Export citation

Export citation

Choose format for download:

Download Citation
  • Access by Xinjiang University

Testing Higgs models via the H±WZ vertex by a recoil method at the International Linear Collider

Shinya Kanemura*, Kei Yagyu, and Kazuya Yanase

  • Department of Physics, University of Toyama, 3190 Gofuku, Toyama 930-8555, Japan

  • *kanemu@sci.u-toyama.ac.jp
  • keiyagyu@jodo.sci.u-toyama.ac.jp
  • yanase@jodo.sci.u-toyama.ac.jp

Phys. Rev. D 83, 075018 – Published 29 April, 2011

DOI: https://doi.org/10.1103/PhysRevD.83.075018

Abstract

In general, charged Higgs bosons H± appear in nonminimal Higgs models. The H±WZ vertex is known to be related to the violation of the global symmetry (custodial symmetry) in the Higgs sector. Its magnitude strongly depends on the structure of the exotic Higgs models which contain higher isospin SU(2)L representations such as triplet Higgs bosons. We study the possibility of measuring the H±WZ vertex via single charged Higgs boson production associated with the W± boson at the International Linear Collider (ILC) by using the recoil method. The feasibility of the signal e+eH±Wνjj is analyzed assuming the polarized electron and positron beams and the expected detector performance for the resolution of the two-jet system at the ILC. The background events can be reduced to a considerable extent by imposing the kinematic cuts even if we take into account the initial state radiation. For a relatively light charged Higgs boson whose mass mH± is in the region of 120–130 GeV <mH±<mW+mZ, the H±WZ vertex would be precisely testable especially when the decay of H± is lepton specific. The exoticness of the extended Higgs sector can be explored by using combined information for this vertex and the rho parameter.

Article Text

References (39)

