fourth generation and dynamical electroweak symmetry breaking

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Fourth Generation and Dynamical Electroweak Symmetry Breaking Michio Hashimoto (KEK) 2010.02.2 0 @KEK Kairaku- en M.H., Miransky, 0912.4453. M.H., Miransky, PRD80(2009)013004. M.H., 1001.4335.

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Fourth Generation and Dynamical Electroweak Symmetry Breaking. 2010.02.20 @KEK. Michio Hashimoto (KEK). M.H., Miransky, PRD80(2009)013004. M.H., Miransky, 0912.4453. M.H., 1001.4335. Kairaku-en. Introduction. It is a fundamental problem whether or not there exists a new generation. - PowerPoint PPT Presentation

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Page 1: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Fourth Generation and Dynamical Electroweak

Symmetry Breaking

Michio Hashimoto

(KEK)

2010.02.20 @KEK

Kairaku-en

M.H., Miransky, 0912.4453.

M.H., Miransky, PRD80(2009)013004.

M.H., 1001.4335.

Page 2: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Introduction• It is a fundamental problem whether or not there exists a new generation.• Notice that concept of the SM allows more than three generations:

No theoretical reason to reject the 4th generation

The Kobayashi-Maskawa theory is NOT limited to 3 generations.

Anomaly free

QCD is asymptotic free. @ 1-loop

Also, it is NOT excluded by the EW precision data…

(repetition of 1,2,3 generations )

Page 3: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

◎ If the 4th generation exists…

NEW PHYSICS which is well-defined and familiar in some aspect

Elementary Higgs may not be needed any longer

Dynamical Electroweak Symmetry Breaking

Free from the problem of naturalness!?

Landau pole of yukawa

The LHC can discover/exclude it at early stage.

Page 4: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

contents

Introduction

Status of the 4th generation

Super heavy quarks and multi-Higgs doublets

M.H., Miransky, 0912.4453.M.H., Miransky, PRD80(2009)013004.

Summary

M.H., 1001.4335.

Page 5: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Constraints on the 4th family

Page 6: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

◎ constraints on the masses

For quarks,

CDF, 0810.3349.

CDF, 0912.1057.

(PDG 2009)

For leptons,

(stable case)

Particle Data Group (PDG) 2009

Page 7: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

★ Z boson invisible width at LEP

by invisible Z width (PDG2008)

◎ Is it proof of the 3 generation?

◎ Number of light neutrinos

is allowed !!

NO !

Page 8: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Constraints from the oblique parameters

Page 9: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

G.D.Kribs, T.Plehn, M.Spannowsky, T.M.P.Tait, PRD76(‘07)075016.

Favorable mass spectrum:

----------------

----------------

Higgs potential quickly falls down and hence becomes unstable at the scale less than 1 TeV!!

◎ Constraints from the S and T parameters

LEP EWWG 68% and 95% C.L. constraints

Page 10: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

★ Very recently, I reanalyzed the (S,T) constraints. I also took into account the RGE’s:

・ Instability bound for the Higgs potential

・ Tree-level unitarity bounds for the yukawa and Higgs quartic couplings

Theoretical cutoff

In earlier works, people considered only S,T or assumed

(M.H., 1001.4335)

etc…

I have varied all masses of the fermions and Higgs boson, and then obtained favorable mass spectra.

(If the Higgs mass is so small, the Higgs potential is unstable at some scale.)

(If the couplings are so large, they diverge at some scale. )

The cutoff should not be so small. Otherwise, such a model is unlikelyto be valid in the LHC physics…

Page 11: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Red

Blue

Violet

Green

We varied

(M.H., 1001.4335)

for

Dirac-type neutrnos are assumed.The 1-loop RGE’s are employed.

(SM4)

Page 12: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

The mass difference of the fermions

is allowed in a wide parameter space!!

is also possible. (Both of them are unlikely.)

Favorable mass spectrum is contained in the following region:

(I took )

Page 13: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Kribs, et al, PRD76(‘07)075016.

Comparison with the earlier work

light Higgs scenario, say,

Our work

The Higgs boson in the SM4 is likely to be heavy, say,

○ △

The strategies are different. Not necessarily contradict each other

Several decay channels are still allowed! etc.

