise tests of general relativity, and obtain completely new measurements of the expansion of our Universe.”

“Our new catalog includes several exceptional and record-breaking signals,” says Alessandra Buonanno, director of the Astrophysical and Cosmological Relativity department at the AEI in the Potsdam Science Park. “We have found evidence for the existence of second-generation black holes, have pinpointed the sky position of a gravitational-wave source more precisely than ever before, and have for the first time measured or constrained three gravitational-wave tones from a black hole in the clearest gravitational-wave signal observed to date.” “The collaboration did an extraordinarily careful and comprehensive analysis of the detected gravitational waves,” confirms Harald Pfeiffer, group leader at AEI in Potsdam and the lead reviewer for the internal quality control of data-taking and analysis of the GWTC-5.0 results paper. “This makes today’s announcements not only scientifically extraordinarily important, but also very reliable.”

Pinpointing a black hole coalescence

One signal in the catalog, observed on 15 June 2024, sets a new record for the most precise sky localization of all gravitational-wave events. Its source was found to lie within an area of just 6 square degrees – a patch of the sky that could be covered by about 28 full moons. This exceptional performance was possible because LVK researchers could combine data from both LIGO instruments and the Virgo detector, which observed the gravitational waves.

Determining where a gravitational-wave source is located is crucial when searching for possible electromagnetic signals generated by events such as binary neutron star or black-hole–neutron-star coalescences. The smaller the sky region, the easier it is to point other astronomical observatories at them.

The record-setting event came from the coalescence of two black holes, weighing 34 and 26 times as much as our Sun, respectively. The gravitational waves were emitted from their merger about 3.4 billion years ago – at a time when the earliest known forms of life emerged on Earth – and traveled at the speed of light until reaching our planet in 2024.

Data analysis expertise and new waveform models

Whenever gravitational-wave signals reached Earth, an international expert team reviewed the performance of the algorithms that identified the potential signals and also discussed the next analysis steps. AEI members contributed week-long shifts of data analysis expertise during the observing run.

Gravitational-wave astronomy goes far beyond simply detecting a signal’s presence. Using highly sophisticated data analyses, it must be extracted it from the detectors’ background noise and its astrophysical properties must be inferred and understood. The clearer a signal stands out from the noise background, the “louder” it is and the better its astrophysics can be understood.

Extracting astrophysical properties from these loud signals requires a detailed understanding of the characteristic fingerprints these properties leave in the data. For this purpose, researchers at the AEI in Potsdam and Hannover have developed and made key contributions to the latest generation of improved waveform models. LVK researchers use these models to predict the gravitational waves emitted from binary black holes and to understand new signals once found.

“Our improved waveform models are more physically consistent and accurate and are key to reliably infer the properties of black hole mergers from the detector data,” explains Héctor Estellés Estrella, a former postdoc at AEI Potsdam, now a Postdoctoral Fellow at the Institute of Space Sciences in Barcelona.

“The additional physics incorporated by us into existing waveform models, now used in GWTC-5, brings us a step closer to precisely modeling these complex astrophysical systems,” adds Shrobana Ghosh a postdoc in the Precision Interferometry and Fundamental Interactions department at AEI Hannover.

Visualization of a binary black hole ringdown consistent with the gravitational-wave event GW250114.The gravitational waves are separated into two modes of the ringing remnant black hole, identified in the observation: the fundamental mode (green) and its first overtone (red). It also shows a predicted third tone (yellow) that the data places limits on. Visualization performed at the Max Planck Institute for Gravitational Physics (Albert Einstein Institute), based on a numerical relativity simulation of the Simulating Extreme Spacetimes (SXS) Project. Credit: H. Pfeiffer, A. Buonanno (Max Planck Institute for Gravitational Physics), K. Mitman (Cornell University)

The clearest gravitational-wave signal

GWTC-5 contains five exceptionally loud binary black hole mergers including the by far clearest gravitational-wave signal seen to date. GW250114, reported earlier, came from a coalescence of black holes with masses 34 and 32 times that of our Sun about 1.3 billion light-years away. It was observed on 14 January 2025 and its “clarity” made it possible to achieve outstanding scientific results, among them the most precise test of general relativity ever performed and confirmation of Stephen Hawking’s black hole area theorem.

During the ringdown phase, when the black hole settles into its final state right after the merger, the gravitational-wave signal contains a characteristic spectrum of modes, or tones. Characterizing multiple gravitational-wave tones – measuring the frequencies of the tones and how quickly they fade – enables unique and powerful tests of general relativity. GW250114 was clear enough for the researchers to measure two tones and constrain a third. All three agree with Einstein’s general relativity and the Kerr solution for rotating black holes.

