162 research outputs found

    Neutrinoless double beta decay in effective field theory: the light Majorana neutrino exchange mechanism

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    We present the first chiral effective theory derivation of the neutrinoless double beta-decay nn→ppnn\rightarrow pp potential induced by light Majorana neutrino exchange. The effective-field-theory framework has allowed us to identify and parameterize short- and long-range contributions previously missed in the literature. These contributions can not be absorbed into parameterizations of the single nucleon form factors. Starting from the quark and gluon level, we perform the matching onto chiral effective field theory and subsequently onto the nuclear potential. To derive the nuclear potential mediating neutrinoless double beta-decay, the hard, soft and potential neutrino modes must be integrated out. This is performed through next-to-next-to-leading order in the chiral power counting, in both the Weinberg and pionless schemes. At next-to-next-to-leading order, the amplitude receives additional contributions from the exchange of ultrasoft neutrinos, which can be expressed in terms of nuclear matrix elements of the weak current and excitation energies of the intermediate nucleus. These quantities also control the two-neutrino double beta-decay amplitude. Finally, we outline strategies to determine the low-energy constants that appear in the potentials, by relating them to electromagnetic couplings and/or by matching to lattice QCD calculations.Comment: 20 pages, 6 figure

    Right-handed charged currents in the era of the Large Hadron Collider

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    We discuss the phenomenology of right-handed charged currents in the framework of the Standard Model Effective Field Theory, in which they arise due to a single gauge-invariant dimension-six operator. We study the manifestations of the nine complex couplings of the WW to right-handed quarks in collider physics, flavor physics, and low-energy precision measurements. We first obtain constraints on the couplings under the assumption that the right-handed operator is the dominant correction to the Standard Model at observable energies. We subsequently study the impact of degeneracies with other Beyond-the-Standard-Model effective interactions and identify observables, both at colliders and low-energy experiments, that would uniquely point to right-handed charged currents.Comment: 50 pages plus appendices and reference

    Non-Perturbative Effects in μ→eγ\mu \to e \gamma

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    We compute the non-perturbative contribution of semileptonic tensor operators (qˉσμνq)(ℓˉσμνℓ)(\bar q \sigma^{\mu \nu} q)(\bar \ell \sigma_{\mu \nu} \ell) to the purely leptonic process μ→eγ\mu \to e \gamma and to the electric and magnetic dipole moments of charged leptons by matching onto chiral perturbation theory at low energies. This matching procedure has been used extensively to study semileptonic and leptonic weak decays of hadrons. In this paper, we apply it to observables that contain no strongly interacting external particles. The non-perturbative contribution to μ→e\mu \to e processes is used to extract the best current bound on lepton-flavor-violating semileptonic tensor operators, ΛBSM≳450\Lambda_\text{BSM} \gtrsim 450 TeV. We briefly discuss how the same method applies to dark-matter interactions.Comment: 21 pages, 1 figure; version published in JHE

    Neutrinoless double beta decay in chiral effective field theory: lepton number violation at dimension seven

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    We analyze neutrinoless double beta decay (0νββ0\nu\beta\beta) within the framework of the Standard Model Effective Field Theory. Apart from the dimension-five Weinberg operator, the first contributions appear at dimension seven. We classify the operators and evolve them to the electroweak scale, where we match them to effective dimension-six, -seven, and -nine operators. In the next step, after renormalization group evolution to the QCD scale, we construct the chiral Lagrangian arising from these operators. We develop a power-counting scheme and derive the two-nucleon 0νββ0\nu\beta\beta currents up to leading order in the power counting for each lepton-number-violating operator. We argue that the leading-order contribution to the decay rate depends on a relatively small number of nuclear matrix elements. We test our power counting by comparing nuclear matrix elements obtained by various methods and by different groups. We find that the power counting works well for nuclear matrix elements calculated from a specific method, while, as in the case of light Majorana neutrino exchange, the overall magnitude of the matrix elements can differ by factors of two to three between methods. We calculate the constraints that can be set on dimension-seven lepton-number-violating operators from 0νββ0\nu\beta\beta experiments and study the interplay between dimension-five and -seven operators, discussing how dimension-seven contributions affect the interpretation of 0νββ0\nu\beta\beta in terms of the effective Majorana mass mββm_{\beta \beta}.Comment: Matches version published in JHE

