D. Day
University of Virginia
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Featured researches published by D. Day.
Physics Letters B | 2000
P.L. Anthony; R.G. Arnold; Todd Averett; H. R. Band; M.C. Berisso; H. Borel; P. Bosted; S.L. Bültmann; M. Buenerd; T. E. Chupp; S. Churchwell; G.R. Court; D. Crabb; D. Day; P. Decowski; P. DePietro; R. Erbacher; R. Erickson; A. Feltham; H. Fonvieille; E. Frlez; R. Gearhart; V. Ghazikhanian; J. Gomez; K. A. Griffioen; C. Harris; M. Houlden; E.W. Hughes; C.E Hyde-Wright; G. Igo
Abstract The ratio g 1 F 1 has been measured over the range 0.03 g 1 F 1 to be consistent with no Q2-dependence at fixed x in the deep-inelastic region Q2 > 1 (GeV/c)2. A trend is observed for g 1 F 1 to decrease at lower Q2. Fits to world data with and without a possible Q2-dependence in g 1 F 1 are in agreement with the Bjorken sum rule, but Δq is substantially less than the quark-parton model expectation.
Physical Review Letters | 1996
K. Abe; C. C. Young; J. McCarthy; L. C. Smith; W. Meyer; R. Prepost; R.G. Arnold; T. Averett; D. Kawall; A. Rijllart; E. Frlez; T. E. Chupp; P. Bosted; C. Comptour; T. Maruyama; H. Borel; M. Kuriki; O. Rondon-Aramayo; S. St. Lorant; T. J. Liu; Y. Terrien; T. Usher; Jianping Chen; R. Pitthan; Y. Roblin; C. Prescott; K. A. Griffioen; F. Suekane; F. Staley; P. Raines
We have measured proton and deuteron virtual photon-nucleon asymmetries A2p and A2d and structure functions g2p and g2d over the range 0.03<x<0.8 and 1.3<Q2<10 (GeV/c)2 by inelastically scattering polarized electrons off polarized ammonia targets. Results for A2 are significantly smaller than the positivity limit sqrt(R) for both targets. Within experimental precision, the g2 data are well-described by the twist-2 contribution g2WW. Twist-3 matrix elements have been extracted and are compared to theorectical predictions.
Physics Letters B | 1999
P.L. Anthony; R.G. Arnold; Todd Averett; H. R. Band; M.C. Berisso; H. Borel; P. Bosted; S.L. Bültmann; M. Buenerd; T. E. Chupp; S. Churchwell; G.R. Court; D. Crabb; D. Day; P. Decowski; P. DePietro; R. Erbacher; R. Erickson; A. Feltham; H. Fonvieille; E. Frlez; R. Gearhart; V. Ghazikhanian; J. Gomez; K. A. Griffioen; C. Harris; M. Houlden; E.W. Hughes; Charles Hyde-Wright; G. Igo
New measurements are reported on the deuteron spin structure function g_1^d. These results were obtained from deep inelastic scattering of 48.3 GeV electrons on polarized deuterons in the kinematic range 0.01<x<0.9 and 1<Q^2<40 (GeV/c)^2. These are the first high dose electron scattering data obtained using lithium deuteride (6Li2H) as the target material. Extrapolations of the data were performed to obtain moments of g_1^d, including Gamma_1^d, and the net quark polarization Delta Sigma.Abstract New measurements are reported on the deuteron spin structure function g1d. These results were obtained from deep inelastic scattering of 48.3 GeV electrons on polarized deuterons in the kinematic range 0.01 6 Li 2 H) as the target material. Extrapolations of the data were performed to obtain moments of g1d, including Γ1d, and the net quark polarization ΔΣ.
Physics Letters B | 1999
R. Pitthan; R. Prepost; P. Grenier; M. Kuriki; H. Tang; F. Suekane; Y. Terrien; C. Prescott; R.M. Lombard-Nelsen; A. Klein; J. M. Bauer; J. Morgenstern; G. Zapalac; H. R. Band; Z.E. Meziani; F. Staley; B. Zihlmann; Z. M. Szalata; S. St. Lorant; S. Hoibraten; O. Rondon; P. Bosted; I. Sick; D. Zimmermann; J. Marroncle; E.W. Hughes; H. Yuta; G.G. Petratos; L.M. Stuart; C. Comptour
Abstract Measurements were made at SLAC of the cross section for scattering 29 GeV electrons from carbon at a laboratory angle of 4.5°, corresponding to 0.03Measurements were made at SLAC of the cross section for scattering 29 GeV electrons from carbon at a laboratory angle of 4.5 degrees, corresponding to 0.03<x<0.1 and 1.3<Q^2<2.7 GeV^2. Values of R=sigma_L/sigma_T were extracted in this kinematic range by comparing these data to cross sections measured at a higher beam energy by the NMC collaboration. The results are in reasonable agreement with pQCD calculations and with extrapolations of the R1990 parameterization of previous data. A new fit is made including these data and other recent results.
