The Observation of B 0 s Oscillations at the Tevatron

Post on 05-Jan-2016

25 views 0 download

description

The Observation of B 0 s Oscillations at the Tevatron. Matthew Jones Purdue University / CDF. Fermion Masses. Gauge sector with massless fermions: Higgs sector: General Higgs-quark couplings: Spontaneous symmetry breaking:. diagonalize. CKM Sector of the Standard Model. - PowerPoint PPT Presentation

Transcript of The Observation of B 0 s Oscillations at the Tevatron

June 2, 2006 CIPANP06 1

The Observation of B0s

Oscillations at the Tevatron

Matthew Jones

Purdue University/CDF

2

Fermion Masses• Gauge sector with massless fermions:

• Higgs sector:

• General Higgs-quark couplings:

• Spontaneous symmetry breaking:

diagonalize

3

• One of several explanations for CP violation observed in

• If this was the source of CP violation in the kaon system, then large effects should be observed in B decays.

CKM Sector of the Standard Model

Matthew Jones
K_L is almos pure K_2 which is CP odd.Two pion system has C=+1 and P=+1 so 'tis CP even.

4

The CKM Matrix

• Unitary 3x3 matrix 4 parameters:

• λ = 0.2272±0.0010 A = 0.809±0.014

• CP violation η≠0

• Need a precise determination of Vtd

Magnitude proportional to the area of this little square...

Already well measured

(most recent results from CKMFitter)

Matthew Jones
Magnitudes of CKM matrix elements just came from the values in the 2004 PDG review.Lambda comes from most recent CKMFitter result.

5

(0,0)

The Unitary Triangle

• Try to over-constrain its shape:– ACP in B0J/ψK0

S: sin 2β=0.72±0.02

– Length of one side from

– Length of other side from Δmd/Δms...

(1,0)

(ρ,η)

6

Last Year’s Unitary Triangle

• Next strong constraint will come from Δms.

(0,0)

(1,0)

7

• Quark flavor eigenstates:

• Time dependence:

• CP eigenstates:

• Mass difference: Δm = MH – M L

Mixing

8

Time Evolution • QCD produces flavor eigenstates:

• Interference between CP eigenstates

• Decay identifies final quark flavor:

• Fit for Δms using this model, taking into account several experimental limitations.

9

Mixing

From lattice QCD

(hep-lat/0510113)

Δmd and masses are well measured

10

Contributions from New Physics?

• FCNC suppressed in Standard Model

• Contribution from new physics scenarios:

• Also affects

11

Search for Bs Oscillations

• Four steps:– Reconstruct decays– Measure proper decay time precisely– Identify initial flavor state

– Is the data consistent with oscillations at a

given mixing frequency?

• Significance of an observation:

Statistical power reduced by efficiency and mistag fraction (εD2)

12

(2003)

Amplitude Scans and Likelihood

Expect A=1 at true Δms

Significance from depth of log-likelihood ratio

13

Result from the DØ Experiment

• March 12, Moriond EW 2006

• Result from DØ: 17<Δms<21 ps-1 (90% CL)

14

Result from the DØ Experiment

• March 12, Moriond EW 2006

• Result from DØ: 17<Δms<21 ps-1 (90% CL)

15

The CDF Detector

Muon systems:CMP CMX CMU

SVX-IICOTTOF

Hadronic EM

Calorimeter

16

Signal Reconstruction• Trigger on displaced tracks and look for:

3,700 fully reconstructed

53,000 partially reconstructed

17

Limited number of patterns

Cut at |d0|>120 μm

Proper Decay Time• Proper decay time: ct = Lxy M/pT

• Impact parameter trigger lifetime bias

• Efficiency calculated using B Monte Carlo and an emulation of the trigger

• Checked using B+J/ψK+

lifetime resolution

18

Lifetime Measurements

Still dominated by statistical uncertainty

World Averages: hep-ex/0603003

19

Initial State Flavor Tagging

Two techniques used:• Opposite Side Tag

– QCD produces pairs – Look for decay products of

the other B hadron (eg, leptons)

– Combined effectiveness:

εD2 = 1.5%• Same Side Tag

Dsπ

B decay

primary vertex

D decaySa

me

Sid

eO

pp

osite

Sid

e

Other B decay

20

Δmd=0.503±0.065 ps-1 (hadronic)

Δmd=0.497±0.032 ps-1 (semi-leptonic)

Δmd=0.507±0.004 ps-1 (World average)

Cross Checks with B0/B±

• Account for any difference between signal and calibration samples.

21

Initial State Flavor Tagging

Two techniques used:• Opposite Side Tag

– QCD produces pairs – Look for decay products of

the other B hadron (eg, leptons)

– Combined effectiveness:

εD2 = 1.5%• Same Side Tag

– Look for particles produced in association with the Bs

Dsπ

B decay

primary vertex

D decaySa

me

Sid

eO

pp

osite

Sid

e

Other B decay

22

Same Side Kaon Tag• Local quark flavor

conservation in QCD

• Expect more kaons with Bs mesons

• Kaon charge identifies the initial Bs flavor

• A primary motivation for building TOF detector.

