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    Nonlinear topological edge states, topological gap solitons, and self-induced topological edge states in nonlinear Su-Schrieffer-Heeger circuit lattices

    Rujiang Li1,*, Wencai Wang1, Xiangyu Kong1, Ce Shang2, Yongtao Jia1, Gui-Geng Liu3,4,†, Huibin Tao5, Ying Liu1, and Baile Zhang6,7,‡

    • *Contact author: rujiangli@xidian.edu.cn
    • †Contact author: liuguigeng@westlake.edu.cn
    • ‡Contact author: blzhang@ntu.edu.sg

    Phys. Rev. B 113, 214310 – Published 11 June, 2026

    DOI: https://doi.org/10.1103/s4d3-nlz6

    Abstract

    Topological edge states typically arise at the boundaries of topologically nontrivial structures or at interfaces between regions with different topological invariants. When topological systems are extended into the nonlinear regime, linear topological edge states bifurcate into nonlinear counterparts, and topological gap solitons emerge in the bulk of the structures. Extensive studies of nonlinear topological edge states and topological gap solitons have been carried out. Following recent experimental observations in photonic systems, we leverage the strong and tunable nonlinearity of electric circuits and systematically investigate the localized states in nonlinear Su-Schrieffer-Heeger circuit lattices. Besides revisiting the nonlinear topological edge states and topological gap solitons, we uncover a new type of self-induced topological edge states which exhibit the hallmark features of linear topological edge states, including sublattice polarization, phase jumps, and decaying tails that approach zero. A distinctive feature of these states is the boundary-induced power threshold for existence. Our work unveils new opportunities for exploring novel nonlinear topological states and paves the way for the development of nonlinear topological circuits.

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