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Selecting μ?→? e conversion targets to distinguish lepton flavour-changing operators

机译:选择μ?→? e 转换目标可区分轻子风味变化操作员

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The experimental sensitivity toμ→econversion on nuclei is set to improve by four orders of magnitude in coming years. However, various operator coefficients add coherently in the amplitude forμ→econversion, weighted by nucleus-dependent functions, and therefore in the event of a detection, identifying the relevant new physics scenarios could be difficult. Using a representation of the nuclear targets as vectors in coefficient space, whose components are the weighting functions, we quantify the expectation that different nuclear targets could give different constraints. We show that all but two combinations of the 10 Spin-Independent (SI) coefficients could be constrained by future measurements, but discriminating among the axial, tensor and pseudoscalar operators that contribute to the Spin-Dependent (SD) process would require dedicated nuclear calculations. We anticipate thatμ→econversioncould constrain 10 to 14 combinations of coefficients; ifμ→eγandμ→eeˉeconstrain eight more, that leaves 60 to 64 “flat directions” in the basis of QED?×?QCD-invariant operators which describeμ→eflavour change belowmW.
机译:在未来几年中,对核→转化的实验敏感性将提高四个数量级。但是,各种运算符系数在μ→转换的幅度上相干地相加,并由依赖于核的函数加权,因此,在进行检测的情况下,识别相关的新物理场景可能很困难。使用核目标的表示作为系数空间中的向量(其成分是权重函数),我们可以量化不同核目标可能给出不同约束的期望。我们显示,除10个自旋无关(SI)系数外的所有两个组合都可能受将来的测量约束,但要区分对自旋相关(SD)过程有贡献的轴向,张量和伪标量算子,则需要专门的核计算。我们期望μ→e转换可以约束10到14个系数组合;如果μ→eγ和μ→eeˉ再约束八个,则在描述μ→风味变化低于mW的QEDΔ×ΔQCD不变算子的基础上,留下了60到64个“平坦方向”。

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