Characterizing black holes with DINGO

In the past years, researchers at the AEI and at the Max Planck Institute for Intelligent Systems (MPI-IS) have been developing DINGO, a machine learning algorithm for gravitational-wave data analysis. In the production of GWTC-5 it has been used routinely for the first time.

“Our approach called DINGO employs deep neural networks. It is just as accurate and reliable as the conventional methods the LVK collaboration uses to determine the astrophysical characteristics of the gravitational-wave sources, but it only takes minutes instead of hours or days for the same task,” explains Annalena Kofler, a PhD student at the MPI-IS and the AEI in Potsdam.

“The LVK investigated 104 of the 161 of the new gravitational-wave signals, in detail. For 42 of those 104 signals in the new catalog, DINGO served as a cross-validation tool. The DINGO results agree exactly with those obtained with the conventional methods,” adds Nihar Gupte, a PhD student in the Astrophysical and Cosmological Relativity department at the AEI in the Potsdam Science Park.

Infographic about the two gravitational-wave events GW241011 and GW241110.
Credit: Shanika Galaudage / Northwestern University / Adler Planetarium

Second-generation black holes

In October and November 2024, just one month apart, the detector network observed gravitational waves from two very special black hole coalescences. GW241011 and GW241110 came from distances of approximately 700 million and 2.4 billion light-years, respectively. As reported earlier, certain characteristics of these mergers – in particular how fast and around which axis the black holes were spinning – indicate the objects involved could be “second-generation” black holes. These are black holes that themselves were formed in previous black hole coalescences, likely in very dense and crowded cosmic environments, such as stellar clusters. There black holes are more likely to collide and merge repeatedly.

The growing number of observed events has also enabled the LVK researchers to study and identify the properties of different populations of black holes. One of the articles accompanying the catalog deals with this specific aspect.

Studying the expansion of our Universe

LVK researchers have used the improving ability of the detector network to localize events and the increased number of events to measure the rate at which our Universe is expanding. They combined gravitational-wave based measurements of the distances to the sources with other measurements of how fast they are traveling away from Earth because of the Universe’s expansion.

The LVK improved the precision of its estimate of the Hubble constant, which measures the Universe’s expansion rate, by more than 25% compared to the value derived from the previous catalog. The estimated value is consistent with existing measurements from both our cosmic neighborhood and the early Universe. It is, however, not yet precise enough to resolve the “Hubble Tension” between those long-established measurements.

More signals in the next catalog update and the upcoming observing run

The analysis of O4c, the final part of O4 from the end of January 2025 until mid November 2025, is currently underway. The LVK collaboration will publish the results in the coming months. The 68 signal candidates already identified during O4c will further expand the catalog and offer new opportunities to study our Universe and the fundamental laws of physics.

At the moment, the detectors of the international network are undergoing upgrades to improve their sensitivity towards the next six-month observing run, called IR1, beginning in late October or mid November of 2026. More sensitive instruments will help discovering gravitational-wave signals at an even higher rate – potentially uncovering additional rare cosmic events.




Contacts:

Dr. Benjamin Knispel
Press Officer AEI Hannover
Tel:
+49 511 762-19104
Email: benjamin.knispel@aei.mpg.de

Dr. Elke Müller
Press Officer AEI Potsdam, Scientific Coordinator
Tel:
+49 331 567-7303
Email: elke.mueller@aei.mpg.de



Scientific contacts:

Prof. Dr. Alessandra Buonanno
Director | LSC Principal Investigator
Tel:
+49 331 567-7220
Fax: +49 331 567-7298
Email:
alessandra.buonanno@aei.mpg.de
Homepage of Alessandra Buonanno

Prof. Dr. Dr. h.c. Karsten Danzmann
Director Emeritus | LSC Principal Investigator
Tel:
+49 511 762-2356
Fax: +49 511 762-5861
Email:
karsten.danzmann@aei.mpg.de
Homepage of Karsten Danzmann

Dr. Frank Ohme
Research Group Leader | LSC Principal Investigator
Tel:
+49 511 762-17171
Fax: +49 511 762-2784
Email:
frank.ohme@aei.mpg.de
Homepage of Frank Ohme

Dr. Héctor Estellés
Research Scientist
Email:
hestelles@ice.csic.es
Institute of Space Sciences, Barcelona

Dr. Shrobana Ghosh
Postdoc
Tel:
+49 511 762-14659
Email: shrobana.ghosh@aei.mpg.de

