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A. Chatterjee

Researcher at Bhabha Atomic Research Centre

Publications -  221
Citations -  2769

A. Chatterjee is an academic researcher from Bhabha Atomic Research Centre. The author has contributed to research in topics: Fission & Elastic scattering. The author has an hindex of 26, co-authored 159 publications receiving 2322 citations. Previous affiliations of A. Chatterjee include Centre national de la recherche scientifique.

Papers
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Search for the chiral magnetic effect with isobar collisions at sNN=200 GeV by the STAR Collaboration at the BNL Relativistic Heavy Ion Collider

Mustafa Muzameal Suleman Abdallah, +377 more
- 03 Jan 2022 - 
TL;DR: In this paper , a blind analysis of a large data sample of approximately 3.8 billion isobar collisions of Ru4496+Ru4496 and Zr4096+Zr 4096 at sNN=200 GeV was performed.
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Sensitivity and performance characteristics of a direct PCR with stool samples in comparison to conventional techniques for diagnosis of Shigella and enteroinvasive Escherichia coli infection in children with acute diarrhoea in Calcutta, India.

TL;DR: This PCR assay could identify a number of untypable Shigella strains (Sh OUT), which would have remained undiagnosed had this assay not been used, when each of the methods was compared to the total microbiologically confirmed cases of dysentery.
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Modern Rutherford experiment: tunneling of the most neutron-rich nucleus.

TL;DR: Using a novel off-beam technique the most precise and accurate measurements of fusion and neutron transfer involving reaccelerated unstable beams are reported, highlighting the role of the intrinsic structure of composite many-body quantum systems and pairing correlations.
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Evidence for transfer followed by breakup in 7Li + 65Cu

TL;DR: In this article, a detailed analysis of the angular distribution using coupled channels Born approximation calculations has provided clear evidence that the observed α + d events arise from a two-step process, i.e., direct transfer to the 2.186 MeV (3 + ) resonance in the α+ d continuum of 6Li followed by breakup, and are not due to final state interaction effects.