论文标题

通过电磁频移研究暗能量

Investigating dark energy by electromagnetic frequency shifts

论文作者

Spallicci, Alessandro D. A. M., Sarracino, Giuseppe, Capozziello, Salvatore

论文摘要

观察到的红移$ z $可能由膨胀红移$ z {\ rm c} $和额外的频移$ z _ {\ rm s} $朝红色或蓝色组成,考虑了电磁症的扩展理论(ETE)。 Indeed, massive photon theories - the photon has a real mass as in the de Broglie-Proca theory or an effective mass as in the Standard-Model Extension (SME), based on Lorentz-Poincaré Symmetry Violation (LSV) - or Non-Linear Electro-Magnetism (NLEM) theories may induce a cosmological expansion independent frequency shift in presence of background (inter-) galactic electromagnetic fields,以及相关性LSV字段的位置,即使两个字段都是恒定的。考虑到由1048 SNE IA组成的万神殿目录和15个BAO数据的Pantheon目录,我们已经测试了这一预测,该预测以缺乏宇宙学常数为特征的不同宇宙学模型。从数据中,我们计算$ z _ {\ rm s} $的哪些值匹配观测值,跨越宇宙参数($ω$密度和哈勃 - 莱玛特常数)域。我们得出的结论是,频率偏移$ z {\ rm s} $可以支持加速扩展的替代方案,因为$ z _ {\ rm s} $的轻路依赖性,自然地适应了距离模式与红移图中的每个SN IA位置。最后,我们简要提及实验室测试方法,以研究与ETE预测的额外转变。

The observed red shift $z$ might be composed by the expansion red shift $z_{\rm C}$ and an additional frequency shift $z_{\rm S}$, towards the red or the blue, by considering Extended Theories of Electromagnetism (ETE). Indeed, massive photon theories - the photon has a real mass as in the de Broglie-Proca theory or an effective mass as in the Standard-Model Extension (SME), based on Lorentz-Poincaré Symmetry Violation (LSV) - or Non-Linear Electro-Magnetism (NLEM) theories may induce a cosmological expansion independent frequency shift in presence of background (inter-) galactic electromagnetic fields, and where of relevance LSV fields, even when both fields are constant. We have tested this prediction considering the Pantheon Catalogue, composed by 1048 SNe Ia, and 15 BAO data, for different cosmological models characterised by the absence of a cosmological constant. From the data, we compute which values of $z_{\rm S}$ match the observations, spanning cosmological parameters ($Ω$ densities and Hubble-Lemaître constant) domains. We conclude that the frequency shift $z_{\rm S}$ can support an alternative to accelerated expansion, naturally accommodating each SN Ia position in the distance-modulus versus red shift diagram, due to the light-path dependency of $z_{\rm S}$. Finally, we briefly mention laboratory test approaches to investigate the additional shift from ETE predictions.

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