Physics Letters B | 2003
P.L. Anthony; R.G. Arnold; T. Averett; H. R. Band; N. Benmouna; W. Boeglin; H. Borel; P. Bosted; S.L. Bültmann; G.R. Court; D. Crabb; D. Day; P. Decowski; P. DePietro; H. Egiyan; R. Erbacher; R. Erickson; R. Fatemi; E. Frlez; K. A. Griffioen; C. Harris; E. W. Hughes; C. E. Hyde-Wright; G. Igo; J. Johnson; P. King; K. Kramer; S. E. Kuhn; D. Lawrence; Y. Liang
We have measured the spin structure functions g{sub 2}{sup p} and g{sub 2}{sup d} and the virtual photon asymmetries A{sub 2}{sup p} and A{sub 2}{sup d} over the kinematic range 0.02 {le} x {le} 0.8 and 0.7 {le} Q{sup 2} {le} 20 GeV{sup 2} by scattering 29.1 and 32.3 GeV longitudinally polarized electrons from transversely polarized NH{sub 3} and {sup 6}LiD targets. Our measured g{sub 2} approximately follows the twist-2 Wandzura-Wilczek calculation. The twist-3 reduced matrix elements d{sub 2}{sup p} and d{sub 2}{sup n} are less than two standard deviations from zero. The data are inconsistent with the Burkhardt-Cottingham sum rule if there is no pathological behavior as x {yields} 0. The Efremov-Leader-Teryaev integral is consistent with zero within our measured kinematic range. The absolute value of A{sub 2} is significantly smaller than the A{sub 2} < {radical}(R(1+A{sub 1})/2) limit.
Reviews of Modern Physics | 2008
Omar Benhar; D. Day; I. Sick
This paper presents a review on the field of inclusive quasielastic electron-nucleus scattering. It discusses the approach used to measure the data and includes a compilation of data available in numerical form. The theoretical approaches used to interpret the data are presented. A number of results obtained from the comparison between experiment and calculation are then reviewed. The analogies to, and differences from, other fields of physics exploiting quasielastic scattering from composite systems are pointed out.
Physics Letters B | 1994
H. Anklin; E.E.W. Bruins; D. Day; D. Fritschi; B. Groft; F.C.P. Joosse; J. Jourdan; J. Lichtenstadt; M. Loppacher; G. Masson; John C. Mitchell; I. Sick; H. van Veen
We present a precise measurement of the neutron magnetic form factor Gmn at low momentum transfer (q = 1.69 fm−1). From a simultaneous measurement of D(e, e′ n) and D(e, e′ p) we obtain the ratio of neutron and proton cross sections. The neutron detection efficiency is obtained from a separate measurement using tagged neutrons produced by H(n,p)n scattering of a monochromatic neutron beam. In contrast to previous determinations of Gmn, the present value is insensitive to the systematic uncertainties in the interpretation of the data in terms of Gmn and represents a determination of Gmn to ±1.7%.
