SAHA INSTITUTE OF NUCLEAR PHYSICS
Department of Atomic Energy, Govt. of India
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Dr. Tinku Sinha Sarkar

Scientist
Room No : 3405
Ext. : 3405,4603,4604
Email id : tinku.sinha[AT]saha.ac.in
Division :
1. A method to Measure the Angular Distribution of Atmospheric Cosmic Muons at the Earth

 Basharat Hussain Wani, Tinku Sinha, Gourab Banerjee and Waseem Bari

 Spinger Proceedings in Physics, vol. 432 (2026) 58-61.

https://doi.org/10.1007/978-981-95-1513-4_10

2. Estimation of ground state deformation parameters from quasi-elastic barrier distribution using Bayesian Inference Technique for heavy massive systems.

Gourab Banerjee and Tinku Sinha.
vol. 35, No. 03, 2650009, 2026.
https://doi.org/10.1142/S0218301326500096

3. Charged-particle multiplicity distribution of Heavy flavor decay leptons in 
 proton-proton collisions using Pythia8 at LHC energies.

  Md. Samsul Islam, Tinku Sinha.

 IJMPE Volume No. 34, Issue No. 01, Article No. 2540001, Year 2025.
doi: https://doi.org/10.1142/S0218301325400014

4. Angular distributions of atmospheric cosmic muons
   at the Earth: A study with PYTHIA8.

  Basharat Hussain Wani, Tinku Sinha, Gourab Banerjee and Waseem Bari

   IJMPA 39 (Issue No. 24) 2450093, 2024.
   doi: 10.1142/S0217751X24500933. 

5. *ψ(2S) Suppression in Pb-Pb Collisions at the LHC.

   PRL 132, 042301 (2024).
   doi: 10.1103/PhysRevLett.132.042301.

6. Charged-particles distribution in proton-proton and heavy-ion collisions using
PYTHIA8 Angantyr model at LHC energies.

Md. Samsul Islam, Tinku Sinha, Pradip Roy and Partha Pratim Bhaduri.

Eur. Phys. J. Plus 137, 1327 (2022).
https://doi.org/10.1140/epjp/s13360-022-03548-z

7. Study of heavy-flavor decay muon production in proton–proton and heavy-ion collisions using the Angantyr model at LHC energies.
 
Md. Samsul Islam, Tinku Sinha, Pradip Roy and Partha Pratim Bhaduri.

Int. J. Mod. Phys. E 31 (2022) 2250007; 
https://doi.org/10.1142/S0218301322500070


8. *Forward rapidity J/ψ production as a function of charged-particle multiplicity in pp collisions at √s = 5.02 and 13 TeV;

JHEP 06 (2022) 015.
doi = 10.1007/JHEP06(2022)015,; PC-member for this paper.

9.. Measurement of cosmic-ray muon flux in the underground laboratory at UCIL, India, using plastic scintillators and SiPM.

NIMA Volume 994, 1 April 2021, 165083; https://doi.org/10.1016/j.nima.2021.165083.

10.. *Production of inclusive Y(1S) and Y(2S) in p-Pb collisions at sqrt(s_NN) = 5.02 TeV.
    Phys. Lett. B 740, 105-117 (2015).

11. *Suppression of Y(1S) at forward rapidity in Pb-Pb collisions at sqrt(s_NN) = 2.76 TeV.
     Phys. Lett. B 738, 361-372 (2014).

12. *J/psi production as a function of Charged Particle Multiplicity in pp collisions at sqrt(s) = 7 TeV.
    Phys. Lett. B 712, 165 (2012).

13. Anomalous increase in width of fission fragment mass distribution in 19F+232Th.
     T.K. Ghosh, S. Pal, T. Sinha et al.  Phys. Rev. C 69 031603, 2004.

14. *The tracking system of the ALICE dimuon spectrometer.
    IEEE Volume 1, issue 19-25, 660, 2003.

15.  Coupling effects of resonant and discretized non-resonant continuum states in He-4+Li-6 scattering at 10 MeV/A.
     T. Sinha, R. Kanungo, C. Samanta et al;  Zeitschrift Phys. A 355 397, 1996.

16. Double-folding model potential for Li-6 scattering with He-4 - absence of anomalous reduction factor.
      T. Sinha, Subinit Roy and C. Samanta;  Phys. Rev. C 48 785, 1993.

* For the ALICE Collaboration
 

 

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