论文标题

二次GUP修饰的白色矮人的结构中的有限温度考虑因素

Finite Temperature Considerations in the Structure of Quadratic GUP-modified White Dwarfs

论文作者

Tuñacao, James David M., Abac, Adrian G., Otadoy, Roland Emerito S.

论文摘要

在量子重力现象学中,普遍的不确定性原理(GUP)对文献中已引起了很多关注。但是,这些研究假设状态(EOS)的温度方程为零,因此排除了初始温度基本上高的年轻白矮人。为此,本文计算了Chandrasekhar EOS,并导致了由二次GUP修饰的有限温度白色矮人的质量 - 拉迪乌斯关系,这种方法通过Momenta中的二次术语扩展了Heisenberg的不确定性原理。首先通过将二次GUP参数视为扰动来近似EOS,从而导致EOS在低压下表现出预期的热偏差,并在高压下表现出冲突的行为,具体取决于近似值。然后,我们进行了修改后的EOS的完整数值模拟,并表明通常,有限温度会导致EOS在低压下的软化,而二次GUP则在高压下将EOS僵硬。然后将此修改后的EOS应用于Tolman-Oppenheimer-Volkoff方程及其经典近似,以获得一般相对论和牛顿白矮人的修改质量 - 拉迪乌斯关系。发现这两种情况的关系均显示出小质量的预期热偏差,在大质量中,低质量的白矮人在大半径上转移到了高质量状态,而高质量的白矮人则获得了更大的质量,超出了Chandrasekhar限制。此外,我们发现,对于GUP参数和温度的足够大值,我们获得了质量 - 拉迪乌斯关系,这些关系完全从理想的情况下删除,因为由于GUP而导致的高质量偏差和由于温度引起的低质量偏差不再相互排斥。

In quantum gravity phenomenology, the effect of the generalized uncertainty principle (GUP) on white dwarfs has been given much attention in the literature. However, these studies assume a zero temperature equation of state (EoS), consequently excluding young white dwarfs whose initial temperatures are substantially high. To that cause, this paper calculates the Chandrasekhar EoS and resulting mass-radius relations of finite temperature white dwarfs modified by the quadratic GUP, an approach that extends Heisenberg's uncertainty principle by a quadratic term in momenta. The EoS was first approximated by treating the quadratic GUP parameter as perturbative, causing the EoS to exhibit expected thermal deviations at low pressures, and conflicting behaviors at high pressures, depending on the order of approximation. We then proceeded with a full numerical simulation of the modified EoS, and showed that in general, finite temperatures cause the EoS at low pressures to soften, while the quadratic GUP stiffens the EoS at high pressures. This modified EoS was then applied to the Tolman-Oppenheimer-Volkoff equations and its classical approximation to obtain the modified mass-radius relations for general relativistic and Newtonian white dwarfs. The relations for both cases were found to exhibit the expected thermal deviations at small masses, where low-mass white dwarfs are shifted to the high-mass regime at large radii, while high-mass white dwarfs acquire larger masses, beyond the Chandrasekhar limit. Additionally, we find that for sufficiently large values of the GUP parameter and temperature, we obtain mass-radius relations that are completely removed from the ideal case, as high-mass deviations due to GUP and low-mass deviations due to temperature are no longer mutually exclusive.

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