Matthew Baumgart
Harvard University
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Featured researches published by Matthew Baumgart.
Journal of High Energy Physics | 2011
Matthew Baumgart; Brock Tweedie
Top-antitop pairs produced in the decay of a new heavy resonance will exhibit spin correlations that contain valuable coupling information. When the tops decay, these correlations imprint themselves on the angular patterns of the final quarks and leptons. While many approaches to the measurement of top spin correlations are known, the most common ones require detailed kinematic reconstructions and are insensitive to some important spin interference effects. In particular, spin-1 resonances with mostly-vector or mostly-axial couplings to top cannot be easily discriminated from one another without appealing to mass-suppressed effects or to more model-dependent interference with continuum Standard Model production. Here, we propose to probe the structure of a resonance’s couplings to tops by measuring the azimuthal angles of the tops’ decay products about the production axis. These angles exhibit modulations which are typically O(0.1-1), and which by themselves allow for discrimination of spin-0 from higher spins, measurement of the CP-phase for spin-0, and measurement of the vector/axial composition for spins1and 2. For relativistic tops, the azimuthal decay angles can be well-approximated without detailed knowledge of the tops’ velocities, and appear to be robust against imperfect energy measurements and neutrino reconstructions. We illustrate this point in the highly challenging dileptonic decay mode, which also exhibits the largest modulations. We comment on the relevance of these observables for testing axigluon-like models that explain the top quark AFB anomaly at the Tevatron, through direct production at the LHC.
Physical Review D | 2014
Matthew Baumgart; Daniel Stolarski; Thomas Zorawski
Radiative flavor models where the hierarchies of Standard Model (SM) fermion masses and mixings are explained via loop corrections are elegant ways to solve the SM flavor puzzle. Here we build such a model in the context of Mini-Split Supersymmetry (SUSY) where both flavor and SUSY breaking occur at a scale of 1000 TeV. This model is consistent with the observed Higgs mass, unification, and WIMP dark matter. The high scale allows large flavor mixing among the sfermions, which provides part of the mechanism for radiative flavor generation. In the deep UV, all flavors are treated democratically, but at the SUSY breaking scale, the third, second, and first generation Yukawa couplings are generated at tree level, one loop, and two loops, respectively. Save for one, all the dimensionless parameters in the theory are O(1), with the exception being a modest and technically natural tuning that explains both the smallness of the bottom Yukawa coupling and the largeness of the Cabibbo angle.
Physical Review D | 2011
Matthew Baumgart; Claudio Marcantonini; Iain W. Stewart
We carry out a systematic classification and computation of next-to-leading order kinematic power corrections to the fully differential cross section in the parton shower. To do this we devise a map between ingredients in a parton shower and operators in a traditional effective field theory framework using a chain of soft-collinear effective theories. Our approach overcomes several difficulties including avoiding double counting and distinguishing approximations that are coordinate choices from true power corrections. Branching corrections can be classified as hard-scattering, that occur near the top of the shower, and jet-structure, that can occur at any point inside it. Hard-scattering corrections include matrix elements with additional hard partons, as well as power suppressed contributions to the branching for the leading jet. Jet-structure corrections require simultaneous consideration of potential 1{yields}2 and 1{yields}3 branchings. The interference structure induced by collinear terms with subleading powers remains localized in the shower.
Journal of High Energy Physics | 2012
Matthew Baumgart; Andrey Katz
A bstractWe study the decay modes of a new, light spin-0 particle, arguing that if the mass of the (pseudo)scalar is ~ 11–15 GeV, it can have an appreciable branching ratio into bottomonium, in particular the rare ηbs. Using non-relativistic QCD (NRQCD), we calculate its decay rate to bottomonia for mass splittings greater than the typical momentum transfer within the bound state. It can exceed that of decays to other Standard Model fermions under the assumption of couplings proportional to those of the Standard Model. At smaller splittings, where our computational methods break down, we estimate the rate into bottomonia using data-driven methods. When the spin-0 state decays to bottomonia whose mass is too light to produce B-meson pairs, we get a qualitatively new experimental signature, decays to b-quarks invisible to b-tagging. Such a light, spinless particle can arise in extended Higgs sectors, making this channel potentially observable in decay chains initiated by the subdominant decay of a Standard Model-like Higgs to a pair of them.
Journal of Physics G | 2012
Daniele S. M. Alves; Nima Arkani-Hamed; S. Arora; Yang Bai; Matthew Baumgart; J. Berger; Matthew R. Buckley; B. Butler; Spencer Chang; Hsin Chia Cheng; Clifford Cheung; R. Sekhar Chivukula; Won Sang Cho; Randy Cotta; Mariarosaria D'Alfonso; Sonia El Hedri; Rouven Essig; Jared A. Evans; Liam Fitzpatrick; Patrick J. Fox; Roberto Franceschini; Ayres Freitas; James S. Gainer; Y. Gershtein; R. Gray; Thomas Gregoire; Ben Gripaios; Jack Gunion; Tao Han; A. Haas
Journal of High Energy Physics | 2009
Matthew Baumgart; Clifford Cheung; Joshua T. Ruderman; Lian-Tao Wang; Itay Yavin
Journal of High Energy Physics | 2007
Matthew Baumgart; Thomas Hartman; Can Kilic; Lian-Tao Wang
arXiv: High Energy Physics - Phenomenology | 2007
Matthew Baumgart
arXiv: High Energy Astrophysical Phenomena | 2018
Lucia Rinchiuso; Varun Vaidya; E. Moulin; Tracy R. Slatyer; Ian Moult; Timothy Cohen; Matthew Baumgart; Nicholas L. Rodd; Iain W. Stewart
arXiv: High Energy Physics - Phenomenology | 2018
Matthew Baumgart; Timothy Cohen; E. Moulin; Ian Moult; Lucia Rinchiuso; Nicholas L. Rodd; Tracy R. Slatyer; Iain W. Stewart; Varun Vaidya