(S,T) 95%CL limit + RGE’s

probably, (S,T) 68% CL limit

Page 14: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

LEP direct search

Heavy Higgs does not contradict the EW precision data in the 4th generation model.This means that a tension between the Higgs mass fit in the SM3 and the LEP lower bound can be removed.

SM3

Page 15: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

evidence/exclusion at LHC with early data

4th generation quarks

Page 16: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

@Taiwan National University

If no excess is observed,

(my estimate)

discovery or exclusion of b’ at LHC

★If we get evidence of the 4th family quarks,it will bring “New Era of Strong Dynamics”.

Page 17: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Dynamical Electroweak Symmetry Breaking

The 4th generation quarks can be closely connected with the DEWSB through their condensations.

(TeV)

The yukawa coupling runs very quickly and reaches the Landau pole at most several tens TeV.

This is a signal for the DEWSB!!

Holdom, PRL57(‘86)2496.

Page 18: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Superheavy quarks and multi-Higgs doublets

◎ The yukawa couplings have the Landau pole ~ O(few TeV).   It suggests compositeness, i.e.,

★ The t’ and b’ condensations can dynamically trigger the EWSB and also the top may contribute somewhat.

the Nambu-Jona-Lasinio description is applicable in low energy.

M.H., Miransky, PRD80(2009)013004; 0912.4453.

○ The point is that the masses of t’, b’ and t are O(v=246GeV).

Multiple composite Higgs doublet model

2,3,4,5 Higgs doublets

A nonperturbative model

Page 19: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

4th generation!? Why?

Page 20: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Prediction of the top mass in the 3 generation model

Too Large!!

(PDG2009)

The minimal 3 gen. model does not work.

◎ Top See-saw

◎ Top mode standard model with extra dimensions

Dobrescu and Hill, PRL81(‘98)2634.

MH, Tanabashi, Yamawaki, PRD64(‘01)056003.

4th generation model Holdom, PRL57(‘86)2496.

Page 21: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

NJL-Model

Three Higgs doublet model

low energy effective theory @ composite scale

M.H., Miransky, 0912.4453.

We consider only t’, b’ and t.

Such a NJL-type model can be produced by a topcolor model, for example.

Page 22: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

◎The low energy effective theory @ EWSB scale

Higgs potential @ 1/Nc leading approximation

Page 23: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Higgs quartic coupling --- 2 Higgs part + 1 Higgs part

(2+1)-Higgs doublet model

◎ When we ignore the EW 1-loop effect, the (2+1)-Higgs structure is safely kept.  The quartic term is then written as

Cf) is absent.

(The mass terms are general one.)

Page 24: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

We calculate the mass spectrum by using the BHL approach:

RGE for the (2+1)-Higgs doublets + compositeness conditions

and for various

Numerical Analysis

composite scale (Landau pole) of t’ and b’

Page 25: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

The mass spectrum of the Higgs bosons for various

We also used

(2+1) Higgs structure

within 95% CL limit of the (S,T)-constraint◎

◎ We took a large , so we can evade constraint.

Page 26: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

The physical Higgs bosons in the 3 Higgs doublet model are

CP even Higgs -- 3

CP odd Higgs -- 2

charged Higgs -- 2+2

Page 27: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

What is the signature?

Page 28: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

◎ An example data for the scenario with

Inputs:

Outputs:

Page 29: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

yukawa couplings

Decay width into WW, ZZ

Enhancement of Higgs production of H1

Page 30: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

・ resonances in ttbar channel ・ The heavier Higgs H2 resonance may exist

in the ZZ mode. ・ Also, in the t’t’bar channels, there may appear

scalar resonances.

・・・

Higgs Phenomenology is quite rich!

Page 31: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

Summary and discussions• There exists an allowed parameter region for the 4th generation model. Probably, the LHC

will answer to this problem.• If the 4th generation exist, the t’ and b’ will be

closely connected with the EWSB. The top quark also contributes to the EWSB somewhat.• The dynamical model with the 4th generation

naturally yields multi-Higgs doublets. We analyzed the (2+1)-Higgs model.

Page 32: Fourth Generation and  Dynamical Electroweak Symmetry Breaking

In Progress:

Branching ratio of the Higgs

Decay mode of the Higgs bosons

etc.

Lepton sectorMajorana neutrinosetc.

Under construction:

Thank you,