Nihar Gupte
PhD Student
Tel:
+49 331 567-7169
Email: nihar.gupte@aei.mpg.de

Annalena Kofler
PhD Student / MPI for Intelligent Systems
Tel:
+49 331 567-7369
Email: annalena.kofler@tuebingen.mpg.de

Prof. Harald Pfeiffer
Group Leader
Tel:
+49 331 567-7328
Fax: +49 331 567-7298
Email: harald.pfeiffer@aei.mpg.de



Additional experts:

Dr. Angela Borchers Pascual
Postdoc
Tel: +49 511 762-17172
Email: angela.borchers.pascual@aei.mpg.de
Dr. Raffi Enficiaud
Research Software Engineer
Tel:
+49 331 567-7123
Email: raffi.enficiaud@aei.mpg.de

Cheng Foo
PhD Student
Tel:
+49 331 567-7241
Email: cheng.foo@aei.mpg.de

Jannik Mielke
PhD Student
Tel:
+49 511 762-14659
Email:jannik.mielke@aei.mpg.de

Dr. Gonzalo Morrás
Postdoc
Tel:
+49 331 567-7321
Email: gonzalo.morras@aei.mpg.de

Dr. Lorenzo Pompili
Research Fellow

Email: Lorenzo.Pompili@nottingham.ac.uk
University of Nottingham, School of Mathematical Sciences

Elise Sänger
PhD Student
Email: elise.saenger@aei.mpg.de



Core publications:

1.The LIGO Scientific Collaboration; the Virgo Collaboration; the KAGRA Collaboration

GWTC-5.0: An Introduction to Version 5.0 of the Gravitational-Wave Transient Catalog
arXiv:2605.27223 (2026)


Source | DOI

2. The LIGO Scientific Collaboration; the Virgo Collaboration; the KAGRA Collaboration

GWTC-5.0: Methods for Identifying and Characterizing Gravitational-wave Transients
arXiv:2605.27224 (2026)


Source | DOI

3. The LIGO Scientific Collaboration; the Virgo Collaboration; the KAGRA Collaboration

GWTC-5.0: Observations from the Second Part of the Fourth LIGO-Virgo-KAGRA Observing Run and Updates to the Gravitational-Wave Transient Catalog
arXiv:2605.27225 (2026)

Source | DOI

4. The LIGO Scientific Collaboration; the Virgo Collaboration; the KAGRA Collaboration

GWTC-5.0: Constraints on the Cosmic Expansion Rate and Modified Gravitational wave Propagation
arXiv:2605.27227 (2026)


Source | DOI

5. The LIGO Scientific Collaboration; the Virgo Collaboration; the KAGRA Collaboration

Open Data from LIGO, Virgo, and KAGRA through the Second Part of the Fourth Observing Run
arXiv:2605.27090 (2026)


Source | DOI

6. The LIGO Scientific Collaboration; the Virgo Collaboration; the KAGRA Collaboration
GWTC-5.0: Population Properties of Merging Compact Objects
arXiv:2605.27226 (2026)


Source | DOI


Friday, February 06, 2026

Testing Einstein’s theory of relativity with the clearest gravitational-wave signal yet

Visualization of a binary black hole ringdown consistent with the gravitational-wave event GW250114.The gravitational waves are separated into two modes of the ringing remnant black hole, identified in the observation: the fundamental mode (green) and its first overtone (red). It also shows a predicted third tone (yellow) that the data places limits on. Visualization performed at the Max Planck Institute for Gravitational Physics (Albert Einstein Institute), based on a numerical relativity simulation of the Simulating Extreme Spacetimes (SXS) Project. Credit: H. Pfeiffer, A. Buonanno (Max Planck Institute for Gravitational Physics), K. Mitman (Cornell University)


Ringing Black Hole Animation (GW250114)
Credit: H. Pfeiffer, A. Buonanno (Max Planck Institute for Gravitational Physics), K. Mitman (Cornell University)



To the point:

  • Relativity put to the test: Relativity put to the test: A LIGO-Virgo-KAGRA team has conducted some of the most precise tests of Einstein’s theory of general relativity. The results were published in Physical Review Letters today.

  • Einstein holds fast: In all tests, the observations match the theory’s predictions. In some cases, the tests based on this signal alone are two to three times more stringent than those obtained by combining data from dozens of other signals.

  • The clearest signal: The team used data from GW250114, the strongest gravitational-wave signal ever detected from the merger of two black holes.

