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where I'd like to be ...

Prof Subir Sarkar

Professor Emeritus

Research theme

  • Particle astrophysics & cosmology
  • Fundamental particles and interactions

Sub department

  • Rudolf Peierls Centre for Theoretical Physics

Research groups

  • Particle theory
Subir.Sarkar@physics.ox.ac.uk
Telephone: 01865 (2)73962
Rudolf Peierls Centre for Theoretical Physics, room 60.12
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Brief CV
  • About
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  • IceCube@Oxford
  • Publications

IceCube

Physics World 2013 Breakthrough of the Year
IceCube at Oxford

I am a member since 2004 of the IceCube collaboration which discovered cosmic high energy neutrinos and identified some of their astrophysical sources.

IceCube @ Oxford

Recent Developments in Particle Physics and Cosmology

Springer Netherlands, 2001
More details from the publisher

Evidence for an inflationary phase transition from the LSS and CMB anisotropy data

(2000)

Authors:

J Barriga, E Gaztanaga, MG Santos, S Sarkar
More details from the publisher

Review of particle physics

15:1-4 (2000) 1-878

Authors:

DE Groom, M Aguilar-Benitez, C Amsler, RM Barnett, PR Burchat, CD Carone, C Caso, G Conforto, O Dahl, M Doser, S Eidelman, JL Feng, L Gibbons, M Goodman, C Grab, A Gurtu, K Hagiwara, KG Hayes, JJ Hernández, K Hikasa, K Honscheid, C Kolda, ML Mangano, AV Manohar, A Masoni, K Mónig, H Murayama, K Nakamura, S Navas, KA Olive, L Pape, A Piepke, M Roos, M Tanabashi, NA Törnqvist, TG Trippe, P Vogel, CG Wohl, RL Workman, WM Yao, B Armstrong, JL Casas Serradilla, BB Filimonov, PS Gee, SB Lugovsky, F Nicholson, KS Babu, D Besson, O Biebel, P Bloch, RN Cahn, A Cattai, RS Chivukula, RD Cousins, T Damour, K Desler, RJ Donahue, DA Edwards, J Erler, VV Ezhela, A Fassò, W Fetscher, D Froidevaux, M Fukugita, TK Gaisser, L Garren, S Geer, HJ Gerber, FJ Gilman, HE Haber, C Hagmann, I Hinchliffe, CJ Hogan, G Höhler, P Igo-Kemenes, JD Jackson, KF Johnson, D Karlen, B Kayser, SR Klein, K Kleinknecht, IG Knowles, EW Kolb, P Kreitz, R Landua, P Langacker, L Littenberg, DM Manley, J March-Russell, T Nakada, HR Quinn, G Raffelt, B Renk, L Rolandi, MT Ronan, LJ Rosenberg, HFW Sadrozinski, AI Sanda, M Schmitt

Abstract:

This biennial Review summarizes much of Particle Physics. Using data from previous editions, plus 2000 new measurements from 610 papers, we list, evaluate, and average measured properties of gauge bosons, leptons, quarks, mesons, and baryons. We also summarize searches for hypothetical particles such as Higgs bosons, heavy neutrinos, and supersymmetric particles. All the particle properties and search limits are listed in Summary Tables. We also give numerous tables, figures, formulae, and reviews of topics such as the Standard Model, particle detectors, probability, and statistics. A booklet is available containing the Summary Tables and abbreviated versions of some of the other sections of this full Review. © 2000 Regents of the University of California.
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On the APM power spectrum and the CMB anisotropy: Evidence for a phase transition during inflation?

(2000)

Authors:

Jose Barriga, Enrique Gaztanaga, Mario Santos, Subir Sarkar
More details from the publisher

Thermalisation after inflation

ArXiv hep-ph/0009078 (2000)

Authors:

Sacha Davidson, Subir Sarkar

Abstract:

During (re)heating of the universe after inflation, the relativistic decay products of the inflaton field $φ$ must lose energy and additional particles must be produced to attain a thermalised state at a temperature $T_{\reh}$. We estimate the rate of energy loss via elastic and inelastic scattering interactions. Elastic scattering is an inefficient energy loss mechanism so inelastic processes, although higher order in the coupling $α$, can be faster because more energy is transfered. The timescale to produce a particle number density of ${\cal O}(T_{\reh}^3)$ is the inelastic energy loss timescale, $\sim(α^3 n_φ/T_{\reh}^2)^{-1}$.
Details from ArXiV
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