论文标题
$ n'(1720)3/2^+$ nucleon共振的证据,来自CLAS $π^+π^-p $ photo-和电源数据的联合研究
Evidence for the $N'(1720)3/2^+$ Nucleon Resonance from Combined Studies of CLAS $π^+π^-p$ Photo- and Electroproduction Data
论文作者
论文摘要
$γ_{R,V} P \至π^+π^-p $ photo-和通过Jefferson Laboratory在CLAS探测器中获得的九个1倍差分截面的分析,其目标是在1.6〜GEV到1.6〜GEV到1.8 〜GEV。为了描述具有$ q^2 $独立的共振群体和hadronic衰减宽度的$ q^2 $范围低于1.5〜GEV $^2 $的照片和电气塑性数据,发现A $ n'(1720)3/2^+$ nate还需要已经良好的核子释放量。这项工作表明,$π^+π^-p $ photo-和电源数据的合并研究对于观察此共振至关重要。 The contributions from the $N'(1720)3/2^+$ state and the already established $N(1720)3/2^+$ state with a mass of 1.745~GeV are well separated by their different hadronic decays to the $πΔ$ and $ρp$ final states and the different $Q^2$-evolution of their photo-/electroexcitation amplitudes. $ n'(1720)3/2^+$ state是最近建立的Baryon共鸣,$ q^2 $ - photo-/eelateColplings的结果已获得。这些结果对于探索``丢失''baryon共振的性质很重要。
The analysis of the nine 1-fold differential cross sections for the $γ_{r,v} p \to π^+π^-p$ photo- and electroproduction reactions obtained with the CLAS detector at Jefferson Laboratory was carried out with the goal to establish the contributing resonances in the mass range from 1.6~GeV to 1.8~GeV. In order to describe the photo- and electroproduction data with $Q^2$-independent resonance masses and hadronic decay widths in the $Q^2$ range below 1.5~GeV$^2$, it was found that an $N'(1720)3/2^+$ state is required in addition to the already well-established nucleon resonances. This work demonstrates that the combined studies of $π^+π^-p$ photo- and electroproduction data are vital for the observation of this resonance. The contributions from the $N'(1720)3/2^+$ state and the already established $N(1720)3/2^+$ state with a mass of 1.745~GeV are well separated by their different hadronic decays to the $πΔ$ and $ρp$ final states and the different $Q^2$-evolution of their photo-/electroexcitation amplitudes. The $N'(1720)3/2^+$ state is the first recently established baryon resonance for which the results on the $Q^2$-evolution of the photo-/electrocouplings have become available. These results are important for the exploration of the nature of the ``missing'' baryon resonances.