In the 1970s, observing a partial eclipse as a boy led to Garnavich's interest in astronomy and physics. According to Garnavich, "The eclipse is what pushed me over the edge and I decided that this is what I wanted to do for the rest of my life."[9]
Garnavich also was a fellow at the Center for Astrophysics | Harvard & Smithsonian from 1995–1999. In 1998, Garnavich led a team that used the Hubble Space Telescope to observe three distant high-redshift supernovae, the first published results of the High-Z Supernova Search Team.[18][3] The supernova observations indicated that the universe was not slowing down in its expansion and would potentially expand forever.[19][20] These images were also featured on the January 14, 1998 Astronomy Picture of the Day internet site.[21]
Also while at the Center for Astrophysics, Garnavich began to collaborate with Kris Stanek to study the origin of enigmatic gamma ray bursts (GRB). These distant explosions, among the most powerful in the universe, were thought to be linked to supernovae, but confirmation of this relationship was needed. Garnavich and Stanek detected features attributed to a supernova in the spectrum of "nearby" (6-billion light years) gamma ray burst GRB 011121 which was observed in 2001. Their results linked gamma ray bursts with supernovae.[23][24] As with this result, observations of GRB 030329 in 2003 led Garnavich to suggest that the progenitor star was likely a "hypernova", an exploding star of mass 20-50 times that of our sun.[25][26] In 2005, after joining the faculty of the University of Notre Dame, Garnavich used the Spitzer Space Telescope to measure the heat (afterglow) in far-infrared of another gamma ray burst, GRB 050525a.[5]
In 2000, Garnavich joined the University of Notre Dame[27] as an assistant professor and was promoted to associate professor in 2003. In 2008, he earned the rank of full professor. Garnavich was appointed chair of the Department of Physics in 2017.[1] In 2022, the department was officially named the Department of Physics and Astronomy.[28] The current chair of the department is Morten Eskildsen.[29]
Working with colleagues from Harvard, in 2003 Garnavich published results of a study of pre-main sequence star KH 15D. As a binary star system, the team concluded that anamolous changes in brightess were likely caused by a disk of opaque matter occulting the star.[30] The paper's main author is Joshua Winn of Princeton University.[31][32]
Also at Notre Dame, Garnavich continued his supernova and cosmology research. As a member of the ESSENCE Supernova Survey collaboration, Garnavich obtained the spectra and distances of 102 Type 1a supernovae.[33] Some of these data were used to estimate the value of the "dark energy equation of state parameter" (w), a measure of the density of dark energy in an expanding universe.[34][35]
Using data from the SDSS-II Supernova Survey, Garnavich was able to link Type 1a supernova rates with galaxy characteristics. This work involved comparing the early behavior of supernova light curves with models of the progenitor stars.[36] The study of supernova rise times led to Brian Hayden's Ph.D. dissertation.[37]
Charlotte M. Wood of Iowa State University[38] and Benjamin Rose of Baylor University[39] earned their PhDs working under Garnavich at the University of Notre Dame in the field of supernova cosmology.[40] Wood's dissertation concerned Type 1a supernovae in elliptical galaxies and the use of supernovae in measuring the Hubble constant.[41] Benjamin Rose's dissertation addressed "systematic biases of Type Ia supernova distances used in observational cosmology".[39]
Garnavich and other researchers utilized the famous planet hunting Kepler Space Telescope (KST) as an instrument to measure extragalactic supernovae. After its primary planet hunting mission ended, the KST concentrated its gaze on around 500 distant galaxies and collected data every 30 minutes.[8] This setup enabled the first ever capture of a Type II supernova shock wave.[42][43]
Using the Large Binocular Telescope, Garnavich and Colin Littlefield's observations of cataclysmic variable stars revealed the second only known "propellor star." The first known such star, AE Aquarii, consists of a white dwarf star orbiting a red giant companion. Normally in such systems, material drawn off of the red giant's atmosphere becomes deposited onto the white dwarf. With propellor stars, the material is flung into space by the rotation of the white dwarf's magnetic field and appears as a gaseous prominence.[6] This second-known propellor star is named LAMOST J024048.51+195226.9 (J0240 for short).[44] Material flung from J0240 is moving at 1% of the speed of light.[6]
Garnavich has been recognized for his instruction of student researchers.[2] In 2012, Notre Dame law student Colin Littlefield published a paper in The Astronomical Journal[45] detailing the discovery of WR 142b, a rare Wolf-Rayet star. Co-authors of the paper include Garnavich and Terrig Rettig of Notre Dame.[46] In 2024, under Garnavich's tutelage, Notre Dame undergraduate McKenna Leichty discovered a potential planet within the catclysmic variable star system V808 Aurigae.[47][48] Leichty used the 0.8-meter Sarah L. Krizmanich Telescope[49] located in an observatory on the top of Notre Dame's Jordan Hall of Science.[48]
Garnavich has also participated in public astronomy outreach events sponsored by the University of Notre Dame. In 2003, Garnavich operated Notre Dame's historic Napoleon III Telescope to provide views of the planet Mars during its historic close opposition.[30][50] Garnavich provided a public lecture titled "Big Science: The Largest Telescope on Earth and in Space" at the Jordan Hall of Science on Oct 28, 2014. Telescope viewing on the roof of Jordan Hall was also scheduled for this event.[51]
Awards & recognition
In 1992, at the Dominion Astrophysical Observatory, Garnavich obtained a Plaskett Fellowship[52] which is granted to recent outstanding doctoral graduates in astrophysics.[53]
Garnavich was cited in a widely circulated[55][56] newspaper article concerning a conference named "Galileo Was Wrong, The Church Was Right" held adjacent to the University of Notre Dame in 2011. The conference organizers were a "small group of conservative Roman Catholics" who cited some Bible verses and the Church's original teachings claiming that they support the geocentric or earth-centered universe model. Garnavich was quoted as an astrophysicist at "America's flagship Catholic university" who didn't agree with the conference. According to Garnavich, geocentrism is "an idea whose time has come and gone" and "there are some people who want to move the world back to the 1950s when it seemed like a better time... these are people who want to move the world back to the 1250s... I don't really understand it at all."[56]
Garnavich has helped the Space Telescope Science Institute to implement the "Working Group for Anonymizing Proposal Reviews" to increase the number of women and younger researchers who have been granted time to use the Hubble Space Telescope. For this work, Garnavich was awarded the a NASA Silver Achievement Award in 2020.[58]
In 2024, Garnavich was named a fellow of the American Astronomical Society. Along with research in supernovae, gamma ray bursts, and cataclysmic variable stars, he was also recognized for his "leadership in observational collaborations" and "tireless devotion to students and the astronomical community."[2]
Discovered in 1997, asteroid 1997 SJ34 was named 31139 Garnavich in honor of Peter Garnavich. The name was suggested by Czech amateur astronomer K. Hornoch. 31139 Garnavich is a 1.9 km wide main-belt asteroid.[59]
^Garnavich, P. M.; Kirshner, R. P.; Challis, P.; Tonry, J.; Gilliland, R. L.; Smith, R. C.; Clocchiatti, A.; Diercks, A.; Filippenko, A. V.; Hamuy, M.; Hogan, C. J.; Leibundgut, B.; Phillips, M. M.; Reiss, D.; Riess, A. G. (1998-02-01). "Constraints on Cosmological Models from Hubble Space Telescope Observations of High-z Supernovae". The Astrophysical Journal. 493 (2): L53–L57. arXiv:astro-ph/9710123. Bibcode:1998ApJ...493L..53G. doi:10.1086/311140.
^Riess, Adam G.; Filippenko, Alexei V.; Challis, Peter; Clocchiattia, Alejandro; Diercks, Alan; Garnavich, Peter M.; Gilliland, Ron L.; Hogan, Craig J.; Jha, Saurabh; Kirshner, Robert P.; Leibundgut, B.; Phillips, M. M.; Reiss, David; Schmidt, Brian P.; Schommer, Robert A. (May 15, 1998). "Observational Evidence from Supernovae for an Accelerating Universe and a Cosmological Constant". The Astronomical Journal. 116 (3): 1009–1038. arXiv:astro-ph/9805201. doi:10.1086/300499.
^Garnavich, P. M.; Stanek, K. Z.; Wyrzykowski, L.; Infante, L.; Bendek, E.; Bersier, D.; Holland, S. T.; Jha, S.; Matheson, T.; Kirshner, R. P.; Krisciunas, K.; Phillips, M. M.; Carlberg, R. G. (2003-01-10). "Discovery of the Low-Redshift Optical Afterglow of GRB 011121 and Its Progenitor Supernova 2001ke". The Astrophysical Journal. 582 (2): 924–932. arXiv:astro-ph/0204234. doi:10.1086/344785. ISSN0004-637X.
^Stanek, K. Z.; Matheson, T.; Garnavich, P. M.; Martini, P.; Berlind, P.; Caldwell, N.; Challis, P.; Brown, W. R.; Schild, R.; Krisciunas, K.; Calkins, M. L.; Lee, J. C.; Hathi, N.; Jansen, R. A.; Windhorst, R. (2003-07-01). "Spectroscopic Discovery of the Supernova 2003dh Associated with GRB 030329". The Astrophysical Journal. 591 (1): L17–L20. arXiv:astro-ph/0304173. doi:10.1086/376976. ISSN0004-637X.
^Dame, Marketing Communications: Web | University of Notre. "Morten Eskildsen". Department of Physics and Astronomy. Retrieved 2024-06-10.
^ abRumbach, David (Aug 21, 2003). "Celestial birth". South Bend Tribune. pp. A1. Retrieved Jun 11, 2024.
^Winn, Joshua N.; Holman, Matthew J.; Johnson, John A.; Stanek, Krzysztof Z.; Garnavich, Peter M. (2004-03-01). "KH 15D: Gradual Occultation of a Pre-Main-Sequence Binary". The Astrophysical Journal. 603 (1): L45–L48. arXiv:astro-ph/0312458. doi:10.1086/383089. ISSN0004-637X.
^"Joshua Winn". Department of Astrophysical Sciences. Retrieved 2024-06-27.
^Wood-Vasey, W. M.; Miknaitis, G.; Stubbs, C. W.; Jha, S.; Riess, A. G.; Garnavich, P. M.; Kirshner, R. P.; Aguilera, C.; Becker, A. C.; Blackman, J. W.; Blondin, S.; Challis, P.; Clocchiatti, A.; Conley, A.; Covarrubias, R. (2007-09-10). "Observational Constraints on the Nature of the Dark Energy: First Cosmological Results from the ESSENCE Supernova Survey". The Astrophysical Journal. 666 (2): 694–715. arXiv:astro-ph/0701041. Bibcode:2007ApJ...666..694W. doi:10.1086/518642. ISSN0004-637X.
^Hayden, Brian T (2013). Better Understanding Type Ia Supernovae With the Goal of Making Them More Reliable Distance Indicators. University of Notre Dame. Thesis. https://doi.org/10.7274/qj72p556m8h
^"Charlotte M. Wood". Department of Physics and Astronomy. Retrieved 2024-06-10.
^ ab"Dr. Benjamin Rose". Baylor University Department of Physics. Retrieved Jun 10, 2024.