Abstract
Effects connected with the mathematical theory of knots1 emerge in many areas of science, from physics2,3 to biology4. Recent theoretical work discovered that the braid group characterizes the topology of non-Hermitian periodic systems5, where the complex band energies can braid in momentum space. However, such braids of complex-energy bands have not been realized or controlled experimentally. Here, we introduce a tight-binding lattice model that can achieve arbitrary elements in the braid group of two strands 𝔹2. We experimentally demonstrate such topological complex-energy braiding of non-Hermitian bands in a synthetic dimension6,7. Our experiments utilize frequency modes in two coupled ring resonators, one of which undergoes simultaneous phase and amplitude modulation. We observe a wide variety of two-band braiding structures that constitute representative instances of links and knots, including the unlink, the unknot, the Hopf link and the trefoil. We also show that the handedness of braids can be changed. Our results provide a direct demonstration of the braid-group characterization of non-Hermitian topology and open a pathway for designing and realizing topologically robust phases in open classical and quantum systems.
This is a preview of subscription content, access via your institution
Relevant articles
Open Access articles citing this article.
-
High-speed electro-optic modulation in topological interface states of a one-dimensional lattice
Light: Science & Applications Open Access 29 August 2023
-
Observation of geometry-dependent skin effect in non-Hermitian phononic crystals with exceptional points
Nature Communications Open Access 29 July 2023
-
Symmetry-protected topological exceptional chains in non-Hermitian crystals
Communications Physics Open Access 08 July 2023
Access options
Access Nature and 54 other Nature Portfolio journals
Get Nature+, our best-value online-access subscription
$29.99 / 30 days
cancel any time
Subscribe to this journal
Receive 51 print issues and online access
$199.00 per year
only $3.90 per issue
Rent or buy this article
Prices vary by article type
from$1.95
to$39.95
Prices may be subject to local taxes which are calculated during checkout




Data availability
The data that support the findings of this study are available in Figshare at https://doi.org/10.6084/m9.figshare.14925087.
Code availability
The code that supports the findings of this study is available in Figshare at https://doi.org/10.6084/m9.figshare.14925087.
References
Atiyah, M. The Geometry and Physics of Knots (Cambridge Univ. Press, 1990).
Leach, J., Dennis, M. R., Courtial, J. & Padgett, M. J. Knotted threads of darkness. Nature 432, 165–165 (2004).
Kedia, H., Bialynicki-Birula, I., Peralta-Salas, D. & Irvine, W. T. M. Tying knots in light fields. Phys. Rev. Lett. 111, 150404 (2013).
Shimokawa, K., Ishihara, K., Grainge, I., Sherratt, D. J. & Vazquez, M. FtsK-dependent XerCDdif recombination unlinks replication catenanes in a stepwise manner. Proc. Natl Acad. Sci. USA 110, 20906–20911 (2013).
Wojcik, C. C., Sun, X.-Q., Bzdušek, T. & Fan, S. Homotopy characterization of non-Hermitian Hamiltonians. Phys. Rev. B 101, 205417 (2020).
Lustig, E. et al. Photonic topological insulator in synthetic dimensions. Nature 567, 356–360 (2019).
Yuan, L., Lin, Q., Xiao, M. & Fan, S. Synthetic dimension in photonics. Optica 5, 1396–1405 (2018).
Adams, C. The Knot Book (American Mathematical Society, 2004).
Thomson, W. II. On vortex atoms. London Edinburgh Phil. Mag. J. Sci. 34, 15–24 (1867).
Pisanty, E. et al. Knotting fractional-order knots with the polarization state of light. Nat. Photon. 13, 569–574 (2019).
Pisanty, E. et al. Conservation of torus-knot angular momentum in high-order harmonic generation. Phys. Rev. Lett. 122, 203201 (2019).
Lian, B., Vafa, C., Vafa, F. & Zhang, S. -C. Chern-Simons theory and Wilson loops in the Brillouin zone. Phys. Rev. B 95, 094512 (2017).
Sun, X.-Q., Lian, B. & Zhang, S. -C. Double helix nodal line superconductor. Phys. Rev. Lett. 119, 147001 (2017).
Wu, Q., Soluyanov, A. A. & Bzdušek, T. Non-Abelian band topology in noninteracting metals. Science 365, 1273–1277 (2019).
Lee, C. H. et al. Imaging nodal knots in momentum space through topolectrical circuits. Nat. Commun. 11, 4385 (2020).
Witten, E. Quantum field theory and the Jones polynomial. Commun. Math. Phys. 121, 351–399 (1989).
Hu, H. & Zhao, E. Knots and non-Hermitian Bloch bands. Phys. Rev. Lett. 126, 010401 (2021).
Weimann, S. et al. Topologically protected bound states in photonic parity–time-symmetric crystals. Nat. Mater. 16, 433–438 (2017).
Bandres, M. A. et al. Topological insulator laser: experiments. Science 359, eaar4005 (2018).
Zhou, H. et al. Observation of bulk Fermi arc and polarization half charge from paired exceptional points. Science 359, 1009–1012 (2018).
Zhao, H. et al. Non-Hermitian topological light steering. Science 365, 1163–1166 (2019).
Weidemann, S. et al. Topological funneling of light. Science 368, 311–314 (2020).
Wang, K. et al. Generating arbitrary topological windings of a non-Hermitian band. Science 371, 1240–1245 (2021).
Kozii, V. & Fu, L. Non-Hermitian topological theory of finite-lifetime quasiparticles: prediction of bulk Fermi arc due to exceptional point. Preprint at https://arxiv.org/abs/1708.05841 (2017).
