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Target independence of the EMC-SMC effect

\noindent{\bf Abstract} \vskip0.2cm \noindent An approach to deep inelastic scattering is described in which the matrix elements arising from the operator product expansion are factorised into composite operator propagators and proper vertex functions. In the case of polarised \m p scattering, the c...

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Autores principales: Narison, Stephan, Shore, G.M., Veneziano, G.
Lenguaje:eng
Publicado: 1995
Materias:
Acceso en línea:https://dx.doi.org/10.1016/0550-3213(94)00329-D
http://cds.cern.ch/record/261961
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author Narison, Stephan
Shore, G.M.
Veneziano, G.
author_facet Narison, Stephan
Shore, G.M.
Veneziano, G.
author_sort Narison, Stephan
collection CERN
description \noindent{\bf Abstract} \vskip0.2cm \noindent An approach to deep inelastic scattering is described in which the matrix elements arising from the operator product expansion are factorised into composite operator propagators and proper vertex functions. In the case of polarised \m p scattering, the composite operator propagator is identified with the square root of the QCD topological susceptibility \sqrt{\chi^{\prime}(0)}, while the corresponding proper vertex is a renormalisation group invariant. We estimate \chi^{\prime}(0) using QCD spectral sum rules and find that it is significantly suppressed relative to the OZI expectation. Assuming OZI is a good approximation for the proper vertex, our predictions, \int_{0}^{1}dx g_1^p (x;Q^2=10\GV^2)= 0.143 \pm 0.005 and G^{(0)}_A \equiv \Delta \Sigma = 0.353 \pm 0.052, are in excellent agreement with the new SMC data. This result, together with one confirming the validity of the OZI rule in the \hp radiative decay, supports our earlier conjecture that the suppression in the flavour singlet component of the first moment of g_1^p observed by the EMC-SMC collaboration is a target-independent feature of QCD related to the U(1) anomaly and is not a property of the proton structure. As a corollary, we extract the magnitude of higher twist effects from the neutron and Bjorken sum rules.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1995
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spelling cern-2619612021-07-15T03:39:24Zdoi:10.1016/0550-3213(94)00329-Dhttp://cds.cern.ch/record/261961engNarison, StephanShore, G.M.Veneziano, G.Target independence of the EMC-SMC effectParticle Physics - Phenomenology\noindent{\bf Abstract} \vskip0.2cm \noindent An approach to deep inelastic scattering is described in which the matrix elements arising from the operator product expansion are factorised into composite operator propagators and proper vertex functions. In the case of polarised \m p scattering, the composite operator propagator is identified with the square root of the QCD topological susceptibility \sqrt{\chi^{\prime}(0)}, while the corresponding proper vertex is a renormalisation group invariant. We estimate \chi^{\prime}(0) using QCD spectral sum rules and find that it is significantly suppressed relative to the OZI expectation. Assuming OZI is a good approximation for the proper vertex, our predictions, \int_{0}^{1}dx g_1^p (x;Q^2=10\GV^2)= 0.143 \pm 0.005 and G^{(0)}_A \equiv \Delta \Sigma = 0.353 \pm 0.052, are in excellent agreement with the new SMC data. This result, together with one confirming the validity of the OZI rule in the \hp radiative decay, supports our earlier conjecture that the suppression in the flavour singlet component of the first moment of g_1^p observed by the EMC-SMC collaboration is a target-independent feature of QCD related to the U(1) anomaly and is not a property of the proton structure. As a corollary, we extract the magnitude of higher twist effects from the neutron and Bjorken sum rules.\noindent{\bf Abstract} \vskip0.2cm \noindent An approach to deep inelastic scattering is described in which the matrix elements arising from the operator product expansion are factorised into composite operator propagators and proper vertex functions. In the case of polarised $\m p$ scattering, the composite operator propagator is identified with the square root of the QCD topological susceptibility $\sqrt{\chi~{\prime}(0)}$, while the corresponding proper vertex is a renormalisation group invariant. We estimate $\chi~{\prime}(0)$ using QCD spectral sum rules and find that it is significantly suppressed relative to the OZI expectation. Assuming OZI is a good approximation for the proper vertex, our predictions, $\int_{0}~{1}dx g_1~p (x;Q~2=10\GV~2)= 0.143 \pm 0.005$ and $G~{(0)}_A \equiv \Delta \Sigma = 0.353 \pm 0.052$, are in excellent agreement with the new SMC data. This result, together with one confirming the validity of the OZI rule in the $\hp$ radiative decay, supports our earlier conjecture that the suppression in the flavour singlet component of the first moment of $g_1~p$ observed by the EMC-SMC collaboration is a target-independent feature of QCD related to the $U(1)$ anomaly and is not a property of the proton structure. As a corollary, we extract the magnitude of higher twist effects from the neutron and Bjorken sum rules.An approach to deep inelastic scattering is described in which the matrix elements arising from the operator product expansion are factorised into composite operator propagators and proper vertex functions. In the case of polarised μp scattering, the composite operator propagator is identified with the square root of the QCD topological susceptibility √ x ′(0) , while the corresponding proper vertex is a renormalisation group invariant. We estimate x ′(0) using QCD spectral sum rules and find that it is significantly suppressed relative to the OZI expectation. Assuming OZI is a good approximation for the proper vertex, our predictions, f 0 1 d x g 1 p ( x ; Q 2 = 10 GeV 2 ) = 0.143 ± 0.005 and G A 0 = ΔΣ = 0.353 ± 0.052, are in excellent agreement with the new SMC data. This result, together with one confirming the validity of the OZI rule in the η′ radiative decay, supports our earlier conjecture that the suppression in the flavour singlet component of the first moment of gp observed by the EMC-SMC Collaboration is a target-independent feature of QCD related to the U(1) anomaly and is not a property of the proton structure. As a corollary, we extract the magnitude of higher twist effects from the neutron and Bjorken sum rules.hep-ph/9404277PM-94-14SWAT-94-12CERN-TH-7223-94CERN-TH-7223-94PM-94-14SWAT-12oai:cds.cern.ch:2619611995
spellingShingle Particle Physics - Phenomenology
Narison, Stephan
Shore, G.M.
Veneziano, G.
Target independence of the EMC-SMC effect
title Target independence of the EMC-SMC effect
title_full Target independence of the EMC-SMC effect
title_fullStr Target independence of the EMC-SMC effect
title_full_unstemmed Target independence of the EMC-SMC effect
title_short Target independence of the EMC-SMC effect
title_sort target independence of the emc-smc effect
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1016/0550-3213(94)00329-D
http://cds.cern.ch/record/261961
work_keys_str_mv AT narisonstephan targetindependenceoftheemcsmceffect
AT shoregm targetindependenceoftheemcsmceffect
AT venezianog targetindependenceoftheemcsmceffect