Using integral dispersion relations to extend the LHC reach for new physics

Type: Article

Publication Date: 2014-02-24

Citations: 0

DOI: https://doi.org/10.1103/physrevd.89.035013

Abstract

Many models of electroweak symmetry breaking predict new particles with masses at or just beyond LHC energies. Even if these particles are too massive to be produced on-shell at the LHC, it may be possible to see evidence of their existence through the use of integral dispersion relations (IDRs). Making use of Cauchy's integral formula and the analyticity of the scattering amplitude, IDRs are sensitive in principle to changes in the cross section at arbitrarily large energies. We investigate some models of new physics. We find that a sudden, order-one increase in the cross section above new particle mass thresholds can be inferred well below the threshold energy. On the other hand, for two more physical models of particle production, we show that the reach in energy and the signal strength of the IDR technique is greatly reduced. The peak sensitivity for the IDR technique is shown to occur when the new particle masses are near the machine energy, an energy where direct production of new particles is kinematically disallowed, phase-space suppressed, or, if applicable, suppressed by the soft parton distribution functions. Thus, IDRs do extend the reach of the LHC, but only to a window around ${M}_{\ensuremath{\chi}}\ensuremath{\sim}\sqrt{{s}_{\mathrm{LHC}}}$.

Locations

  • Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D, Particles, fields, gravitation, and cosmology - View
  • arXiv (Cornell University) - View - PDF
  • DataCite API - View

Similar Works

Action Title Year Authors
+ PDF Chat Searches for new physics at the Tevatron and LHC 2012 P. Wittich
+ Understanding the Standard Model, as a Bridge to the Discovery of New Phenomena at the LHC 2008 Michelangelo L. Mangano
+ PDF Chat Comment on “Amplification of endpoint structure for new particle mass measurement at the LHC” 2011 A. J. Barr
C. Gwenlan
C. G. Lester
C. Young
+ New Physics at the LHC 2009 David E. Morrissey
Tilman Plehn
Tim M. P. Tait
+ New physics searches for the LHC 2011 Tilman Plehn
+ New physics searches for the LHC 2011 Tilman Plehn
+ Mass Determination of New Particle States 2009 Mario Serna
+ PDF Chat The Operator Product Expansion Beyond Perturbation Theory in QCD 2011 C. A. DomĂ­nguez
Alejandro Ayala
Guillermo Contreras
Ildefonso Leon
Pedro Podesta
+ Hidden Thresholds: A Technique for Reconstructing New Physics Masses at Hadron Colliders 2008 Peisi Huang
N. Kersting
H. H. Yang
+ Compositeness smears causality in effective theory and limits the maximum precision of some dispersive approaches 2019 Felipe J. Llanes–Estrada
Raúl Roldán-González
+ Phenomenological aspects of new physics at high energy hadron colliders 2011 Andreas Papaefstathiou
+ Phenomenological aspects of new physics at high energy hadron colliders 2011 Andreas Papaefstathiou
+ Smearing of causality by compositeness divides dispersive approaches into exact ones and precision-limited ones 2019 Felipe J. Llanes–Estrada
Raúl Roldán-González
+ PDF Chat Smearing of causality by compositeness divides dispersive approaches into exact ones and precision-limited ones 2022 Felipe J. Llanes–Estrada
Raúl Roldán-González
+ PDF Chat New phenomena beyond both the standard model and MSSM 1995 JoAnne L. Hewett
+ PDF Chat Falsifying Models of New Physics via<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mi>W</mml:mi><mml:mi>W</mml:mi></mml:math>Scattering 2007 Jacques Distler
Benjaḿın Grinstein
Rafael A. Porto
Ira Z. Rothstein
+ Status of the Standard Model at the LHC Start 2008 Guido Altarelli
+ Status of the Standard Model at the LHC Start 2008 Guido Altarelli
+ Hidden Thresholds: Reconstructing NP Masses 2008 Peisi Huang
N. Kersting
H. H. Yang
+ Probing the scale of New Physics at the LHC 2013 S. Fichet

Works That Cite This (0)

Action Title Year Authors

Works Cited by This (15)

Action Title Year Authors
+ PDF Chat Probe R-parity violating stop resonance at the LHeC 2011 Wei Hong-Tang
Zhang Ren-You
Lei Guo
L. Han
Wen-Gan Ma
Xiaopeng Li
Tingting Wang
+ PDF Chat Forward hadronic scattering at 8 TeV: Predictions for the LHC 2012 M. M. Block
F. Halzen
+ PDF Chat Elastic scattering of hadrons 2013 Igor Dremin
+ PDF Chat Discovery potential for supersymmetry in CMS* 2002 Salavat Abdullin
Ž. Antunović
F. Charles
D. Denegri
U Dydak
M. DĹľelalija
V. Genchev
Daniel J. Graham
I. Iashvili
A. Kharchilava
+ PDF Chat Analyticity as a robust constraint on the total cross section at the CERN Large Hadron Collider 2006 M. M. Block
F. Halzen
+ PDF Chat New experimental evidence that the proton develops asymptotically into a black disk 2012 M. M. Block
F. Halzen
+ PDF Chat Evidence for the saturation of the Froissart bound 2004 M. M. Block
F. Halzen
+ PDF Chat First measurement of the total proton-proton cross-section at the LHC energy of \chem{\sqrt{s} = 7\,TeV} 2011 G. Antchev
P. Aspell
I. Atanassov
V. Avati
J. Baechler
V. Berardi
M. Berretti
E. Bossini
M. Bozzo
P. Brogi
+ PDF Chat Search for Top Squarks in<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mi>R</mml:mi></mml:math>-Parity-Violating Supersymmetry Using Three or More Leptons and<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mi>b</mml:mi></mml:math>-Tagged Jets 2013 S. Chatrchyan
V. Khachatryan
A. M. Sirunyan
A. Tumasyan
W. Adam
T. Bergauer
M. Dragicevic
J. Erö
C. Fabjan
M. Friedl
+ PDF Chat Luminosity determination in pp collisions at $\sqrt{s} = 7$ TeV using the ATLAS detector at the LHC 2011 G. Aad
B. Abbott
J. Abdallah
A. A. Abdelalim
A. Abdesselam
O. Abdinov
B. Abi
M. Abolins
H. Abramowicz
H. Abreu