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Johns Will

Publications and source records attributed to Johns Will.

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Long-term LHC Discovery Reach for Compressed Higgsino-like Models using VBF Processes

The identity of Dark Matter (DM) is one of the most active topics in particle physics today. Supersymmetry (SUSY) is an extension of the standard model (SM) that could describe the particle nature of DM in the form of the lightest neutralino in R-parity conserving models. We focus on SUSY models that solve the hierarchy problem with small fine tuning, and where the lightest SUSY particles ($\tildeχ_{1}^{0}$, $\tildeχ_{1}^{\pm}$, $\tildeχ_{2}^{0}$) are a triplet of higgsino-like states, such that the mass difference $Δm(\tildeχ^{0}_{2},\tildeχ^{0}_{1})$ is 2-50 GeV. We perform a feasibility study to assess the long-term discovery potential for these compressed SUSY models with higgsino-like states, using vector boson fusion (VBF) processes in the context of proton-proton collisions at $\sqrt{s} = 13$ TeV, at the CERN Large Hadron Collider. Assuming an integrated luminosity of 3000 fb$^{-1}$, we find that stringent VBF requirements, combined with large missing momentum and one or two low-$p_{T}$ leptons, is effective at reducing the major SM backgrounds, leading to a 5$σ$ (3$σ$) discovery reach for $m(\tildeχ^{0}_{2}) < 180$ $(260)$ GeV, and a projected 95\% confidence level exclusion region that covers $m(\tildeχ^{0}_{2})$ up to 385 GeV, parameter space that is currently unconstrained by other experiments.

hep-ph

Searching for New Heavy Neutral Gauge Bosons using Vector Boson Fusion Processes at the LHC

New massive resonances are predicted in many extensions to the Standard Model (SM) of particle physics and constitutes one of the most promising searches for new physics at the LHC. We present a feasibility study to search for new heavy neutral gauge bosons using vector boson fusion (VBF) processes, which become especially important as the LHC probes higher collision energies. In particular, we consider the possibility that the discovery of a $Z'$ boson may have eluded searches at the LHC. The coupling of the $Z'$ boson to the SM quarks can be small, and thus the $Z'$ would not be discoverable by the searches conducted thus far. In the context of a simplified phenomenological approach, we consider the $Z'\toττ$ and $Z'\toμμ$ decay modes to show that the requirement of a dilepton pair combined with two high $p_{T}$ forward jets with large separation in pseudorapidity and with large dijet mass is effective in reducing SM backgrounds. The expected exclusion bounds (at 95\% confidence level) are $m(Z') < 1.8$ TeV and $m(Z') < 2.5$ TeV in the $ττj_{f}j_{f}$ and $μμj_{f}j_{f}$ channels, respectively, assuming 1000 fb$^{-1}$ of 13 TeV data from the LHC. The use of the VBF topology to search for massive neutral gauge bosons provides a discovery reach with expected significances greater than 5$σ$ (3$σ$) for $Z'$ masses up to 1.4 (1.6) TeV and 2.0 (2.2) TeV in the $ττj_{f}j_{f}$ and $μμj_{f}j_{f}$ channels.

hep-ph