Original estimates based on Pythia (Lund string model):

23

• Count charged kaons around B0, B+, Bs:

• Find more kaons produced in association with Bs

• Qualitative agreement with Monte Carlo

Same Side Kaon Tag

CDF Run II Preliminary

CDF Data

Pythia Monte Carlo

K± around B0/B± K± around Bs

24

An Exciting Spring:

• March 12: DØ result released at Moriond• March 14: CDF unblinded an analysis

of about 1/3 of the hadronic decay data– Observed evidence for oscillations

• Next few weeks:– Validation of remaining data– Inclusion of semi-leptonic analysis– Establish criteria for quoting a limit or a

measurement

25

Unblinded CDF Analysis

Released April 11, presented at FPCP 2006 on April 12.

evidence of oscillations

26

Limit or Measurement?

• Probability of statistical fluctuation: 0.5%

• Measure

-6.06

27

Constraints on CKM matrix

28

• Already limited by input from Lattice QCD

• Contributes 2.9% to ξ

Future Prospects

(3.8%)

From JLQCD Collab. (hep-ph/0307039)

29

Statistical uncertainty and extrapolation to small mq/ms

All other uncertainties

mq/ms=0.036

Lattice Input from HPQCD+MILChep-lat/0507015

30

Constraints on New Physics

• Several different assumptions about flavor structure of SUSY models– Parameters in some models are constrained– Others are not...

• Correlated with other experimental results on FCNC

31

Example: Impact on MFV Scenarios

(2006 CDF result)

(destructive ±/W± interference)

Theory error on

Lunghi, Porod, Vives: hep-ph/0605177

10

32

Summary

• Unlikely to be a statistical fluctuation• Next improvements from lattice results...

• Long term future uncertainty: ~1%?• A milestone has been reached in the world-wide

heavy flavor physics program!– But there are still many more

measured to few % at CLEO-c and BES-III

33

34

Fully Reconstructed Bs Yields in 1 fb-1

• All decays contribute but ones with larger S/B contribute more

Matthew Jones
The S/B numbers are from Note 7941, not for the full 1 inverse fb. Any difference is not large.

35

Semi-leptonic Lifetimes

• Correct for unreconstructed momentum

36

Lepton-Ds Mass Distribution

37

Lifetime Resolution

• Measure σct using “prompt B0s” decays:

φK+K-π+

prompt track

prompt Ds

error propagation scale factor

38

Lifetime Resolution

• Estimate σ*ct using

event-by-event error propagation

• Apply scale factor• Resolution is still

small compared with expected period of oscillations (100 μm)

(for Δms = 18 ps-

1)

39

Systematic Uncertainties on the Amplitude

• Small compared with statistical uncertainty

Hadronic Semi-leptonic

40

Systematic Uncertainty on Δms

• Many ways to bias amplitude

• Much harder to bias Δms

41

|Vtd| / |Vts| via Penguin Decays

• Compare Br(Bρ) with Br(BK*)• Small branching fractions• Recent result from Belle (hep-ex/0506079):

,s

,Vts*

42

Kaons affect SST on B0/B+

• B+ produced in association with π- or K-

• B0 produced in association with π- or K+

• Particle identification improves same side tag for B0 sample

• Agrees with Monte Carlo

43

Flavor Tagging Performance

• Rank opposite side tags (no correlations)• Assume same-side and opposite-side are

uncorrelated compute combined

Opposite side tags

(stat. error)

Same side (syst. error)

44

Dilution Scale Factor Analysis

45

Same Side Kaon Tag• Count K±, π±, p/p around B0, B+, Bs:

• Find more kaons produced in association with Bs

• Qualitative agreement with Monte Carlo

46

Same Side Kaon Tag

• Compare predicted dilution on B+ and B0 samples

• Combine TOF+dE/dx• Re-weight Monte Carlo

to assess impact of:– production mechanisms– fragmentation functions– observed K/π around B– P-wave B mesons– TOF + dE/dx modeling– Luminosity

dependence

47

• In context of Minimal Flavor Violation scenarios, limited by theory uncertainty

• Some constraints when considering single mass insertion parameters

• Weaker constraints with multiple mass insertions• These are only a few examples... see also

– Carena, et al.: hep-ph/0603106– Ball & Fleischer: hep-ph/0604249– But there are many others

Constraints on New Physics

Lunghi, Porod, Vives: hep-ph/0605177

Foster, Okumura, Roszkowski: hep-ph/0604121

48

GFM Single Mass Insertion ParametersF

oste

r, O

kum

ura,

Ros

zkow

ski:

hep-

ph/0

6041

21