An Operator Product Expansion for Form Factors III. Finite Coupling and Multi-Particle Contributions

Research output: Contribution to journalJournal articleResearchpeer-review

Standard

An Operator Product Expansion for Form Factors III. Finite Coupling and Multi-Particle Contributions. / Sever, Amit; Tumanov, Alexander G.; Wilhelm, Matthias.

In: Journal of High Energy Physics, Vol. 2022, No. 3, 128, 21.03.2022.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Sever, A, Tumanov, AG & Wilhelm, M 2022, 'An Operator Product Expansion for Form Factors III. Finite Coupling and Multi-Particle Contributions', Journal of High Energy Physics, vol. 2022, no. 3, 128. https://doi.org/10.1007/JHEP03(2022)128

APA

Sever, A., Tumanov, A. G., & Wilhelm, M. (2022). An Operator Product Expansion for Form Factors III. Finite Coupling and Multi-Particle Contributions. Journal of High Energy Physics, 2022(3), [128]. https://doi.org/10.1007/JHEP03(2022)128

Vancouver

Sever A, Tumanov AG, Wilhelm M. An Operator Product Expansion for Form Factors III. Finite Coupling and Multi-Particle Contributions. Journal of High Energy Physics. 2022 Mar 21;2022(3). 128. https://doi.org/10.1007/JHEP03(2022)128

Author

Sever, Amit ; Tumanov, Alexander G. ; Wilhelm, Matthias. / An Operator Product Expansion for Form Factors III. Finite Coupling and Multi-Particle Contributions. In: Journal of High Energy Physics. 2022 ; Vol. 2022, No. 3.

Bibtex

@article{0aca581542c04df2976e59f7948ff217,
title = "An Operator Product Expansion for Form Factors III. Finite Coupling and Multi-Particle Contributions",
abstract = "Form factors in planar N = 4 super-Yang-Mills theory have a dual description in terms of periodic Wilson loops. This duality maps the multi-collinear expansion of the former to an operator product expansion of the latter. The coefficients of this expansion are decomposed in terms of several elementary building blocks and can be determined at finite 't Hooft coupling using bootstrap and integrability techniques. Some of these building blocks are known from an analogous expansion of scattering amplitudes. In addition to these, the expansion for form factors includes a new type of building block, called form factor transitions, that encode information about the local operator. In the present paper, we consider the form factor of the chiral part of the stress-tensor supermultiplet. We bootstrap the corresponding form factor transitions of two-particle flux-tube states and use them to predict the leading term in the collinear expansion at finite coupling. The transitions we find can be expressed in terms of a quantity that previously appeared in a seemingly unrelated context, namely the octagon kernel. Lastly, we use a factorized ansatz to determine the multi-particle form factor transitions at finite coupling, which we use to predict the first subleading term in the collinear expansion. A perfect match is found between our predictions and the available perturbative data.",
keywords = "1/N Expansion, AdS-CFT Correspondence, Integrable Field Theories, Scattering Amplitudes, PENTAGONS, MATRIX, MODELS",
author = "Amit Sever and Tumanov, {Alexander G.} and Matthias Wilhelm",
year = "2022",
month = mar,
day = "21",
doi = "10.1007/JHEP03(2022)128",
language = "English",
volume = "2022",
journal = "Journal of High Energy Physics (Online)",
issn = "1126-6708",
publisher = "Springer",
number = "3",

}

RIS

TY - JOUR

T1 - An Operator Product Expansion for Form Factors III. Finite Coupling and Multi-Particle Contributions

AU - Sever, Amit

AU - Tumanov, Alexander G.

AU - Wilhelm, Matthias

PY - 2022/3/21

Y1 - 2022/3/21

N2 - Form factors in planar N = 4 super-Yang-Mills theory have a dual description in terms of periodic Wilson loops. This duality maps the multi-collinear expansion of the former to an operator product expansion of the latter. The coefficients of this expansion are decomposed in terms of several elementary building blocks and can be determined at finite 't Hooft coupling using bootstrap and integrability techniques. Some of these building blocks are known from an analogous expansion of scattering amplitudes. In addition to these, the expansion for form factors includes a new type of building block, called form factor transitions, that encode information about the local operator. In the present paper, we consider the form factor of the chiral part of the stress-tensor supermultiplet. We bootstrap the corresponding form factor transitions of two-particle flux-tube states and use them to predict the leading term in the collinear expansion at finite coupling. The transitions we find can be expressed in terms of a quantity that previously appeared in a seemingly unrelated context, namely the octagon kernel. Lastly, we use a factorized ansatz to determine the multi-particle form factor transitions at finite coupling, which we use to predict the first subleading term in the collinear expansion. A perfect match is found between our predictions and the available perturbative data.

AB - Form factors in planar N = 4 super-Yang-Mills theory have a dual description in terms of periodic Wilson loops. This duality maps the multi-collinear expansion of the former to an operator product expansion of the latter. The coefficients of this expansion are decomposed in terms of several elementary building blocks and can be determined at finite 't Hooft coupling using bootstrap and integrability techniques. Some of these building blocks are known from an analogous expansion of scattering amplitudes. In addition to these, the expansion for form factors includes a new type of building block, called form factor transitions, that encode information about the local operator. In the present paper, we consider the form factor of the chiral part of the stress-tensor supermultiplet. We bootstrap the corresponding form factor transitions of two-particle flux-tube states and use them to predict the leading term in the collinear expansion at finite coupling. The transitions we find can be expressed in terms of a quantity that previously appeared in a seemingly unrelated context, namely the octagon kernel. Lastly, we use a factorized ansatz to determine the multi-particle form factor transitions at finite coupling, which we use to predict the first subleading term in the collinear expansion. A perfect match is found between our predictions and the available perturbative data.

KW - 1/N Expansion

KW - AdS-CFT Correspondence

KW - Integrable Field Theories

KW - Scattering Amplitudes

KW - PENTAGONS

KW - MATRIX

KW - MODELS

U2 - 10.1007/JHEP03(2022)128

DO - 10.1007/JHEP03(2022)128

M3 - Journal article

VL - 2022

JO - Journal of High Energy Physics (Online)

JF - Journal of High Energy Physics (Online)

SN - 1126-6708

IS - 3

M1 - 128

ER -

ID: 302380785