TY - JOUR
T1 - Topological Temporal Boundary States in a Non-Hermitian Spatial Crystal
AU - Li, Ming-Wei
AU - Liu, Jian-Wei
AU - Wang, Xulong
AU - Chen, Wen-Jie
AU - Ma, Guancong
AU - Dong, Jian-Wen
N1 - Publisher Copyright:
© 2025 American Physical Society
Funding Information:
M.-W. L. and G. M. thank Mathias Fink for discussion. This work was supported by the National Natural Science Foundation of China (62035016), National Key R&D Program of China (2022YFA1404400), Guangdong Basic and Applied Basic Research Foundation (2023B1515040023) and the Hong Kong Research Grants Council (RFS2223-2S01, 12301822), and the Hong Kong Baptist University (RC-RSRG/23-24/SCI/01, RC-SFCRG/23-24/R2/SCI/12).
PY - 2025/10/31
Y1 - 2025/10/31
N2 - Periodic modulation of the material index in time opens momentum gaps. Such systems are regarded as the temporal analog of common spatial crystals, wherein the band gaps open in frequency space. Recent studies have also led to the theoretical prediction of topological temporal boundary states (TTBSs) in such momentum gaps. In this Letter, we report the discovery and experimental realization of a new type of TTBS, appearing in a non-Hermitian spatial crystal with spatially periodic loss and gain, wherein the emergence of the Bloch momentum gap is associated with a parity-time broken phase, instead of relying on temporal modulation. By inducing a sudden flip of signs of the loss and gain profile, a mode emerges in the middle of the Bloch momentum gap and peaks at the flipping instant, which is regarded as a temporal boundary. Remarkably, we found that the temporal flip induces a topological transition in time, and the said mode is a TTBS that is a temporal analog of the Jackiw-Rebbi state. The TTBS is experimentally observed in a one-dimensional active mechanical lattice, and it can generically emerge in a wide range of non-Hermitian systems. By linking non-Hermitian physics with spatiotemporal topological systems, our results not only deepen the understanding of temporal topological phases but also open new grounds for controlling transient waves by topological means.
AB - Periodic modulation of the material index in time opens momentum gaps. Such systems are regarded as the temporal analog of common spatial crystals, wherein the band gaps open in frequency space. Recent studies have also led to the theoretical prediction of topological temporal boundary states (TTBSs) in such momentum gaps. In this Letter, we report the discovery and experimental realization of a new type of TTBS, appearing in a non-Hermitian spatial crystal with spatially periodic loss and gain, wherein the emergence of the Bloch momentum gap is associated with a parity-time broken phase, instead of relying on temporal modulation. By inducing a sudden flip of signs of the loss and gain profile, a mode emerges in the middle of the Bloch momentum gap and peaks at the flipping instant, which is regarded as a temporal boundary. Remarkably, we found that the temporal flip induces a topological transition in time, and the said mode is a TTBS that is a temporal analog of the Jackiw-Rebbi state. The TTBS is experimentally observed in a one-dimensional active mechanical lattice, and it can generically emerge in a wide range of non-Hermitian systems. By linking non-Hermitian physics with spatiotemporal topological systems, our results not only deepen the understanding of temporal topological phases but also open new grounds for controlling transient waves by topological means.
UR - https://www.scopus.com/pages/publications/105022228604
U2 - 10.1103/9b46-d2ry
DO - 10.1103/9b46-d2ry
M3 - Journal article
C2 - 41247989
SN - 0031-9007
VL - 135
JO - Physical Review Letters
JF - Physical Review Letters
IS - 18
M1 - 187101
ER -