  • Like a bell: For the first time, detailed analyses of the complete signal and the ringdown phase, which occurs shortly after the merger, have identified or constrained three gravitational-wave tones.



An international team, with key contributions from AEI researchers, identified three gravitational-wave tones in GW250114 for the first time and conducted the most stringent tests of general relativity.

Relativity put to the test

A year ago, almost to the day, the LIGO-Virgo-KAGRA collaboration observed by far the clearest gravitational-wave signal seen to date. GW250114 came from a coalescence of black holes with masses between 30 to 40 times that of our Sun about 1.3 billion light-years away.

“This signal has already proven to be a great boon for a test of the nature of black holes and of Hawking’s area law,” says Alessandra Buonanno, director of the Astrophysical and Cosmological Relativity department at the Max Planck Institute for Gravitational Physics (Albert Einstein Institute, AEI) in the Potsdam Science Park. “Now we have gone one step further and published some of the most stringent limits on deviations from Einstein’s theory of general relativity using GW250114.”

Additional analysis of the GW250114 data was published today in Physical Review Letters. The writing team included several AEI members: Alessandra Buonanno, who served as chair, and Lorenzo Pompili, Elisa Maggio, and Elise Sänger, who conducted several of the analyses reported in the publication.

Because GW250114 was observed so clearly, it can be compared in much greater detail to predictions from Einstein’s theory of relativity than other signals. This makes it possible to test whether general relativity holds true in the extreme conditions of a black hole coalescence, where strong gravitational fields meet rapidly changing dynamics. Any deviations from the predictions of general relativity could hint at new physics beyond Einstein’s theory.

Like a struck bell

The international research team obtained some of the key results using a method known as black hole spectroscopy. For this, the team focused on the ringdown of the GW250114 signal – the phase when the black hole settles into its final state right after the merger – and the characteristic spectrum of gravitational-wave modes, or tones, emitted during this phase. These tones resemble the sounds a bell makes when struck: Each tone is described by two numbers: its frequency and the rate at which it is fading. Measuring the spectrum of the tones and their fading times is called black hole spectroscopy.

For the first time, a triad of gravitational-wave tones

For the first time, researchers at the AEI in Potsdam found a third tone in the signal’s ringdown phase using a new data analysis tool they developed.

“Our analysis tool, originally proposed in 2018, takes into account the complete black-hole coalescence and makes no prior assumptions about the tones emitted during the ringdown phase,” explains Elisa Maggio, a former Marie Curie Fellow in the Astrophysical and Cosmological Relativity department and now an INFN Researcher in Rome, Italy. Maggio and Pompili collaborated on developing the most recent version of the tool and conducting the analysis. “By incorporating information from the entire signal, we constrained a higher-pitched tone at approximately twice the fundamental frequency for the first time, once again matching theoretical predictions.”

Together, the two tests – one looking at the ringdown alone and the other considering the full signal – complement each other. Once again, they empirically vindicate the rotating black hole solution discovered in 1963 by Roy Kerr.

One signal beats dozens of others

The research team also examined an earlier phase of the clearly observed black hole coalescence when the two black holes were orbiting each other more slowly.

“We used a flexible, theory-independent method developed earlier at the AEI to determine how much the gravitational-wave signal deviated from the predictions of general relativity early in the coalescence,” says Elise Sänger, a PhD student in the Astrophysical and Cosmological Relativity department who conducted the analysis. “Remarkably, using data from this one clearly observed signal alone allows us to set some of the most stringent constraints on possible deviations from general relativity.”

The constraints derived using the AEI-developed model are two to three times more stringent than those obtained by combining data from dozens of signals in the latest fourth Gravitational-Wave Transient Catalogue (GWTC-4.0).

Only the beginning

“These results demonstrate the great scientific value of accurate waveform models and ophisticated data analysis techniques,” says Alessandra Buonanno. “But this is only the beginning. Future observing runs will allow us to detect signals like GW250114 more frequently and more clearly. Each one will open new avenues for testing Einstein’s theory and searching for new physics.”