Gao, T. et al. Observation of non-Hermitian degeneracies in a chaotic exciton-polariton billiard. Nature 526, 554–558 (2015).
Li, Z. & Mong, R. S. K. Homotopical characterization of non-Hermitian band structures. Phys. Rev. B 103, 155129 (2021).
Boada, O., Celi, A., Latorre, J. I. & Lewenstein, M. Quantum simulation of an extra dimension. Phys. Rev. Lett. 108, 133001 (2012).
Ozawa, T. & Price, H. M. Topological quantum matter in synthetic dimensions. Nat. Rev. Phys. 1, 349–357 (2019).
Yuan, L., Shi, Y. & Fan, S. Photonic gauge potential in a system with a synthetic frequency dimension. Opt. Lett. 41, 741–744 (2016).
Ozawa, T., Price, H. M., Goldman, N., Zilberberg, O. & Carusotto, I. Synthetic dimensions in integrated photonics: from optical isolation to four-dimensional quantum Hall physics. Phys. Rev. A 93, 043827 (2016).
Bell, B. A. et al. Spectral photonic lattices with complex long-range coupling. Optica 4, 1433–1436 (2017).
Dutt, A. et al. Experimental band structure spectroscopy along a synthetic dimension. Nat. Commun. 10, 3122 (2019).
Dutt, A. et al. A single photonic cavity with two independent physical synthetic dimensions. Science 367, 59–64 (2020).
Wang, K. et al. Multidimensional synthetic chiral-tube lattices via nonlinear frequency conversion. Light Sci. Appl. 9, 132 (2020).
Hu, Y., Reimer, C., Shams-Ansari, A., Zhang, M. & Loncar, M. Realization of high-dimensional frequency crystals in electro-optic microcombs. Optica 7, 1189–1194 (2020).
Li, G. et al. Dynamic band structure measurement in the synthetic space. Sci. Adv. 7, eabe4335 (2021).
Kawabata, K., Shiozaki, K., Ueda, M. & Sato, M. Symmetry and topology in non-Hermitian physics. Phys. Rev. 9, 041015 (2019).
Gong, Z. et al. Topological phases of non-Hermitian systems. Phys. Rev. 8, 031079 (2018).
Lee, T. E. Anomalous edge state in a non-Hermitian lattice. Phys. Rev. Lett. 116, 133903 (2016).
Shen, H., Zhen, B. & Fu, L. Topological band theory for non-Hermitian Hamiltonians. Phys. Rev. Lett. 120, 146402 (2018).
Okuma, N., Kawabata, K., Shiozaki, K. & Sato, M. Topological origin of non-Hermitian skin effects. Phys. Rev. Lett. 124, 086801 (2020).
Yuan, L. et al. Photonic gauge potential in one cavity with synthetic frequency and orbital angular momentum dimensions. Phys. Rev. Lett. 122, 083903 (2019).
Buddhiraju, S., Dutt, A., Minkov, M., Williamson, I. A. D. & Fan, S. Arbitrary linear transformations for photons in the frequency synthetic dimension. Nat. Commun. 12, 2401 (2021).
Baranov, D. G., Krasnok, A. & Alù, A. Coherent virtual absorption based on complex zero excitation for ideal light capturing. Optica 4, 1457–1461 (2017).
Acknowledgements
We thank D. A. B. Miller for providing laboratory space and equipment and X.-Q. Sun for discussions. This work is supported by a MURI project from the US Air Force Office of Scientific Research (grant no. FA9550-18-1-0379), and by a Vannevar Bush Faculty Fellowship from the US Department of Defense (grant no. N00014-17-1-3030).
Author information
Authors and Affiliations
Contributions
K.W., C.C.W. and S.F. conceived the study; K.W. and C.C.W. developed the theory and performed numerical simulations; K.W. and A.D. performed the experiments and processed experimental data. All authors discussed the results and contributed to writing the manuscript. S.F. supervised the work.
Corresponding author
Ethics declarations
Competing interests
The authors declare no competing interests.
Additional information
Peer review information Nature thanks Biao Yang and the other, anonymous, reviewer(s) for their contribution to the peer review of this work.
Publisher’s note Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.
Supplementary information
Supplementary Information
This file contains Supplementary Sections 1–4, including notes on the theoretical details, experimental details, extra experimental results, proposals for future experiments and Supplementary Figs. 1–13. See contents page for details.
Rights and permissions
About this article
Cite this article
Wang, K., Dutt, A., Wojcik, C.C. et al. Topological complex-energy braiding of non-Hermitian bands. Nature 598, 59–64 (2021). https://doi.org/10.1038/s41586-021-03848-x
Received:
Accepted:
Published:
Issue Date:
DOI: https://doi.org/10.1038/s41586-021-03848-x
This article is cited by
-
Programmable large-scale simulation of bosonic transport in optical synthetic frequency lattices
Nature Physics (2023)
-
Observation of geometry-dependent skin effect in non-Hermitian phononic crystals with exceptional points
Nature Communications (2023)
-
Symmetry-protected topological exceptional chains in non-Hermitian crystals
Communications Physics (2023)
-
Multi-dimensional band structure spectroscopy in the synthetic frequency dimension
Light: Science & Applications (2023)
-
Non-Hermitian swallowtail catastrophe revealing transitions among diverse topological singularities
Nature Physics (2023)
Comments
By submitting a comment you agree to abide by our Terms and Community Guidelines. If you find something abusive or that does not comply with our terms or guidelines please flag it as inappropriate.