c-theorem violation for effective central charge of infinite-randomness fixed points
Abstract
Topological insulators supporting non-Abelian anyonic excitations are in the center of attention as candidates for topological quantum computation. In this paper, we analyze the ground-state properties of disordered non-Abelian anyonic chains. The resemblance of fusion rules of non-Abelian anyons and real-space decimation strongly suggests that disordered chains of such anyons generically exhibit infinite-randomness phases. Concentrating on the disordered golden chain model with nearest-neighbor coupling, we show that Fibonacci anyons with the fusion rule tau[direct-product]tau=1[direct-sum]tau exhibit two infinite-randomness phases: a random-singlet phase when all bonds prefer the trivial fusion channel and a mixed phase which occurs whenever a finite density of bonds prefers the tau fusion channel. Real-space renormalization-group (RG) analysis shows that the random-singlet fixed point is unstable to the mixed fixed point. By analyzing the entanglement entropy of the mixed phase, we find its effective central charge and find that it increases along the RG flow from the random-singlet point, thus ruling out a c theorem for the effective central charge.
Additional Information
© 2008 The American Physical Society. Received 18 August 2008; published 18 December 2008. We are indebted to A. Kitaev, J. Preskill, S. Trebst, and P. Bonderson for illuminating discussions. We would like to especially thank K. Yang for his contributions to this project. G.R. and L.F. acknowledge support from NSF under Grant No. PHY-0456720. N.E.B. acknowledges support from U.S. DOE under Grant No. DE-FG02-97ER45639. J.M. acknowledges support from NSF under Grant No. DMR-0238760. We would also like to acknowledge the KITP and UCSB for their hospitality.Attached Files
Published - FIDprb08.pdf
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Additional details
- Eprint ID
- 12687
- Resolver ID
- CaltechAUTHORS:FIDprb08
- National Science Foundation
- PHY-0456720
- Department of Energy
- DE-FG02-97ER45639
- National Science Foundation
- DMR-0238760
- Created
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2008-12-19Created from EPrint's datestamp field
- Updated
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2021-11-08Created from EPrint's last_modified field