Media contact:

Dr. Elke Müller
Press Officer AEI Potsdam, Scientific Coordinator
Tel:
+49 331 567-7303
elke.mueller@aei.mpg.de

Science contacts:

Prof. Dr. Alessandra Buonanno
Director | LSC
Principal Investigator
Tel:
+49 331 567-7220
Fax: +49 331 567-7298
alessandra.buonanno@aei.mpg.de
Homepage of Alessandra Buonanno

Dr. Elisa Maggio
INFN Researcher

elisa.maggio@aei.mpg.de
Istituto Nazionale di Fisica Nucleare, Rome

Dr. Lorenzo Pompili
Research Fellow

Lorenzo.Pompili@nottingham.ac.uk
University of Nottingham, School of Mathematical Sciences

Elise Sänger
PhD Student
elise.saenger@aei.mpg.de



Publication

The LIGO Scientific Collaboration; the Virgo Collaboration; the KAGRA Collaboration; Abac, A.; Abouelfettouh, I.; Acernese, F.; Ackley, K.; Adhicary, S.; Adhikari, D.; Adhikari, N. et al.

Black Hole Spectroscopy and Tests of General Relativity with GW250114. Physical Review Letters 136, 041403 (2026)


MPG.PuRe - DOI - pre-print - publisher-version



Further information


LIGO Science Summary
of the publication “Black hole spectroscopy and tests of general relativity with GW250114”

MPG.PuRe - DOI - pre-print - publisher-version

more


Ten years of gravitational-wave astronomy and the clearest signal yet

September 10, 2025
The LIGO-Virgo-KAGRA collaboration and the Max Planck Institute for Gravitational Physics celebrate the anniversary and present new, exciting results.


more




LIGO-Virgo-KAGRA Collaboration successfully wraps up its fourth Observing Run

November 19, 2025
Further exciting results anticipated from O4’s remaining parts


more


Doubling the gravitational-wave transient catalogue

August 26, 2025
LIGO-Virgo-KAGRA researchers at the Max Planck Institute for Gravitational Physics and at Leibniz University Hannover make significant contributions to detect and analyze new gravitational-wave candidates

more

Brito, R.; Buonanno, A.; Raymond, V.
Black-hole Spectroscopy by Making Full Use of Gravitational-Wave Modeling. Physical Review D 98 (8), 084038 (2018)


MPG.PuRe - DOI - pre-print

Sunday, September 21, 2025

Ten years of gravitational-wave astronomy and the clearest signal yet

Artist’s impression of a newly-formed black hole ringing down after a binary black hole merger while emitting gravitational waves. Credit: Maggie Chiang for the Simons Foundation


To the point:
  • Gravitational waves: On 14 September 2015, the first detection of gravitational waves from a binary black hole coalescence, GW150914, marked a major milestone in astronomy and the beginning of a new era of cosmic observation.

  • Technological and theoretical advances: The outstanding improvements of the detectors, waveform models and analysis methods have enabled unprecedented observations in the last decade: about 300 coalescences of black holes and neutron stars have been detected.

  • New discovery: A binary black hole coalescence announced today (GW250114) is the clearest signal to date. It allowed scientists to conduct some of the most stringent tests of general relativity, identify or constrain at least three gravitational-wave tones emitted during the ringdown, which occurs shortly after the merger, and confirm Hawking’s black hole area theorem.

  • Multi-messenger astronomy: The first gravitational-wave detection of a neutron star coalescence in 2017 (GW170817) demonstrated the ability to observe cosmic events through both gravitational and electromagnetic waves.

  • Ongoing innovative research: AEI researchers continue to develop ever more accurate waveform models, fast and efficient analysis methods, and advanced detector technologies in preparation for upcoming LIGO-Virgo-KAGRA observing runs and next-generation detectors that promise deeper insights into cosmic events.

Visualization of a numerical-relativity simulation of the first binary black-hole merger observed by the LIGO detectors on 14 September 2015. Credit: S. Ossokine, A. Buonanno (Max Planck Institute for Gravitational Physics), Simulating eXtreme Spacetimes project, D. Steinhauser (Airborne Hydro Mapping GmbH)

The first detection of gravitational waves from a binary black hole merger

On 14 September 2015, a signal arrived on Earth, carrying information about a pair of black holes that had spiraled together and merged in a distant galaxy. The twin detectors of the Laser Interferometer Gravitational-Wave Observatory (LIGO) made the first-ever detection of gravitational waves from merging black holes. Since then, about 300 other coalescences of black holes and neutron stars have been observed, ushering in a new era of astronomy. Researchers at the Max Planck Institute for Gravitational Physics (Albert Einstein Institute, AEI) and Leibniz University Hannover have made crucial contributions in many key areas and continue to shape its future.

“It has been an incredible journey that has brought us to this remarkable milestone 10 years ago. From the field’s early days, our researchers have been driving the development of new technologies and analysis techniques,” says Karsten Danzmann, director at the AEI and director of the Institute for Gravitational Physics at Leibniz University Hannover. “Today, we continue to build on this momentum as we work towards a future where gravitational-wave astronomy will reveal even more secrets of the Universe.”