  1. K. Nakamura et al. (Particle Data Group), J. Phys. G 37, 075021 (2010).
  2. J. F. Gunion, H. E. Haber, G. L. Kane, and S. Dawson, Front. Phys. 80, 1 (2000).
  3. E. Gildener and S. Weinberg, Phys. Rev. D 13, 3333 (1976).
  4. J. Alcaraz et al. (ALEPH and DELPHI and L3 and OPAL and LEP Electroweak Working Group Collaborations), arXiv:hep-ex/0612034.
  5. M. E. Peskin and T. Takeuchi, Phys. Rev. Lett. 65, 964 (1990); Phys. Rev. D 46, 381 (1992).
  6. J. A. Grifols and A. Mendez, Phys. Rev. D 22, 1725 (1980); A. A. Iogansen, N. G. Uraltsev, and V. A. Khoze, Sov. J. Nucl. Phys. 36, 717 (1982).
  7. A. Mendez and A. Pomarol, Nucl. Phys. B349, 369 (1991); M. C. Peyranere, H. E. Haber, and P. Irulegui, Phys. Rev. D 44, 191 (1991); J. L. Díaz-Cruz, J. Hernández-Sánchez, and J. J. Toscano, Phys. Lett. B 512, 339 (2001).
  8. S. Kanemura, Phys. Rev. D 61, 095001 (2000).
  9. H. Haber and H. Logan, Phys. Rev. D 62, 015011 (2000).
  10. S. L. Glashow and S. Weinberg, Phys. Rev. D 15, 1958 (1977).
  11. V. D. Barger, J. L. Hewett, and R. J. N. Phillips, Phys. Rev. D 41, 3421 (1990); Y. Grossman, Nucl. Phys. B426, 355 (1994).
  12. M. Aoki, S. Kanemura, K. Tsumura, and K. Yagyu, Phys. Rev. D 80, 015017 (2009); H. S. Goh, L. J. Hall, and P. Kumar, J. High Energy Phys. 05 (2009) 097; S. Su and B. Thomas, Phys. Rev. D 79, 095014 (2009); H. E. Logan and D. MacLennan, 79, 115022 (2009).
  13. A. C. Bawa, C. S. Kim, and A. D. Martin, Z. Phys. C 47, 75 (1990).
  14. J. F. Gunion, H. E. Haber, F. E. Paige, W. K. Tung, and S. S. D. Willenbrock, Nucl. Phys. B294, 621 (1987).
  15. D. A. Dicus, J. L. Hewett, C. Kao, and T. G. Rizzo, Phys. Rev. D 40, 787 (1989); A. A. Barrientos Bendezú and B. A. Kniehl, 59, 015009 (1998); 61, 097701 (2000); 63, 015009 (2000); O. Brein, W. Hollik, and S. Kanemura, 63, 095001 (2001); Y. S. Yang, C. S. Li, L. G. Jin, and S. H. Zhu, 62, 095012 (2000); F. Zhou, W. G. Ma, Y. Jiang, L. Han, and L. H. Wan, 63, 015002 (2001); W. Hollik and S. H. Zhu, 65, 075015 (2002); E. Asakawa, O. Brein, and S. Kanemura, 72, 055017 (2005); D. Eriksson, S. Hesselbach, and J. Rathsman, Eur. Phys. J. C 53, 267 (2007).
  16. S. Willenbrock, Phys. Rev. D 35, 173 (1987); O. Brein and W. Hollik, Eur. Phys. J. C 13, 175 (2000); A. A. Barrientos Bendezu and B. A. Kniehl, Phys. Rev. D 64, 035006 (2001).
  17. E. Eichten, I. Hinchliffe, K. D. Lane, and C. Quigg, Rev. Mod. Phys. 56, 579 (1984); 58, 1065 (1986).
  18. S. Kanemura and C. P. Yuan, Phys. Lett. B 530, 188 (2002); Q. H. Cao, S. Kanemura, and C. P. Yuan, Phys. Rev. D 69, 075008 (2004); A. Belyaev, Q.-H. Cao, D. Nomura, K. Tobe, and C.-P. Yuan, Phys. Rev. Lett. 100, 061801 (2008).
  19. A. G. Akeroyd and M. Aoki, Phys. Rev. D 72, 035011 (2005).
  20. E. Asakawa and S. Kanemura, Phys. Lett. B 626, 111 (2005); E. Asakawa, S. Kanemura, and J. Kanzaki, Phys. Rev. D 75, 075022 (2007); M. Battaglia, A. Ferrari, A. Kiiskinen, and T. Maki, arXiv:hep-ex/0112015; S. Godfrey, K. Moats, Phys. Rev. D 81, 075026 (2010).
  21. J. Brau et al. (ILC Collaboration), arXiv:0712.1950; G. Aarons et al. (ILC Collaboration), arXiv:0709.1893; T. Behnke et al. (ILC Collaboration), arXiv:0712.2356.
  22. S. Komamiya, Phys. Rev. D 38, 2158 (1988); A. Djouadi, J. Kalinowski, P. Ohmann, and P. M. Zerwas, Z. Phys. C 74, 93 (1997); A. Kiiskinen, P. Poyhonen, and M. Battaglia, arXiv:hep-ph/0101239; J. Guasch, W. Hollik, and A. Kraft, Nucl. Phys. B596, 66 (2001).
  23. D. Bowser-Chao, K.-m. Cheung, and S. D. Thomas, Phys. Lett. B 315, 399-405 (1993).
  24. S. Kanemura, S. Moretti, and K. Odagiri, J. High Energy Phys. 02 (2001) 011.
  25. K. Cheung, R. J. N. Phillips, and A. Pilaftsis, Phys. Rev. D 51, 4731 (1995).
  26. S. Kanemura, Eur. Phys. J. C 17, 473 (2000).
  27. S.-H. Zhu, arXiv:hep-ph/9901221; A. Arhrib et al., Nucl. Phys. B581, 34 (2000); H. E. Logan and S. Su, Phys. Rev. D 66, 035001 (2002); 67, 017703 (2003); O. Brein and T. Hahn, Eur. Phys. J. C 52, 397 (2007); K. Cheung, R. Phillips, and A. Pilaftsis, Phys. Rev. D 51, 4731 (1995); R. M. Godbole, B. Mukhopadhyaya, and M. Nowakowski, Phys. Lett. B 352, 388 (1995); D. K. Ghosh, R. M. Godbole, and B. Mukhopadhyaya, Phys. Rev. D 55, 3150 (1997).
  28. T. Farris, H. Logan, and S. Su, Phys. Rev. D 69, 035005 (2004); O. Brein and T. Figy, 77, 055004 (2008).
  29. H. J. He, S. Kanemura, and C. P. Yuan, Phys. Rev. Lett. 89, 101803 (2002); Phys. Rev. D 68, 075010 (2003); S. Moretti and S. Kanemura, Eur. Phys. J. C 29, 19 (2003).
  30. S. Kanemura, S. Moretti, and K. Odagiri, Eur. Phys. J. C 22, 401 (2001).
  31. J. R. Ellis, M. K. Gaillard, and D. V. Nanopoulos, Nucl. Phys. B106, 292 (1976); J. D. Bjorken, SLAC Report No. 198, 1976; B. L. Ioffe and V. A. Khoze, Sov. J. Part. Nucl. 9, 50 (1978); D. R. T. Jones and S. T. Petcov, Phys. Lett. B 84, 440 (1979).
  32. W. Lohmann, M. Ohlerich, A. Raspereza, and A. Schalicke, In the Proceedings of 2007 International Linear Collider Workshop (LCWS07 and ILC07), Hamburg, Germany, 2007, p. TIG13; H. Li, F. Richard, R. Poeschl, and Z. Zhang, arXiv:0901.4893.
  33. A. Pukhov, arXiv:hep-ph/0412191.
  34. S. Kanemura, T. Kubota, and E. Takasugi, Phys. Lett. B 313, 155 (1993); A. G. Akeroyd, A. Arhrib, E.-M. Naimi, 490, 119 (2000); I. F. Ginzburg and I. P. Ivanov, Phys. Rev. D 72, 115010 (2005).
  35. H. E. Haber and A. Pomarol, Phys. Lett. B 302, 435 (1993); A. Pomarol and R. Vega, Nucl. Phys. B413, 3 (1994).
  36. H. Georgi and M. Machacek, Nucl. Phys. B262, 463 (1985); M. S. Chanowitz and M. Golden, Phys. Lett. B 165, 105 (1985).
  37. J. F. Gunion, R. Vega, and J. Wudka, Phys. Rev. D 42, 1673 (1990); R. Vega and D. A. Dicus, Nucl. Phys. B329, 533 (1990); J. F. Gunion, R. Vega, and J. Wudka, Phys. Rev. D 43, 2322 (1991); R. Godbole, B. Mukhopadhyaya, and M. Nowakowski, Phys. Lett. B 352, 388 (1995).
  38. M. Aoki and S. Kanemura, Phys. Rev. D 77, 095009 (2008); H. E. Logan and M.-A. Roy, 82, 115011 (2010).
  39. J. Schechter and J. W. F. Valle, Phys. Rev. D 22, 2227 (1980); T. P. Cheng and L. F. Li, 22, 2860 (1980); M. Magg and C. Wetterich, Phys. Lett. B 94, 61 (1980); C. Wetterich, Nucl. Phys. B187, 343 (1981); G. Lazarides, Q. Shafi, and C. Wetterich, B181, 287 (1981); R. N. Mohapatra and G. Senjanovic, Phys. Rev. D 23, 165 (1981).

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation