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Locality and Conserved Charges in $T\overline{T}$-Deformed CFTs
by Ruben Monten, Richard M. Myers, Konstantinos Roumpedakis
Submission summary
Authors (as registered SciPost users): | Ruben Monten |
Submission information | |
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Preprint Link: | scipost_202506_00029v1 (pdf) |
Date accepted: | July 9, 2025 |
Date submitted: | June 13, 2025, 6:21 p.m. |
Submitted by: | Monten, Ruben |
Submitted to: | SciPost Physics |
Ontological classification | |
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Academic field: | Physics |
Specialties: |
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Approach: | Theoretical |
Abstract
We investigate the locality properties of $T \overline T$-deformed CFTs within perturbation theory. Up to third order in the deformation parameter, we find a Hamiltonian operator which solves the flow equation, reproduces the $T\overline T$ energy spectrum, and is consistent with quasi-locality of the theory. This Hamiltonian includes terms proportional to the central charge which have not appeared before and which are necessary to reproduce the correct spectrum. We show that the Hamiltonian is not uniquely defined since it contains free parameters, starting at second order, which do not spoil the above properties. We then use it to determine the full conserved stress tensor. In our approach, the KdV charges are automatically conserved to all orders but are not a priori local. Nevertheless, we show that they can be made local to first order. Our techniques allow us to further comment on the space of Hamiltonians constructed from products of KdV charges which also flow to local charges in the deformed theory in the IR.
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Author comments upon resubmission
List of changes
In this version we have: - clarified the wording around equation (1.1) - corrected footnote 5 - changed the discussion around equation (1.6) in the way the referee suggested - corrected typos - corrected the misnomer "Zamolodchikov energy spectrum" in the abstract and properly referencing earlier results that obtained the energy formula - and added a comparison to the results by Zamolodchikov and Klassen--Melzer for the energies of the ground state and first excited state of the QFT obtained by flowing from the tri-critical to the critical Ising model, expanded near the IR.
Current status:
Editorial decision:
For Journal SciPost Physics: Publish
(status: Editorial decision fixed and (if required) accepted by authors)
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Report #1 by Christian Ferko (Referee 1) on 2025-6-17 (Invited Report)
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