Related Experiment Videos
Probing a very narrow Z' boson with CDF and D0 Data.
Daniel Feldman1, Zuowei Liu, Pran Nath
1Department of Physics, Northeastern University, Boston, Massachusetts 02115, USA.
Physical Review Letters
|August 16, 2006
Summary
This study analyzes dilepton data to constrain Stueckelberg extensions of the Standard Model (StSM). Current data limits StSM parameter space, with future data potentially discovering a new Z
Area of Science:
- High Energy Physics
- Particle Physics
- Beyond Standard Model Physics
Background:
- The Standard Model (SM) is the current framework for particle physics.
- New physics models, such as Stueckelberg extensions of the Standard Model (StSM), propose new particles beyond the SM.
- These models predict a Z' boson with a narrow decay width, originating from topological mass generation.
Purpose of the Study:
- To probe Stueckelberg extensions of the Standard Model (StSM) using experimental data.
- To constrain the parameter space of the StSM by analyzing dilepton production.
- To determine the discovery potential for the predicted Z' boson at future collider experiments.
Main Methods:
- Analysis of dilepton channel data from CDF and D0 experiments.
- Application of Drell-Yan analysis to dilepton production via a hypothetical Z' boson.
- Statistical analysis of experimental data to set limits on model parameters.
Main Results:
- Current experimental data from CDF and D0 (475 pb(-1)) place constraints on the StSM parameter space.
- The analysis indicates that with a larger integrated luminosity (8 fb(-1)), a very narrow Z' boson could be discovered up to a mass of approximately 600 GeV.
- The predicted StSM Z' boson could be distinguished from other new physics signals, such as Randall-Sundrum gravitons.
Conclusions:
- Experimental data currently constrain the parameter space of Stueckelberg extensions of the Standard Model.
- Future high-luminosity data holds the potential for discovering a new Z' boson predicted by the StSM.
- The StSM Z' boson offers a distinct signature that could be observed in regions inaccessible to other proposed new physics.