The Entanglement Wedge Duality and Hilbert Space Factorization in AdS/CFT, Karch–Randall Braneworld and Black Hole Physics

IF 5.6 3区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Minseong Kim
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Abstract

The entanglement wedge duality in AdS/CFT, Karch–Randall braneworld and black hole (BH) physics is discussed, critically (as in critiques) revolving around Terashima (2024) and Mathur (2009). Emphasis are placed on the semiclassicality requirement and potential breakdown of bulk-wise effective Hilbert space factorization between the BH exterior and the interior, supported by various examples. In particular, a simple quasi-paradox for the entanglement wedge duality in AdS/BCFT is put forward, suggesting that it is not possible to have all of semiclassicality, the entanglement wedge duality and bulk-wise Hilbert space factorization in Karch–Randall braneworld. Giving up factorization, a toy qudit model of BCFT is developed as to derive purification of the BH exterior, despite mostly sharing the setup with the small corrections theorem of Mathur (2009). Put together, the entanglement wedge duality is yet to be disproved despite some results by Terashima, and a toy qudit model cannot disprove semiclassicality in BH physics. The precise understanding of the duality also helps identify how the BH information paradox is dissolved within double holography beyond Karch–Randall braneworld setups.

AdS/CFT、Karch-Randall Braneworld和黑洞物理中的纠缠楔形对偶和Hilbert空间分解
围绕着Terashima(2024)和Mathur(2009),讨论了AdS/CFT、Karch-Randall膜世界和黑洞(BH)物理中的纠缠楔形对偶性。重点放在黑洞外部和内部之间的体积有效希尔伯特空间分解的半经典性要求和潜在的分解上,并得到各种例子的支持。特别地,我们提出了AdS/BCFT中纠缠楔形对偶的一个简单拟悖论,表明在Karch-Randall膜世界中不可能拥有所有的半经典性、纠缠楔形对偶和体积希尔伯特空间分解。放弃因式分解,开发了BCFT的一个玩具qudit模型来推导黑洞外部的净化,尽管它的设置与Mathur(2009)的小修正定理基本相同。综上所述,尽管Terashima得出了一些结果,但纠缠楔形二象性还没有被证伪,而且一个玩具量子位模型也不能证伪黑洞物理中的半经典性。对二象性的精确理解也有助于确定黑洞信息悖论是如何在超越Karch-Randall膜世界设置的双全息中被溶解的。
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来源期刊
CiteScore
6.70
自引率
7.70%
发文量
75
审稿时长
6-12 weeks
期刊介绍: The journal Fortschritte der Physik - Progress of Physics is a pure online Journal (since 2013). Fortschritte der Physik - Progress of Physics is devoted to the theoretical and experimental studies of fundamental constituents of matter and their interactions e. g. elementary particle physics, classical and quantum field theory, the theory of gravitation and cosmology, quantum information, thermodynamics and statistics, laser physics and nonlinear dynamics, including chaos and quantum chaos. Generally the papers are review articles with a detailed survey on relevant publications, but original papers of general interest are also published.
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