Holographic dark energy through Kaniadakis entropy in non flat universe

被引:15
|
作者
Kumar, P. Suresh [1 ,2 ]
Pandey, Bramha Dutta [1 ,2 ]
Sharma, Umesh Kumar [1 ]
Pankaj, C. [3 ]
机构
[1] GLA Univ, Inst Appl Sci & Humanities, Dept Math, Mathura 281406, Uttar Pradesh, India
[2] Univ Technol & Appl Sci Salalah, IT Dept, Math Sect, Salalah, Oman
[3] Pranveer Singh Inst Technol, Dept Math BSH, Kanpur 209305, Uttar Pradesh, India
来源
EUROPEAN PHYSICAL JOURNAL C | 2023年 / 83卷 / 02期
关键词
OBSERVATIONAL CONSTRAINTS; MODEL; INFLATION;
D O I
10.1140/epjc/s10052-023-11277-5
中图分类号
O412 [相对论、场论]; O572.2 [粒子物理学];
学科分类号
摘要
By extending the standard holographic principle to a cosmological framework and combining the non-flat condition with the Kaniadakis entropy, we construct the non-flat Kaniadakis holographic dark energy (KHDE) model. The model employs Kaniadakis parameter K and a parameter c. Derivation of the differential equation for KHDE density parameter to describe the evolutionary behavior of the universe is obtained. Such a differential equation could explain both the open as well as closed universe models. The classification based on matter and dark energy (DE) dominated regimes show that the KHDE scenario may be used to specify the universe's thermal history and that a quintom regime can be encountered. For both open and closed, we find the expressions for the deceleration parameter and the equation of state (EoS) parameter. Also, by varying the associated parameters, classical stability of the method is established. On considering the curvature to be positive, the universe favors the quintom behavior for substantially smaller values as opposed to the flat condition, when only quintessence is attained for such K values. Additionally, we see a similar behavior while considering the negative curvature for such K values. Therefore, adding a little bit of spatial geometry that isn't flat to the KHDE enhances the phenomenology while maintaining K values at lower levels. To validate the model parameters, the most recent 30 H(z) dataset, in the redshift range 0.07 <= z <= 1.965 are utilized. In addition, the distance modulus from the current Union 2.1 data set of type SNIa are employed.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Holographic dark energy through Kaniadakis entropy in non flat universe
    P. Suresh Kumar
    Bramha Dutta Pandey
    Umesh Kumar Sharma
    The European Physical Journal C, 83
  • [2] Kaniadakis holographic dark energy in nonflat universe
    Sharma, Umesh Kumar
    Dubey, Vipin Chandra
    Ziaie, A. H.
    Moradpour, H.
    INTERNATIONAL JOURNAL OF MODERN PHYSICS D, 2022, 31 (03):
  • [3] The holographic dark energy in a non-flat universe
    Huang, QG
    Li, M
    JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2004, (08): : 261 - 270
  • [4] The Stability of Holographic Dark Energy in Non-flat Universe
    Huang, P.
    Huang, Y. C.
    INTERNATIONAL JOURNAL OF THEORETICAL PHYSICS, 2014, 53 (01) : 10 - 16
  • [5] The Stability of Holographic Dark Energy in Non-flat Universe
    P. Huang
    Y. C. Huang
    International Journal of Theoretical Physics, 2014, 53 : 10 - 16
  • [6] THERMODYNAMICS OF INTERACTING ENTROPY-CORRECTED HOLOGRAPHIC DARK ENERGY IN A NON-FLAT FRW UNIVERSE
    Jamil, Mubasher
    Sheykhi, Ahmad
    Farooq, M. Umar
    INTERNATIONAL JOURNAL OF MODERN PHYSICS D, 2010, 19 (11): : 1831 - 1842
  • [7] Interacting holographic dark energy model in non-flat universe
    Setare, M. R.
    PHYSICS LETTERS B, 2006, 642 (1-2) : 1 - 4
  • [8] Kaniadakis holographic dark energy and cosmology
    Niki Drepanou
    Andreas Lymperis
    Emmanuel N. Saridakis
    Kuralay Yesmakhanova
    The European Physical Journal C, 82
  • [9] Kaniadakis holographic dark energy and cosmology
    Drepanou, Niki
    Lymperis, Andreas
    Saridakis, Emmanuel N.
    Yesmakhanova, Kuralay
    EUROPEAN PHYSICAL JOURNAL C, 2022, 82 (05):
  • [10] Diagnosing interacting Tsallis holographic dark energy in the non-flat universe
    Sharma, Umesh Kumar
    Dubey, Vipin Chandra
    Pradhan, Anirudh
    INTERNATIONAL JOURNAL OF GEOMETRIC METHODS IN MODERN PHYSICS, 2020, 17 (02)