Erasure tolerant quantum memory and the quantum null energy condition in holographic systems
Avik Banerjee, Tanay Kibe, Nehal Mittal, Ayan Mukhopadhyay, Pratik Roy

TL;DR
This paper explores erasure-tolerant quantum memory in holographic systems, using the quantum null energy condition to determine minimal temperature requirements for quantum information erasure, with implications for fault-tolerant quantum computing.
Contribution
It provides an analytic framework linking the quantum null energy condition to finite-temperature quantum memory erasure limits in holographic conformal field theories.
Findings
Quantum null energy condition sets a lower bound on erasure temperature.
Derived a simple expression for the minimal final temperature for erasing multiple qubits.
Identified a localization length constraint for successful fast erasure processes.
Abstract
Investigating principles for storage of quantum information at finite temperature with minimal need for active error correction is an active area of research. We bear upon this question in two-dimensional holographic conformal field theories via the quantum null energy condition (QNEC) that we have shown earlier to implement the restrictions imposed by quantum thermodynamics on such many-body systems. We study an explicit encoding of a logical qubit into two similar chirally propagating excitations of finite von-Neumann entropy on a finite temperature background whose erasure can be implemented by an appropriate inhomogeneous and instantaneous energy-momentum inflow from an infinite energy memoryless bath due to which the system transits to a thermal state. Holographically, these fast erasure processes can be depicted by generalized AdS-Vaidya geometries described previously in which no…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Quantum many-body systems · Quantum Information and Cryptography