The historic discovery enabled astronomers to observe the Universe through three different means. They had previously captured electromagnetic waves, such as visible light, X-rays, and radio waves, as well as high-energy particles and neutrinos. However, on 14 September 2015 researchers observed a cosmic event for the first time by detecting the ripples it caused in spacetime. For the discovery, Rai Weiss, Kip Thorne, and Barry Barish were awarded the Nobel Prize in Physics in 2017.

Today, the LIGO-Virgo-KAGRA (LVK) collaboration operates an international gravitational-wave detector network consisting of the two LIGO instruments in the USA, the Virgo detector in Italy, KAGRA in Japan, and GEO600 in Germany. Together they have captured a total of about 300 black hole coalescences, some of which are confirmed while others await further analysis.

Ringing Black Hole Animation (GW250114)
Credit: H. Pfeiffer, A. Buonanno (Max Planck Institute for Gravitational Physics), K. Mitman (Cornell University). More

Exciting results from the clearest signal yet

The improved detector sensitivity, state-of-the-art waveform modeling, and highly efficient data analysis are exemplified in the recent discovery of a gravitational-wave signal, GW250114, produced by the coalescence of two black holes. The event was similar to the first detection, as both came from a coalescence of black holes with masses between 30 to 40 times that of our Sun about 1.3 billion light-years away. But thanks to a decade of technological, theoretical, and modeling advances the GW250114 signal is dramatically clearer and its properties can be inferred accurately.

In essence, the recent detection of GW250114 allowed the LVK team to “hear” two black holes growing as they merged into one, thereby verifying Hawking’s theorem. Furthermore, in the published study, the researchers were able, for the first time, to confidently pick out two distinct gravitational-wave modes or tones in the ringdown. This is the phase when the black hole settles into its final state right after the merger. The modes are like characteristic sounds a bell would make when struck; they have somewhat similar frequencies but die out at different rates, which makes them hard to identify. The improved data for GW250114 meant that the team could extract the two tones, demonstrating that the black hole’s ringdown occurred exactly as predicted by the rotating black hole solution in general relativity.

Visualization of a binary black hole merger consistent with the gravitational-wave event called GW250114. The gravitational waves are shown separated into the two modes of the ringing remnant black hole that were identified in the GW250114 observation: the quadrupolar fundamental mode (labeled “First tone”) and its first overtone (“Second tone”). It also shows a predicted third tone that the data place limits on. Credit: H. Pfeiffer, A. Buonanno (Max Planck Institute for Gravitational Physics), K. Mitman (Cornell University)

Brand-new study presents most stringent tests of general relativity and black hole nature

Today, the LVK submitted another study to Physical Review Letters that places limits on a predicted third tone in the GW250114 signal, and performs some of the most stringent tests yet of general relativity’s accuracy in describing merging black holes. Based on this signal alone, some of those tests are two to three times more stringent than the same tests obtained by combining dozens loudest events from the most recent gravitational-wave signal catalog (GWTC-4.0).

“Not only were we able to conduct some of the most stringent verifications of general relativity. For the first time, we also constrained a third, higher-pitch tone in the ringdown of the GW250114 remnant black hole,” explains Alessandra Buonanno, director at the Max Planck Institute for Gravitational Physics and chair of the editorial team of the LVK study submitted today.

Lorenzo Pompili, a PhD student at the AEI in Potsdam and a member of the editorial team of the second LVK study, says: “We have performed black hole spectroscopy, which means studying the distinct tones emitted during the final ringdown stage of the coalescence. By constraining multiple tones and confirming that they match the expected frequencies and decay times, we can robustly test whether the remnant truly behaves like a rotating black hole.”

Buonanno adds: “Overall, Einstein’s theory of general relativity and the Kerr’s black hole solution have once again been empirically vindicated.” The rotating black hole solution discovered in 1963 by Roy Kerr has had a profound impact in astrophysics, since the discovery of quasars, and in fundamental physics.

Dance of the heavyweights: two neutron stars orbit each other, spiralling ever closer together, radiating gravitational waves in the process. This image of the real event GW170817 comes from a numerical-relativistic simulation. Credit: T. Dietrich, S. Ossokine, H. Pfeiffer, A. Buonanno (Max Planck Institute for Gravitational Physics), BAM collaboration

Pushing the Limits

Over the past decade, AEI researchers have contributed to the understanding of gravitational-wave events involving neutron stars. Like black holes, neutron stars are formed by supernova explosions, which mark the end of a massive star’s existence. They weigh less than black holes and, unlike black holes, emit electromagnetic waves. In August 2017, LIGO and Virgo observed a merger between two neutron stars, followed by a plethora of electromagnetic signals from gamma- to X-rays to infrared and radio waves. The kilonova sent gold and other heavy elements into space and attracted the attention of telescopes worldwide.

