论文标题

多事件地平线的宇宙学和黑洞岛

Cosmological and black hole islands in multi-event horizon spacetimes

论文作者

Yadav, Gopal, Joshi, Nitin

论文摘要

在本文中,我们使用Schwarzschild De-Sitter黑洞时空的Island提案分析了信息悖论及其分辨率。首先,我们通过将两侧的De-sitter贴片视为冷冻背景(通过插入热不透明膜)来研究黑洞斑块的信息悖论,然后我们也对De-Sitter贴片进行了类似的研究。在这两种情况下,当没有岛表面时,纠缠熵与往常一样,线性时间依赖性,而在存在岛表面纠缠熵的情况下,熵变为恒定(等于黑洞/脱水量贴剂的热熵两倍)。因此,我们获得了黑洞的页面曲线和与黑洞统一演变一致的De-Sitter贴片。在我们的案例中,我们发现黑洞岛位于黑洞事件地平线内,与永恒的黑洞的通用结果相反,宇宙岛也位于宇宙学事件地平线内。此外,我们研究了“温度的效果”对页面曲线的“温度效果”,发现页面曲线在稍后的低温黑洞/脱水量贴片上出现,并且在高温方面表现出相反的行为。这意味着与高温黑洞/de-sitter贴片相比,低温黑洞/脱水量的“岛屿优势”和“信息恢复”需要更多时间。我们还对研究SDS时空中的信息悖论的挑战发表评论,而没有热不透明膜。

In this paper, we have analyzed the information paradox and its resolution using island proposal in Schwarzschild de-Sitter black hole spacetime. First, we study the information paradox for the black hole patch by treating de-Sitter patch on both sides as a frozen background (by inserting thermal opaque membrane) and then we carry out similar study for de-Sitter patch also. In both cases, when there is no island surface then the entanglement entropy has as usual the linear time dependence whereas in the presence of an island surface entanglement entropy become constant (equal to twice of thermal entropy of black hole/de-Sitter patch). Therefore, we obtain the Page curves for the black hole and de-Sitter patch consistent with the unitary evolution of black holes. In our case, we have found that black hole island is located inside the black hole event horizon in contrast to universal result for eternal black holes and also cosmological island is located inside the cosmological event horizon. Further, we have studied the "effect of temperature" on the Page curves and found that Page curves appear at later times for low temperature black holes/de-Sitter patch and it exhibit opposite behavior for high temperature. This implies that "dominance of islands" and "information recovery" takes more time for low temperature black holes/de-Sitter patch in contrast to high temperature black holes/de-Sitter patch. We also make comments on the challenges to study the information paradox in SdS spacetime without the thermal opaque membrane.

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