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Panchajanya Dey

Publications and source records attributed to Panchajanya Dey.

3 recordsLinked to original sources

Hawking Radiation in $f(\mathcal{R})$ Gravity: Survival of lighter black holes

Einstein's theory of general relativity (GR) has been remarkably successful in describing gravitational phenomena. However, several open questions in modern cosmology and astrophysics (e.g. inflation, dark energy) suggest the need for extensions or modifications to this framework. Modified gravity (MGR) theories, including scalar-tensor models and higher-dimensional approaches, attempt to address these gaps while maintaining consistency with established experimental tests. This work investigates Hawking radiation within an $f(\mathcal{R})$ gravity theory, with $\mathcal{R}$ being scalar curvature, focusing on its implications for primordial black holes (PBHs) as potential dark matter (DM) candidates. Our analysis reveals that PBHs evaporate slowly in MGR compared to GR predictions. Specifically, we find that non-rotating black holes with masses $\sim 5 \times 10^{13}$ g or lower would have survived by the present epoch, depending on the MGR parameter-a mass threshold approximately at least ten times smaller than in GR. This retarded evaporation timeline imposes relaxed new constraints on the viability of PBHs as DM constituents, thereby reshaping the landscape of possible solutions to the DM problem. This motivates further investigation into alternative gravitational theories and their cosmological consequences.

gr-qc↗

Discovering the Dispersion of Gravitational Waves using Multi-Band Observation including Deci-Hertz: A Unique Probe to Cosmic Acceleration

The dispersion in the speed of gravitational waves is a novel way to test the general theory of relativity and understand whether the origin of cosmic acceleration is due to any alternative theory of gravity. Several alternative theories of gravity predict dispersion in the gravitational wave signal in a frequency-dependent deviation from the speed of light at lower frequencies than accessible from current ground-based detectors. We show how a multi-band observation of gravitational wave signal combining deci-Hertz gravitational wave signal from LGWA (Lunar Gravitational Wave Antenna) with ground-based detectors such as Cosmic Explorer or Einstein Telescope, and also including LISA (Laser Interferometer Space Antenna), we can probe the energy scale associated with effective theory of modified gravity scenarios by combining only $\mathcal{O}(10)$ high signal to noise ratio (SNR) with a precision of approximately $8.6\%$. This precision will further improve with the inclusion of more events as $\sqrt{N}$. In the future, this measurement will shed light on an unexplored domain of fundamental physics and will bring deeper insights into the phenomenon of cosmic acceleration. The operation of the gravitational wave detector in the deci-Hertz frequency band is key to exploring this frontier of fundamental physics.

gr-qc↗

Faster rate of Hawking radiation in modified gravity constraining dark matter

The exact theory of gravity in the strong field regime is still under debate. There are observations implying the need for modification to Einstein's gravity. On the other hand, the exact constituents of dark matter are also a big puzzle, where primordial black holes (PBHs) are argued to be a potential candidate. We explore Hawking radiation in a modified gravity and find that PBHs evaporate faster in a scalar-tensor theory based modified gravity. Subsequently, all the nonrotating BHs of mass $\sim 10^{15}$ g or less should have been evaporated by today, which is an order of magnitude heavier than what the Einstein gravity predicts. This has many consequences including a strict constraint on contributing PBHs to dark matter, widening the debate of dark matter origin.

gr-qc↗