    A low-energy perspective on the minimal left-right symmetric model

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    We perform a global analysis of the low-energy phenomenology of the minimal left-right symmetric model (mLRSM) with parity symmetry. We match the mLRSM to the Standard Model Effective Field Theory Lagrangian at the left-right-symmetry breaking scale and perform a comprehensive fit to low-energy data including mesonic, neutron, and nuclear β\beta-decay processes, ΔF=1\Delta F=1 and ΔF=2\Delta F=2 CP-even and -odd processes in the bottom and strange sectors, and electric dipole moments (EDMs) of nucleons, nuclei, and atoms. We fit the Cabibbo-Kobayashi-Maskawa and mLRSM parameters simultaneously and determine a lower bound on the mass of the right-handed WRW_R boson. In models where a Peccei-Quinn mechanism provides a solution to the strong CP problem, we obtain MWR≳5.5M_{W_R} \gtrsim 5.5 TeV at 95%95\% C.L. which can be significantly improved with next-generation EDM experiments. In the PP-symmetric mLRSM without a Peccei-Quinn mechanism we obtain a more stringent constraint MWR≳17M_{W_R} \gtrsim 17 TeV at 95%95\% C.L., which is difficult to improve with low-energy measurements alone. In all cases, the additional scalar fields of the mLRSM are required to be a few times heavier than the right-handed gauge bosons. We consider a recent discrepancy in tests of first-row unitarity of the CKM matrix. We find that, while TeV-scale WRW_R bosons can alleviate some of the tension found in the Vud,usV_{ud,us} determinations, a solution to the discrepancy is disfavored when taking into account other low-energy observables within the mLRSM.Comment: 42 pages plus appendices. Published versio

    A neutrinoless double beta decay master formula from effective field theory

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    We present a master formula describing the neutrinoless-double-beta decay (0νββ0\nu\beta\beta) rate induced by lepton-number-violating (LNV) operators up to dimension nine in the Standard Model Effective Field Theory. We provide an end-to-end framework connecting the possibly very high LNV scale to the nuclear scale, through a chain of effective field theories. Starting at the electroweak scale, we integrate out the heavy Standard Model degrees of freedom and we match to an SU(3)c⊗U(1)emSU(3)_c\otimes U(1)_{\mathrm{em}} effective theory. After evolving the resulting effective Lagrangian to the QCD scale, we use chiral perturbation theory to derive the lepton-number-violating chiral Lagrangian. The chiral Lagrangian is used to derive the two-nucleon 0νββ0\nu\beta\beta transition operators to leading order in the chiral power counting. Based on renormalization arguments we show that in various cases short-range two-nucleon operators need to be enhanced to leading order. We show that all required nuclear matrix elements can be taken from existing calculations. Our final result is a master formula that describes the 0νββ0\nu\beta\beta rate in terms of phase-space factors, nuclear matrix elements, hadronic low-energy constants, QCD evolution factors, and high-energy LNV Wilson coefficients, including all the interference terms. Our master formula can be easily matched to any model where LNV originates at energy scales above the electroweak scale. As an explicit example, we match our formula to the minimal left-right-symmetric model in which contributions of operators of different dimension compete, and we discuss the resulting phenomenology.Comment: Published versio

    Neutrinoless double-β decay in the neutrino-extended standard model

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    We investigate neutrinoless double-beta decay (0⁢ ⁢ ⁢ ) in the minimal extension of the standard model of particle physics, the ⁢SM, where gauge-singlet right-handed neutrinos give rise to Dirac and Majorana neutrino mass terms. We focus on the associated sterile neutrinos and argue that the usual evaluation of their contributions to 0⁢ ⁢ ⁢ , based on mass-dependent nuclear matrix elements, is missing important contributions from neutrinos with ultrasoft and hard momenta. We identify the hadronic and nuclear matrix elements that enter the new contributions, and calculate all relevant nuclear matrix elements for 136Xe using the nuclear shell model. Finally, we illustrate the impact on 0⁢ ⁢ ⁢ rates in specific neutrino mass models and show that the new contributions significantly alter the 0⁢ ⁢ ⁢ rate in most parts of the ⁢SM parameter space
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