Magnetic fields linearly change the exponential decay rate of light-nucleus wave functions, which the authors argue could enhance low-energy fusion reactions and, at implausibly high field strengths, affect the Big Bang lithium abundance.
Constraints on the Strength of a Primordial Magnetic Field from Big Bang Nucleosynthesis
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abstract
The effects of magnetic fields on Big Bang Nucleosynthesis(BBN) have been calculated, and the impact on the abundances of the light elements have been investigated numerically. An upper limit on the strength of primordial magnetic fields compatible with observations of light element abundances has been thus obtained. In the framework of standard BBN theory, the maximum strength of the primordial magnetic fields, on scales greater than $10^4$cm but smaller than the event horizon at the BBN epoch ($\sim 1$ min., $\sim 2\times 10^{12}$cm), is $\le 10^{11}$ Gauss. This limit is shown to allow magnetic fields at the time of recombination no stronger than $\sim 0.1$ gauss on scales $\ge 10^{11}{\rm cm}$. Our results also strongly indicate that, at the BBN epoch, and for field strengths $B\le10^{13}$gauss, the effects of magnetic fields on the primordial abundances of light elements are dominated by effects from reaction rates in the presense of primeval magnetic fields rather than by magnetic density effects on the expansion rate.
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Light nuclei under magnetic field and the lithium problem
Magnetic fields linearly change the exponential decay rate of light-nucleus wave functions, which the authors argue could enhance low-energy fusion reactions and, at implausibly high field strengths, affect the Big Bang lithium abundance.