This multi-messenger astronomy event marked the first time that both light and gravitational waves had been captured from the same cosmic event. Today, the LVK collaboration continues to alert the astronomical community to potential neutron star mergers, who then use telescopes to search the skies for signs of kilonovae. AEI researchers routinely contribute to these alerts.

A multitude of discoveries

Other notable LVK scientific discoveries include the first detection of collisions between one neutron star and one black hole; asymmetrical mergers, in which one black hole is significantly more massive than its partner black hole; the discovery of the lightest black holes known, challenging the idea that there is a “mass gap” between neutron stars and black holes; and the most massive black hole coalescence seen yet with a merged mass of 225 solar masses. For reference, the previous record-holder for the most massive coalescence had a combined mass of 140 solar masses.

AEI researchers develop and improve sophisticated waveform models

Researchers at the AEI have developed new waveform models that are used routinely by the LVK collaboration to distinguish real cosmic sources from random fluctuations and terrestrial disturbances that appear in the detector.

Over the past decade, the institute’s scientists have continuously improved the accuracy and efficiency of their waveform models. They have developed ever more accurate waveform models that account for the complex dynamics of highly spinning black holes, such as those observed in the recent detection of GW231123. These models are essential for extracting accurate information from the signal and understanding the properties of the astrophysical objects involved in the coalescence.

The institute’s researchers have also developed new parameter estimation methods based on machine learning methods and neural networks. These provide a rapid and accurate way to infer the properties of binary black hole and binary neutron star mergers. The novel methods are particularly useful for analyzing large datasets and identifying potential signals in real-time.

Development of high-power laser systems

Researchers at the AEI and at Leibniz University Hannover have made key contributions to the high-power laser systems used in gravitational-wave detectors. These high-power laser systems are essential for the operation of the instruments, as they provide the intense and extremely pure and stable laser light needed to measure the minuscule distance changes caused by gravitational waves. The institute’s researchers have developed the main laser source currently in use in the LIGO instruments and have tested and helped implement upgrades to it. The amplifier stage of the current laser sources in the Virgo and KAGRA instruments is also based on developments and tests carried out by a collaboration between the institutes and the Laser Zentrum Hannover.

The German-British GEO600 detector south of Hannover, Germany, is a key technology development center of the international gravitational-wave research community. Technologies developed and tested in the GEO project are now used in all large gravitational-wave detectors in the world. Credit: Max Planck Institute for Gravitational Physics (Albert Einstein Institute)/Milde Marketing

Technology testbed GEO600 and squeezed light for more sensitive detectors

The German-British GEO600 gravitational-wave detector, operated by the AEI and Leibniz University Hannover, played a crucial role in the development of gravitational-wave astronomy over the past decade. As a testbed for advanced detector techniques, GEO600 enabled the development of key technologies that have improved the sensitivity of the other detectors. GEO600 was the first detector to use squeezed light in 2010. Squeezed light is a technique that reduces the quantum noise in gravitational-wave detectors, allowing them to detect weaker signals. The institutes’ researchers have developed and built squeezed-light sources for the GEO600 and Virgo detectors, and have helped to push the boundaries of squeezed-light technology. These technological advancements have increased the sensitivity of gravitational-wave detectors and have improved our ability to detect and analyze gravitational-wave signals.

Continuing the quest for new discoveries

In the coming years, the scientists and engineers of the LVK collaboration plan to further fine tune their machines, expanding their reach deeper and deeper into space. Researchers at the Max Planck Institute for Gravitational Physics and Leibniz University Hannover will continue making groundbreaking contributions to the field. “With the third-generation detectors we can expect to hear the earliest black hole mergers in the Universe, make even more precise measurements of gravitational-wave events and gain a deeper understanding of the cosmic mysteries,” explains Frank Ohme, who leads an independent research group at the AEI. Researchers at the institutes will continue to push the boundaries of detector technology, waveform model development, and analysis techniques, that drive the field forward and enable new discoveries.

