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Final report of the E821 muon anomalous magnetic moment measurement at BNL

Authors :
E. P. Sichtermann
M. F. Hare
X. Huang
D. W. Hertzog
P. T. Debevec
C. S. Özben
Frederick Gray
L. R. Sulak
O. Rind
A. Yamamoto
A. Lam
I. Logashenko
C. J. G. Onderwater
L. Duong
B. Bousquet
P. von Walter
H. N. Brown
E. P. Solodov
J. M. Paley
S. K. Dhawan
Yuri F. Orlov
M. Sossong
G. T. Danby
I. Kronkvist
Klaus-Peter Jungmann
S. Giron
R. M. Carey
D. Kawall
Yu. M. Shatunov
Masahiko Iwasaki
D. Urner
J. Pretz
Y. Mizumachi
S. Sedykh
T. Qian
F. J. M. Farley
J. P. Miller
M. Grosse-Perdekamp
D. Nikas
C. Timmermans
D.N. Grigoriev
G.V. Fedotovich
G. zu Putlitz
S. I. Redin
V. P. Druzhinin
B. L. Roberts
P. Cushman
Rasmus Larsen
B.I. Khazin
D. Zimmerman
M. Kawamura
H. Deng
G. W. Bennett
D. Winn
C. C. Polly
N.M. Ryskulov
J. Kindem
F. Krienen
R. Prigl
J. Mi
R. McNabb
William Deninger
Wuzheng Meng
Y. Y. Lee
Gerry Bunce
William Morse
M. Deile
P. M. Shagin
Alexei Trofimov
E. Efstathiadis
A. Steinmetz
Yannis K. Semertzidis
A. Grossmann
D. Warburton
Q. Peng
Vernon W. Hughes
Research unit Nuclear & Hadron Physics
Source :
Physical Review D, 73(7). American Physical Society, Physical Review D, 73(7):072003. AMER PHYSICAL SOC
Publication Year :
2006
Publisher :
American Physical Society, 2006.

Abstract

We present the final report from a series of precision measurements of the muon anomalous magnetic moment, a(mu)=(g-2)/2. The details of the experimental method, apparatus, data taking, and analysis are summarized. Data obtained at Brookhaven National Laboratory, using nearly equal samples of positive and negative muons, were used to deduce a(mu)(Expt)=11659208.0(5.4)(3.3)x10(-10), where the statistical and systematic uncertainties are given, respectively. The combined uncertainty of 0.54 ppm represents a 14-fold improvement compared to previous measurements at CERN. The standard model value for a(mu) includes contributions from virtual QED, weak, and hadronic processes. While the QED processes account for most of the anomaly, the largest theoretical uncertainty, approximate to 0.55 ppm, is associated with first-order hadronic vacuum polarization. Present standard model evaluations, based on e(+)e(-) hadronic cross sections, lie 2.2-2.7 standard deviations below the experimental result.

Details

Language :
English
ISSN :
24700029 and 15507998
Volume :
73
Issue :
7
Database :
OpenAIRE
Journal :
Physical Review D
Accession number :
edsair.doi.dedup.....cd9aaa633c597defde4b0057e13d9f5a