Quantum Fields on Noncommutative Spacetimes: Theory and Phenomenology

被引:29
作者
Balachandran, Aiyalam P. [1 ]
Ibort, Alberto [2 ]
Marmo, Giuseppe [3 ,4 ]
Martone, Mario [1 ,3 ,4 ]
机构
[1] Syracuse Univ, Dept Phys, Syracuse, NY 13244 USA
[2] Univ Carlos III Madrid, Dept Matemat, Madrid 28911, Spain
[3] Univ Napoli, Dipartimento Sci Fis, I-80126 Naples, Italy
[4] Ist Nazl Fis Nucl, I-80126 Naples, Italy
关键词
noncommutative spacetime; quantum field theory; twisted field construction; Poincare-Hopf algebra; PAULI EXCLUSION-PRINCIPLE; ANOMALOUS MAGNETIC-MOMENT; BLACK-BODY RADIATION; CMB POWER SPECTRUM; MOSAIC OBSERVATIONS; MOYAL PLANE; ANISOTROPY; VIOLATION; SYMMETRY; DECAY;
D O I
10.3842/SIGMA.2010.052
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
In the present work we review the twisted field construction of quantum field theory on noncommutative spacetimes based on twisted Poincare invariance. We present the latest development in the field, in particular the notion of equivalence of such quantum field theories on a noncommutative spacetime, in this regard we work out explicitly the inequivalence between twisted quantum field theories on Moyal and Wick-Voros planes; the duality between deformations of the multiplication map on the algebra of functions on spacetime F(R-4) and coproduct deformations of the Poincare-Hopf algebra HP acting on F(R-4); the appearance of a nonassociative product on F(R-4) when gauge fields are also included in the picture. The last part of the manuscript is dedicated to the phenomenology of noncommutative quantum field theories in the particular approach adopted in this review. CPT violating processes, modification of two-point temperature correlation function in CMB spectrum analysis and Pauli-forbidden transition in Be-4 are all effects which show up in such a noncommutative setting. We review how they appear and in particular the constraint we can infer from comparison between theoretical computations and experimental bounds on such effects. The best bound we can get, coming from Borexino experiment, is greater than or similar to 10(24) TeV for the energy scale of noncommutativity, which corresponds to a length scale. less than or similar to 10(-43) m. This bound comes from a different model of spacetime deformation more adapted to applications in atomic physics. It is thus model dependent even though similar bounds are expected for the Moyal spacetime as well as argued elsewhere.
引用
收藏
页数:22
相关论文
共 72 条
[1]   Direction-dependent CMB power spectrum and statistical anisotropy from noncommutative geometry [J].
Akofor, E. ;
Balachandran, A. P. ;
Jo, S. G. ;
Joseph, A. ;
Qureshi, B. A. .
JOURNAL OF HIGH ENERGY PHYSICS, 2008, (05)
[2]   Constraints from the cosmic microwave background on spacetime noncommutativity and causality violation [J].
Akofor, E. ;
Balachandran, A. P. ;
Joseph, A. ;
Pekowsky, L. ;
Qureshi, B. A. .
PHYSICAL REVIEW D, 2009, 79 (06)
[3]   Quantum fields on the Groenewold-Moyal plane: C, P, T and CPT [J].
Akofor, Earnest ;
Balachandran, Aiyalam P. ;
Jo, Sang G. ;
Joseph, Anosh .
JOURNAL OF HIGH ENERGY PHYSICS, 2007, (08)
[4]   A determination of the CPT violation parameter Re(δ) from the semileptonic decay of strangeness-tagged neutral kaons [J].
Angelopoulos, A ;
Apostolakis, A ;
Aslanides, E ;
Backenstoss, G ;
Bargassa, P ;
Behnke, O ;
Benelli, A ;
Bertin, V ;
Blanc, F ;
Bloch, P ;
Carlson, P ;
Carroll, M ;
Cawley, E ;
Chertok, MB ;
Danielsson, M ;
Dejardin, M ;
Derre, J ;
Ealet, A ;
Eleftheriadis, C ;
Faravel, L ;
Fetscher, W ;
Fidecaro, M ;
Filipcic, A ;
Francis, D ;
Fry, J ;
Gabathuler, E ;
Gamet, R ;
Gerber, HJ ;
Go, A ;
Haselden, A ;
Hayman, PJ ;
Henry-Couannier, F ;
Hollander, RW ;
Jon-And, K ;
Kettle, PR ;
Kokkas, P ;
Kreuger, R ;
Le Gac, R ;
Leimgruber, F ;
Mandic, I ;
Manthos, N ;
Marel, G ;
Mikuz, M ;
Miller, J ;
Montanet, F ;
Muller, A ;
Nakada, T ;
Pagels, B ;
Papadopoulos, I ;
Pavlopoulos, P .
PHYSICS LETTERS B, 1998, 444 (1-2) :52-60
[5]  
[Anonymous], 2005, PHYS FDN COSMOLOGY, DOI DOI 10.1017/CBO9780511790553
[6]  
[Anonymous], 2002, IRMA Lectures Maths. Theor. Phys
[7]  
[Anonymous], 1980, Sov. Sci. Rev. C
[8]   Testing the Pauli exclusion principle with the NEMO-2 detector [J].
Arnold, R ;
Augier, C ;
Baker, J ;
Barabash, A ;
Blum, D ;
Brudanin, V ;
Caffrey, AJ ;
Campagne, JE ;
Caurier, E ;
Dassié, D ;
Egorov, V ;
Filipova, T ;
Gurriaran, R ;
Guyonnet, JL ;
Hubert, F ;
Hubert, P ;
Jullian, S ;
Kochetov, O ;
Kisel, I ;
Kornoukhov, VN ;
Kovalenko, V ;
Lalanne, D ;
Laplanche, F ;
Leccia, F ;
Linck, I ;
Longuemare, C ;
Marquet, C ;
Mauger, F ;
Nicholson, HW ;
Pilugin, I ;
Piquemal, F ;
Reyes, JL ;
Sarazin, X ;
Scheibling, F ;
Suhonen, J ;
Sutton, CS ;
Szklarz, G ;
Timkin, V ;
Torres, R ;
Tretyak, VI ;
Umatov, V ;
Vanyushin, I ;
Vareille, A ;
Vasilyev, Y ;
Vylov, T .
EUROPEAN PHYSICAL JOURNAL A, 1999, 6 (03) :361-366
[9]  
ASCHIERI P, HEPTH0703013
[10]   Twisting all the way: From classical mechanics to quantum fields [J].
Aschieri, Paolo ;
Lizzi, Fedele ;
Vitale, Patrizia .
PHYSICAL REVIEW D, 2008, 77 (02)