The LIGO-Virgo-KAGRA Collaboration

LIGO is funded by the US National Science Foundation and operated by Caltech and MIT, which together conceived and built the project. Financial support for the Advanced LIGO project was led by the NSF with Germany (Max Planck Society), the United Kingdom (Science and Technology Facilities Council), and Australia (Australian Research Council) making significant commitments and contributions to the project. More than 1,600 scientists from around the world participate in the effort through the LIGO Scientific Collaboration, which includes the GEO Collaboration. Additional partners are listed at my.ligo.org/census.php.

The Virgo Collaboration is currently composed of approximately 1,000 members from 175 institutions in 20 different (mainly European) countries. The European Gravitational Observatory (EGO) hosts the Virgo detector near Pisa in Italy, and is funded by Centre National de la Recherche Scientifique (CNRS) in France, the National Institute of Nuclear Physics (INFN) in Italy, the National Institute of Subatomic Physics (Nikhef) in the Netherlands, The Research Foundation – Flanders (FWO), and the Belgian Fund for Scientific Research (F.R.S.–FNRS). A list of the Virgo Collaboration groups can be found at: A list of the Virgo Collaboration groups can be found at: https://www.virgo-gw.eu/about/scientific-collaboration/. More information is available on the Virgo website at https://www.virgo-gw.eu.

KAGRA is the laser interferometer with 3-kilometer arm length in Kamioka, Gifu, Japan. The host institute is the Institute for Cosmic Ray Research (ICRR), the University of Tokyo, and the project is co-hosted by National Astronomical Observatory of Japan (NAOJ) and High Energy Accelerator Research Organization (KEK). KAGRA collaboration is composed of more than 400 members from 128 institutes in 17 countries/regions. KAGRA's information for general audiences is at the website gwcenter.icrr.u-tokyo.ac.jp/en/. Resources for researchers are accessible from gwwiki.icrr.u-tokyo.ac.jp/JGWwiki/KAGRA.




Media Contacts:

Dr. Benjamin Knispel
Press Officer AEI Hannover
Tel:
+49 511 762-19104
benjamin.knispel@aei.mpg.de

Dr. Elke Müller
Press Officer AEI Potsdam, Scientific Coordinator
Tel:
+49 331 567-7303
elke.mueller@aei.mpg.de

Scientific contacts:

Prof. Dr. Alessandra Buonanno
Director | LSC Principal Investigator
Tel:
+49 331 567-7220
Fax: +49 331 567-7298
alessandra.buonanno@aei.mpg.de
Homepage of Alessandra Buonanno

Prof. Dr. Karsten Danzmann
Director | LSC Principal Investigator
Tel:
+49 511 762-2356
Fax: +49 511 762-5861
karsten.danzmann@aei.mpg.de
Homepage of Karsten Danzmann

Dr. Frank Ohme
Research Group Leader | LSC Principal Investigator
Tel:
+49 511 762-17171
Fax: +49 511 762-2784
frank.ohme@aei.mpg.de
Homepage of Frank Ohme

Lorenzo Pompili
PhD Student
Tel:
 +49 331 567-7182
Fax: +49 331 567-7298
lorenzo.pompili@aei.mpg.de

Dr. Elisa Maggio
Marie Curie Fellow
Tel:
+49 331 567-7197
elisa.maggio@aei.mpg.de

Prof. Harald Pfeiffer
Group Leader
Tel:
+49 331 567-7328
Fax: +49 331 567-7298
harald.pfeiffer@aei.mpg.de

Elise Sänger
PhD Student

elise.saenger@aei.mpg.de

Dr. Jan Steinhoff
Group Leader
Tel:
+49 331 567-7125
jan.steinhoff@aei.mpg.de



Publications

1. The LIGO Scientific Collaboration; the Virgo Collaboration; the KAGRA Collaboration; Abac, A.; Abouelfettouh, I.; Acernese, F.; Ackley, K.; Adhicary, S.; Adhikari, D.; Adhikari, N. et al.: GW250114: Testing Hawking’s Area Law and the Kerr Nature of Black Holes. Physical Review Letters 135, 111403 (2025)

MPG.PuRe | | DOI | pre-print
publisher-version

2. The LIGO Scientific Collaboration; the Virgo Collaboration; the KAGRA Collaboration; Abac, A.; Abouelfettouh, I.; Acernese, F.; Ackley, K.; Adhicary, S.; Adhikari, D.; Adhikari, N.et al.: Black Hole Spectroscopy and Tests of General Relativity with GW250114. (2025)

MPG.PuRe | pre-print



Further information

© Max Planck Institute for Gravitational Physics, Milde Marketing Science Communication

The hunters - the detection of gravitational waves

The hunters - the detection of gravitational waves. 
Find the video on YouTube here.