Υ measurements at phenix
DESCRIPTION
Υ Measurements at PHENIX. Shawn Whitaker RHIC/AGS Users’ Meeting June 20, 2011. Outline. Why do we measure Υ ? How do we measure Υ ? Cross section in pp collisions Nuclear Modification factors R dA R AA (ongoing). Motivation. - PowerPoint PPT PresentationTRANSCRIPT
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Shawn Whitaker - RHIC/AGS Users Meeting 1
Υ Measurements at PHENIX
Shawn WhitakerRHIC/AGS Users’ Meeting
June 20, 2011
6/20/2011
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Shawn Whitaker - RHIC/AGS Users Meeting 2
Outline
• Why do we measure Υ?• How do we measure Υ?• Cross section in pp collisions• Nuclear Modification factors– RdA
– RAA (ongoing)
6/20/2011
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Motivation
6/20/2011
In the Quark Gluon Plasma we expect sequential screening of the resonances.
Measurement of heavy quarkonia suppression in Au+Au collisions can act as a thermometer of the QGP.
Mocsy & PetreczkyPRL. 99, 211602 (2007)
R. ArnaldiHeavy Quarks and Quarkonia QM 2011
Heavy flavor resonances characterized by binding energy and radius
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MEASURING Υ AT PHENIX
6/20/2011
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The PHENIX Detector
6/20/2011
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Detector Acceptance: Central Arms
6/20/2011
TotalΥ(1S)Υ(2S)Υ(3S)
Υ were simulated using PHPYTHIA (top left)Two models were used to simulate the pT distribution for Υ (top right)Acceptance x Reconstruction efficiency is plotted as a function of momentum (left)The resulting integrated Acc x Eff is below
Acce
ptan
ce x
Effi
cien
cy
pT [GeV]
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Detector Acceptance: Muon Arms
6/20/2011
Υ(1S+2S+3S) were generated using PHPYTHIA. The rapidity distribution is shown in the top left plot.The Acceptance x Efficiency values are shown above and summarized to the left.The integrated values were used for each rapidity region because of the limited statistics in the real data.
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Run6 pp Central Arms =|y|<0.35
Dealing with Small Statistics
6/20/2011
Run6 ppfg = 12 opposite sign countsbg =1 like sign count
M. Tannenbaum
Black Points: e+e- PairsBlue Line: e+e+ and e-e- Pairs
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The Process• Using e+e- and μ+μ- pairs Υ candidates are
reconstructed from pairs with an invariant mass from 8.5 – 11.5 GeV
• The Υ yields are estimated from these candidates after removing the background contributions – Combinatorial background from random e+e- or μ+μ-
pairs– Correlated continuum background from Drell-Yan, open
bottom and open charm (semi-leptonic decays)
6/20/2011
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Combinatorial Background SubtractionRun6 pp Central Arms =|y|<0.35
Black Points: e+e- PairsBlue Line: e+e+ and e-e- Pairs
6/20/2011
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Drell YanPHPYTHIA Settings
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Open Bottom
PHPYTHIA Settings
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Open Charm
PHPYTHIA Settingsmsel 4 (turns on charm production)pmas 4 1 1.25 (sets charm quark mass to 1.25 GeV)
6/20/2011
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Invariant Mass Distributions
DataΥ Drell YanOpen BottomOpen Charm
DataΥ Drell YanOpen Bottom
Run6 pp Central Arms
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CROSS SECTION MEASUREMENT
6/20/2011
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Current Results
• Run 6– Mid-rapidity in the di-electron channel– Forward and backward rapidity in the di-muon
channel
6/20/2011
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Run 6 Signals
Run6 ppCentral Arms =|y|<0.35
AboveBlack Points: Opposite Sign PairsBlue Points: Same Sign PairsRed Points: Black - Blue
LeftBlack Points: Opposite Sign PairsBlue Line: Same Sign Pairs
6/20/2011
Run 6 pp South Arm Run 6 pp North Arm
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Run 6 Results
Mid-RapidityDi-electron channel
6/20/2011
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NUCLEAR MODIFICATION: RdA
6/20/2011
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Current Results
• Use PHENIX p+p data as baseline• Compare to calculated cross section from Run-8
d+Au to determine RdA
– Currently have result from muon arms– Work is being done on a mid-rapidity measurement in
the Central Arms
6/20/2011
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RdA Result
6/20/2011
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UPCOMING RESULTS
6/20/2011
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Υ at Mid-Rapidity in d+Au
Υ signal in d+Au data at mid rapidity
6/20/2011
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Υ at Mid-Rapidity in Au+Au
An excess can be seen in the e+e- channel at mid-rapidity from the central arm data. Work is still underway calculating RAA, for details see my poster.
6/20/2011
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Summary
• Measured Υ cross-section in Run-6 p+p• Measured RdA at forward and backward
rapidity from Run-8• Working on RdA at mid-rapidity in the di-
electron channel from Run-8• Working on RAA from Run-10 for all of the
PHENIX acceptance
6/20/2011
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BACKUP
6/20/2011
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P(s) Derivation(1)
6/20/2011
Assume the number of counts is Poisson distribution with expectation value μ and observed counts m. The distribution is identical if you observe a number of counts and want to know the probability of an expectation value.
The probability of n foreground counts and m background counts given the two are measured independently can be written as the product of the two separate distribution.
Changing variables
(1)
(2)
(2)->(3)
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P(s) Derivation(2)
6/20/2011
(3)
Expanding as sum
Results in (4)
Integrating (4) over μ and recognizing it has the same form as a Gamma distribution with b=2 and p-1 = m+n-k gives the final result
Calculation done by M. Tannenbaum