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Sunando Kumar Patra

Researcher at Indian Institute of Technology Kanpur

Publications -  31
Citations -  885

Sunando Kumar Patra is an academic researcher from Indian Institute of Technology Kanpur. The author has contributed to research in topics: Physics beyond the Standard Model & Electroweak interaction. The author has an hindex of 11, co-authored 31 publications receiving 646 citations. Previous affiliations of Sunando Kumar Patra include University of Calcutta.

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FCC Physics Opportunities: Future Circular Collider Conceptual Design Report Volume 1

A. Abada, +1504 more
TL;DR: In this article, the physics opportunities of the Future Circular Collider (FC) were reviewed, covering its e+e-, pp, ep and heavy ion programs, and the measurement capabilities of each FCC component, addressing the study of electroweak, Higgs and strong interactions.
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\(b \rightarrow c \tau \nu _{\tau }\) Decays: a catalogue to compare, constrain, and correlate new physics effects

TL;DR: In this paper, the authors predict the standard model (SM) values of the asymmetric and angular observables in a model-independent framework of effective field theory, using the results of the new up-to-date analysis.
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$b \to c \tau \nu_{\tau}$ Decays: A Catalogue to Compare, Constrain, and Correlate New Physics Effects.

TL;DR: In this article, the authors predicted the standard model (SM) values of the asymmetric and angular observables in $B\to D^{(\ast)}\tau u_{\tau}$ decays, using the results of the new up-to-date analysis in
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Roadmap of left-right models based on GUTs

TL;DR: In this paper, a detailed study of the grand unified theories $SO(10)$ and $E(6)$ with left-right intermediate gauge symmetries of the form SU(N)_L\otimes SU(n)_R \otimes \mathcal{G} was performed.
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New physics in $b\to s \ell\ell$ decays with complex Wilson coefficients

TL;DR: In this paper, a data-driven analysis of new physics effects in exclusive $b \to s \ell^+\ell^-$ decays in a model-independent effective theory approach with dimension six effective operators considering scalar, pseudo-scalar, vector, and axial-vector operators with the corresponding Wilson coefficients (WC) taken to be complex.