Cosmological consequences of MSSM flat directions

被引:270
作者
Enqvist, K
Mazumdar, A
机构
[1] Univ Helsinki, Dept Phys Sci, FIN-0014 Helsinki, Finland
[2] Univ Helsinki, Helsinki Inst Phys, FIN-00014 Helsinki, Finland
[3] Abdus Salam Int Ctr Theoret Phys, I-34100 Trieste, Italy
来源
PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS | 2003年 / 380卷 / 3-4期
基金
芬兰科学院;
关键词
D O I
10.1016/S0370-1573(03)00119-4
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
We review the cosmological implications of the flat directions of the minimally supersymmetric standard model (MSSM). We describe how field condensates are created along the flat directions because of inflationary fluctuations. The post-inflationary dynamical evolution of the field condensate can charge up the condensate with B or L in a process known as Affleck-Dine baryogenesis. Condensate fluctuations can give rise to both adiabatic and isocurvature density perturbations and could be observable in future cosmic microwave experiments. In many cases the condensate is however not the state of lowest energy but fragments, with many interesting cosmological consequences. Fragmentation is triggered by inflation-induced perturbations and the condensate lumps will eventually form non-topological solitons, known as Q-balls. Their properties depend on how supersymmetry breaking is transmitted to the MSSM; if by gravity, then the Q-balls are semi-stable but long-lived and can be the source of all the baryons and LSP dark matter; if by gauge interactions, the Q-balls can be absolutely stable and form dark matter that can be searched for directly. We also discuss some cosmological applications of generic flat directions and Q-balls in the context of self-interacting dark matter, inflatonic solitons and extra dimensions. (C) 2003 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:99 / 234
页数:136
相关论文
共 633 条
[21]   MINIMAL LOW-ENERGY SUPERGRAVITY [J].
ALVAREZGAUME, L ;
POLCHINSKI, J ;
WISE, MB .
NUCLEAR PHYSICS B, 1983, 221 (02) :495-523
[22]   LOW-ENERGY SUPERSYMMETRY [J].
ALVAREZGAUME, L ;
CLAUDSON, M ;
WISE, MB .
NUCLEAR PHYSICS B, 1982, 207 (01) :96-110
[23]   TOPOGRAPHY OF THE HOT SPHALERON TRANSITIONS [J].
AMBJORN, J ;
FARAKOS, K .
PHYSICS LETTERS B, 1992, 294 (02) :248-256
[24]   BARYON ASYMMETRY OF THE UNIVERSE - A MONTE-CARLO STUDY ON THE LATTICE [J].
AMBJORN, J ;
LAURSEN, M ;
SHAPOSHNIKOV, ME .
PHYSICS LETTERS B, 1987, 197 (1-2) :49-54
[25]   THE CLASSICAL SPHALERON TRANSITION RATE EXISTS AND IS EQUAL TO 1.1(ALPHA(W)T)(4) [J].
AMBJORN, J ;
KRASNITZ, A .
PHYSICS LETTERS B, 1995, 362 (1-4) :97-104
[26]   LATTICE SIMULATIONS OF ELECTROWEAK SPHALERON TRANSITIONS IN REAL-TIME [J].
AMBJORN, J ;
ASKGAARD, T ;
PORTER, H ;
SHAPOSHNIKOV, ME .
PHYSICS LETTERS B, 1990, 244 (3-4) :479-487
[27]   SPHALERON TRANSITIONS AND BARYON ASYMMETRY - A NUMERICAL, REAL-TIME ANALYSIS [J].
AMBJORN, J ;
ASKGAARD, T ;
PORTER, H ;
SHAPOSHNIKOV, ME .
NUCLEAR PHYSICS B, 1991, 353 (02) :346-378
[28]   Correlated perturbations from inflation and the cosmic microwave background [J].
Amendola, L ;
Gordon, C ;
Wands, D ;
Sasaki, M .
PHYSICAL REVIEW LETTERS, 2002, 88 (21) :2113021-2113024
[29]  
Anagnostopoulos KN, 2001, PHYS REV D, V64, DOI 10.1103/PhysRevD.64.125006
[30]   Some issues in flat direction baryogenesis [J].
Anisimov, A ;
Dine, M .
NUCLEAR PHYSICS B, 2001, 619 (1-3) :729-740