Essential Concepts & Key Facts
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- Gravitational waves are disturbances in the curvature of spacetime generated by accelerating massive celestial objects, propagating outward at the speed of light.
- Albert Einstein mathematically predicted the existence of gravitational waves in 1916 as a direct consequence of his General Theory of Relativity.
- Gravitational radiation requires an asymmetric system with a time-varying quadrupole mass moment, such as binary black holes or spinning asymmetric neutron stars.
- Spherically symmetric mass accelerations, such as a perfectly spherical supernova explosion or a pulsating star, cannot generate gravitational waves.
- Indirect proof of gravitational waves was discovered in 1974 by Russell Hulse and Joseph Taylor through the decaying orbital period of the binary pulsar PSR B1913+16, winning the 1993 Nobel Prize in Physics.
- The first direct detection of gravitational waves occurred on September 14, 2015 (designated event GW150914) by the twin Advanced LIGO observatories in the United States.
- The GW150914 signal was produced by the collision of two stellar-mass black holes (roughly 29 and 36 solar masses) that merged into a 62-solar-mass black hole roughly 1.3 billion light-years away.
- During the GW150914 merger, approximately three solar masses of rest mass were converted directly into gravitational wave energy in fractions of a second.
- The 2017 Nobel Prize in Physics was awarded to Rainer Weiss, Barry C. Barish, and Kip S. Thorne for their decisive contributions to the LIGO detector and gravitational wave observation.
- LIGO operates using specialized Michelson laser interferometers with orthogonal vacuum arms measuring 4 kilometres in length, suspended in ultra-high vacuum chambers.
- As a gravitational wave traverses the interferometer, it stretches space along one arm while compressing the perpendicular arm, shifting the laser interference pattern by less than 10⁻¹⁸ metres.
- The dimensionless strain amplitude (h) measured by modern ground-based interferometers is approximately 10⁻²¹—equivalent to measuring a hair's width change in distance to the nearest star.
- The global terrestrial gravitational wave detector network includes Advanced LIGO (USA), Advanced Virgo (Italy), KAGRA (Japan), and GEO600 (Germany).
- LIGO-India (IndIGO project) is an advanced gravitational-wave observatory approved by the Government of India, currently being constructed at Hingoli in Maharashtra.
- LIGO-India is a collaborative project led by the Department of Atomic Energy (DAE) and Department of Science and Technology (DST) with key institutions IUCAA, RRCAT, and IPR.
- Adding LIGO-India to the international network provides a long geographic baseline that substantially sharpens angular resolution, enabling scientists to locate cosmic wave sources accurately.
- Event GW170817 (August 17, 2017) marked the birth of multi-messenger astronomy when the collision of two neutron stars was observed simultaneously in gravitational waves, gamma rays, and optical light.
- The GW170817 neutron star merger confirmed that kilonova explosions forge cosmic heavy r-process elements like gold, platinum, and uranium.
- LISA (Laser Interferometer Space Antenna) is a planned space-based mission by ESA and NASA designed to detect low-frequency gravitational waves from supermassive black holes across millions of kilometres.
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