Physical Review Letters | 2009
J. Seely; A. Daniel; D. Gaskell; J. Arrington; N. Fomin; P. Solvignon; R. Asaturyan; F. Benmokhtar; W. Boeglin; B. Boillat; P. Bosted; A. Bruell; M. H. S. Bukhari; M. E. Christy; B. Clasie; Simon Henry Connell; M. M. Dalton; D. Day; J. Dunne; D. Dutta; L. El Fassi; R. Ent; H. Fenker; B. W. Filippone; H. Gao; C. Hill; R. J. Holt; T. Horn; Ed V. Hungerford; M. K. Jones
J. Seely, A. Daniel, D. Gaskell, J. Arrington, ∗ N. Fomin, P. Solvignon, R. Asaturyan, † F. Benmokhtar, W. Boeglin, B. Boillat, P. Bosted, A. Bruell, M.H.S. Bukhari, M.E. Christy, B. Clasie, S. Connell, ‡ M.M. Dalton, D. Day, J. Dunne, D. Dutta, 12 L. El Fassi, R. Ent, H. Fenker, B.W. Filippone, H. Gao, 12 C. Hill, R.J. Holt, T. Horn, 3 E. Hungerford, M.K. Jones, J. Jourdan, N. Kalantarians, C.E. Keppel, D. Kiselev, M. Kotulla, C. Lee, A.F. Lung, S. Malace, D.G. Meekins, T. Mertens, H. Mkrtchyan, T. Navasardyan, G. Niculescu, I. Niculescu, H. Nomura, Y. Okayasu, A.K. Opper, C. Perdrisat, D.H. Potterveld, V. Punjabi, X. Qian, P.E. Reimer, J. Roche, V.M. Rodriguez, O. Rondon, E. Schulte, E. Segbefia, K. Slifer, G.R. Smith, V. Tadevosyan, S. Tajima, L. Tang, G. Testa, R. Trojer, V. Tvaskis, W.F. Vulcan, F.R. Wesselmann, S.A. Wood, J. Wright, L. Yuan, and X. Zheng Laboratory for Nuclear Science, Massachusetts Institute of Technology, Cambridge, MA, USA University of Houston, Houston, TX, USA Thomas Jefferson National Laboratory, Newport News, VA, USA Physics Division, Argonne National Laboratory, Argonne, IL, USA University of Virginia, Charlottesville, VA, USA Yerevan Physics Institute, Armenia University of Maryland, College Park, MD, USA Florida International University, Miami, FL, USA Basel University, Basel, Switzerland Hampton University, Hampton, VA, USA Mississippi State University, Jackson, MS, USA Triangle Universities Nuclear Laboratory, Duke University, Durham, NC, USA Kellogg Radiation Laboratory, California Institute of Technology, Pasadena, CA, USA University of the Witwatersrand, Johannesburg, South Africa James Madison University, Harrisonburg, VA, USA Tohoku University, Sendai, Japan Ohio University, Athens, OH, USA College of William and Mary, Williamsburg, VA, USA Norfolk State University, Norfolk, VA, USA (Dated: October 27, 2009)
Physical Review Letters | 2012
N. Fomin; J. Arrington; R. Asaturyan; F. Benmokhtar; W. Boeglin; P. Bosted; A. Bruell; M. H. S. Bukhari; M. E. Christy; E. Chudakov; B. Clasie; Simon Henry Connell; M. M. Dalton; A. Daniel; D. Day; D. Dutta; R. Ent; L. El Fassi; H. Fenker; B. W. Filippone; K. Garrow; D. Gaskell; C. Hill; R. J. Holt; T. Horn; M. K. Jones; J. Jourdan; N. Kalantarians; C. Keppel; D. Kiselev
We present new measurements of electron scattering from high-momentum nucleons in nuclei. These data allow an improved determination of the strength of two-nucleon correlations for several nuclei, including light nuclei where clustering effects can, for the first time, be examined. The data also include the kinematic region where three-nucleon correlations are expected to dominate.
Physics Letters B | 1995
K. Abe; L.M. Stuart; J. Marroncle; W. Meyer; F. Staleye; B. Youngman; J. P. Chen; D. Reyna; Y. Terrien; M. Kuriki; F. Suekane; T. Maruyarna; R.G. Arnold; R. M. Gearhart; S. E. Kuhn; C. Young; R. Erbacher; Javier Gomez; J.L. White; H. Fonvieille; M. Daoudi; D. Day; J. Dunne; D. Kawall; D. Pocanic; H. R. Band; J. Clendenin; M. Spengosa; T. J. Liu; D. Walz
The ratio g1/F1 has been measured over the range 0.03 1 (GeV/c)2. A trend is observed for g1/F1 to decrease at lower Q2. Fits to world data with and without a possible Q2-dependence in g1/F1 are in agreement with the Bjorken sum rule, but Delta_q is substantially less than the quark-parton model expectation.The ratio g1/F1 has been measured over the range 0.03<x<0.6 and 0.3<Q2<10 (GeV/c)2 using deep-inelastic scattering of polarized electrons from polarized protons and deuterons. We find g1/F1 to be consistent with no Q2-dependence at fixed x in the deep-inelastic region Q^2>1 (GeV/c)2. A trend is observed for g1/F1 to decrease at lower Q2. Fits to world data with and without a possible Q2-dependence in g1/F1 are in agreement with the Bjorken sum rule, but Delta_q is substantially less than the quark-parton model expectation.