期刊文献+

Fermions Tunnelling with Quantum Gravity Correction

Fermions Tunnelling with Quantum Gravity Correction
原文传递
导出
摘要 Based on the generalized uncertainty principle(GUP), we investigate the correction of quantum gravity to Hawking radiation of black hole by utilizing the tunnelling method. The result tells us that the quantum gravity correction retards the evaporation of black hole. Using the corrected covariant Dirac equation in curved spacetime, we study the tunnelling process of fermions in Schwarzschild spacetime and obtain the corrected Hawking temperature. It turns out that the correction depends not only on the mass of black hole but also on the mass of emitted fermions. In our calculation, the quantum gravity correction slows down the increase of Hawking temperature during the radiation explicitly. This correction leads to the remnants of black hole and avoids the evaporation singularity. Based on the generalized uncertainty principle(GUP), we investigate the correction of quantum gravity to Hawking radiation of black hole by utilizing the tunnelling method. The result tells us that the quantum gravity correction retards the evaporation of black hole. Using the corrected covariant Dirac equation in curved spacetime, we study the tunnelling process of fermions in Schwarzschild spacetime and obtain the corrected Hawking temperature. It turns out that the correction depends not only on the mass of black hole but also on the mass of emitted fermions. In our calculation, the quantum gravity correction slows down the increase of Hawking temperature during the radiation explicitly. This correction leads to the remnants of black hole and avoids the evaporation singularity.
出处 《Communications in Theoretical Physics》 SCIE CAS CSCD 2014年第12期819-823,共5页 理论物理通讯(英文版)
基金 Supported by the Fundamental Research Funds for the Central Universities under Grant No.lzujbky-2013-16
关键词 BLACK hole Hawking EVAPORATION QUANTUM TUNNELLING QUANTUM GRAVITY black hole Hawking evaporation quantum tunnelling quantum gravity
  • 相关文献

参考文献6

二级参考文献213

  • 1A.G. Reiss, P. Challis, A. Clocchiatti, et al., Astron. J. 116 (1998) 1009.
  • 2S. Perlmutter, G. Aldering, G. Gold- haber, et al., Astrophys. J. 517 (1999) 565.
  • 3J.P. Ostriker and P.J. Steinhardt, Nature (London) 377 (1995) 600.
  • 4C.L. Bennett, M. Halpern, G. Hinshaw, et al., AstrophysJ. Supp 1. 5148 (2003) 1.
  • 5J.M. Maldacena, Adv. Theor. Math. Phys. 2 (1998) 231.
  • 6S.S. Gubser, I.R. Klebanov, and A.M. Polyakov, Phys Lett. B 428 (1998) 105.
  • 7E. Witten, Adv. Theor. Math Phys. 2 (1998) 253; ibid. (1998) 505.
  • 8A. Strominger, J. High Energy Phys. 0110 (2001) 034.
  • 9J High Energy Phys. 0111 (2001) 049.
  • 10D. Klemm, Nucl. Phys. B 625 (2002) 295.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部