Circle compactification and ’t Hooft anomaly
Abstract Anomaly matching constrains low-energy physics of strongly-coupled field theories, but it is not useful at finite temperature due to contamination from high-energy states. The known exception is an ’t Hooft anomaly involving one-form symmetries as in pure SU(N ) Yang-Mills theory at θ = π....
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Online Access: | http://link.springer.com/article/10.1007/JHEP12(2017)056 |
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doaj-b7f9b9595f7546a593fe2358d19624f52020-11-24T23:27:18ZengSpringerOpenJournal of High Energy Physics1029-84792017-12-0120171212310.1007/JHEP12(2017)056Circle compactification and ’t Hooft anomalyYuya Tanizaki0Tatsuhiro Misumi1Norisuke Sakai2RIKEN BNL Research Center, Brookhaven National LaboratoryDepartment of Mathematical Science, Akita UniversityDepartment of Physics, and Research and Education Center for Natural Sciences, Keio UniversityAbstract Anomaly matching constrains low-energy physics of strongly-coupled field theories, but it is not useful at finite temperature due to contamination from high-energy states. The known exception is an ’t Hooft anomaly involving one-form symmetries as in pure SU(N ) Yang-Mills theory at θ = π. Recent development about large-N volume independence, however, gives us a circumstantial evidence that ’t Hooft anomalies can also remain under circle compactifications in some theories without one-form symmetries. We develop a systematic procedure for deriving an ’t Hooft anomaly of the circle-compactified theory starting from the anomaly of the original uncompactified theory without one-form symmetries, where the twisted boundary condition for the compactified direction plays a pivotal role. As an application, we consider ℤN $$ {\mathbb{Z}}_N $$ -twisted ℂPN−1 $$ \mathbb{C}{P}^{N-1} $$ sigma model and massless ℤN $$ {\mathbb{Z}}_N $$ -QCD, and compute their anomalies explicitly.http://link.springer.com/article/10.1007/JHEP12(2017)056Anomalies in Field and String TheoriesGlobal SymmetriesNonperturbative Effects |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yuya Tanizaki Tatsuhiro Misumi Norisuke Sakai |
spellingShingle |
Yuya Tanizaki Tatsuhiro Misumi Norisuke Sakai Circle compactification and ’t Hooft anomaly Journal of High Energy Physics Anomalies in Field and String Theories Global Symmetries Nonperturbative Effects |
author_facet |
Yuya Tanizaki Tatsuhiro Misumi Norisuke Sakai |
author_sort |
Yuya Tanizaki |
title |
Circle compactification and ’t Hooft anomaly |
title_short |
Circle compactification and ’t Hooft anomaly |
title_full |
Circle compactification and ’t Hooft anomaly |
title_fullStr |
Circle compactification and ’t Hooft anomaly |
title_full_unstemmed |
Circle compactification and ’t Hooft anomaly |
title_sort |
circle compactification and ’t hooft anomaly |
publisher |
SpringerOpen |
series |
Journal of High Energy Physics |
issn |
1029-8479 |
publishDate |
2017-12-01 |
description |
Abstract Anomaly matching constrains low-energy physics of strongly-coupled field theories, but it is not useful at finite temperature due to contamination from high-energy states. The known exception is an ’t Hooft anomaly involving one-form symmetries as in pure SU(N ) Yang-Mills theory at θ = π. Recent development about large-N volume independence, however, gives us a circumstantial evidence that ’t Hooft anomalies can also remain under circle compactifications in some theories without one-form symmetries. We develop a systematic procedure for deriving an ’t Hooft anomaly of the circle-compactified theory starting from the anomaly of the original uncompactified theory without one-form symmetries, where the twisted boundary condition for the compactified direction plays a pivotal role. As an application, we consider ℤN $$ {\mathbb{Z}}_N $$ -twisted ℂPN−1 $$ \mathbb{C}{P}^{N-1} $$ sigma model and massless ℤN $$ {\mathbb{Z}}_N $$ -QCD, and compute their anomalies explicitly. |
topic |
Anomalies in Field and String Theories Global Symmetries Nonperturbative Effects |
url |
http://link.springer.com/article/10.1007/JHEP12(2017)056 |
work_keys_str_mv |
AT yuyatanizaki circlecompactificationandthooftanomaly AT tatsuhiromisumi circlecompactificationandthooftanomaly AT norisukesakai circlecompactificationandthooftanomaly |
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1725552448642220032 |