QCD condensates and $α_s$ from $e^+e^-$ and $τ$-decays
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arXiv
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| Natura: | Preprint |
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2025
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| _version_ | 1866916885313880064 |
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| author | Narison, Stephan |
| author_facet | Narison, Stephan |
| contents | In this talk, I review the determinations of the QCD condensates and $α_s$ within the SVZ expansion using the ratio of Laplace sum rule (LSR) and $τ$-like moments in $e^+e^-\to I=1$ Hadrons and in $τ\to ν_τ+$Hadrons Axial-vector (A) and V-A channels. Some misprints in the original papers [1-3] have been corrected. We found that the value of the gluon condensate agrees with the one $\langle α_s G^2\rangle=(6.35\pm 0.35)\times 10^{-2}$ GeV$^4$ from quarkonia and some other sum rules but less accurate, while the factorization of the four-quark condensate is violated by a factor about 6: $ρ\langle\barψψ\rangle^2=(5.98\pm 0.64)\times 10^{-4}$ GeV$^6$ which confirms previous findings. Extracting the QCD condensates up to dimension D=20 from $e^+e^-$ and the axial-vector channel of $τ$-decay, we do not find any exponential growth of their values in the Euclidian region, thus excluding (by duality) any significant effect of the so-called Duality Violation (DV) in the Time-like one. The optimal values of $α_s(M_τ)$ from $e^+e^-\to$ Hadrons and $τ$-decays agree each others and lead to the average: $α_s(M_τ)=0.3128(51)$ [resp.0.3330(57)] $ \longrightarrow α_s(M_Z) = 0.1176$ [resp. 0.1201] $(7)_{fit}(3)_{evol.}$ for Fixed Order (FO) [resp. Contour improved (CI)] PT series to be compared with the PDG24 average (without Lattice calculations): $ α_s(M_Z) = 0.1175(10)$. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2508_05434 |
| institution | arXiv |
| publishDate | 2025 |
| record_format | arxiv |
| spellingShingle | QCD condensates and $α_s$ from $e^+e^-$ and $τ$-decays Narison, Stephan High Energy Physics - Phenomenology High Energy Physics - Experiment High Energy Physics - Lattice In this talk, I review the determinations of the QCD condensates and $α_s$ within the SVZ expansion using the ratio of Laplace sum rule (LSR) and $τ$-like moments in $e^+e^-\to I=1$ Hadrons and in $τ\to ν_τ+$Hadrons Axial-vector (A) and V-A channels. Some misprints in the original papers [1-3] have been corrected. We found that the value of the gluon condensate agrees with the one $\langle α_s G^2\rangle=(6.35\pm 0.35)\times 10^{-2}$ GeV$^4$ from quarkonia and some other sum rules but less accurate, while the factorization of the four-quark condensate is violated by a factor about 6: $ρ\langle\barψψ\rangle^2=(5.98\pm 0.64)\times 10^{-4}$ GeV$^6$ which confirms previous findings. Extracting the QCD condensates up to dimension D=20 from $e^+e^-$ and the axial-vector channel of $τ$-decay, we do not find any exponential growth of their values in the Euclidian region, thus excluding (by duality) any significant effect of the so-called Duality Violation (DV) in the Time-like one. The optimal values of $α_s(M_τ)$ from $e^+e^-\to$ Hadrons and $τ$-decays agree each others and lead to the average: $α_s(M_τ)=0.3128(51)$ [resp.0.3330(57)] $ \longrightarrow α_s(M_Z) = 0.1176$ [resp. 0.1201] $(7)_{fit}(3)_{evol.}$ for Fixed Order (FO) [resp. Contour improved (CI)] PT series to be compared with the PDG24 average (without Lattice calculations): $ α_s(M_Z) = 0.1175(10)$. |
| title | QCD condensates and $α_s$ from $e^+e^-$ and $τ$-decays |
| topic | High Energy Physics - Phenomenology High Energy Physics - Experiment High Energy Physics - Lattice |
| url | https://arxiv.org/abs/2508.05434 |