Argonne National Laboratory, 9700 S. Cass Avenue, Lemont, Illinois 60439, USA.
Phys Rev Lett. 2012 Jul 27;109(4):041301. doi: 10.1103/PhysRevLett.109.041301. Epub 2012 Jul 23.
Chameleon scalar fields are dark-energy candidates which suppress fifth forces in high density regions of the Universe by becoming massive. We consider chameleon models as effective field theories and estimate quantum corrections to their potentials. Requiring that quantum corrections be small, so as to allow reliable predictions of fifth forces, leads to an upper bound m<0.0073(ρ/10 g cm(-3))(1/3) eV for gravitational-strength coupling whereas fifth force experiments place a lower bound of m>0.0042 eV. An improvement of less than a factor of two in the range of fifth force experiments could test all classical chameleon field theories whose quantum corrections are well controlled and couple to matter with nearly gravitational strength regardless of the specific form of the chameleon potential.
手性标量场是暗能量候选者,它们通过变得有质量来抑制宇宙高密度区域中的第五种力。我们将手性标量模型视为有效场理论,并对手性标量模型的势进行量子修正的估计。要求量子修正足够小,以便对手性标量模型的第五种力进行可靠预测,这导致了引力强度耦合的上限 m<0.0073(ρ/10 g cm(-3))(1/3) eV,而第五种力实验则给出了下限 m>0.0042 eV。如果第五种力实验的范围能提高不到两倍,那么所有经过良好控制的量子修正且与物质的耦合强度几乎与引力强度相当的经典手性标量场理论都将受到检验,而不管手性标量模型势的具体形式如何。