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Unidirectional topological behavior, engendered by imposing topological operations winding around an exceptional point, is sensitive to dark modes, which allow deactivating topological operations, resulting in a complete blockade of both mode conversion and phonon transfer between dark and bright modes. Here we demonstrate how to beat this challenge and achieve a versatile yet unique nonreciprocal topological phonon transfer and blockade via dark-mode engineering. This happens by harnessing the power of synthetic magnetism, leading to an extraordinary transition between the dark-mode nonbreaking and breaking regimes, in a precise and controlled manner. Specifically, topological phonon blockade (transfer) happens in the dark-mode nonbreaking (breaking) regime, offering an exciting opportunity of switching between topological phonon blockade and its transfer on demand, which has no counterpart in previous studies. Remarkably, applying dark-mode engineering to quantum optomechanical networks can enable scalable network-based topological phonon transfer and quantum collective ground-state preparation. The proposed mechanism has general validity and can be generalized to the manipulation of various dark-state-related quantum effects, advancing the development of scalable quantum information processors. This study maps a general path towards generating a profoundly different topological quantum resource with immunity against both dark modes and dark states.
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http://dx.doi.org/10.1038/s41467-025-63042-9 | DOI Listing |
Phys Chem Chem Phys
September 2025
School of Physics, Changchun University of Science and Technology, Changchun 130022, China.
The design of carbon allotropes that simultaneously exhibit mechanical robustness and quantum functionalities remains a longstanding challenge. Here, we report a comprehensive first-principles study of cT16, a three-dimensional sp-hybridized carbon network with topologically interlinked graphene-like sheets. The structure features high ideal tensile and shear strengths, with pronounced anisotropy arising from strain-induced bond rehybridization and interlayer slipping mechanisms.
View Article and Find Full Text PDFJ Phys Condens Matter
September 2025
The Hong Kong Polytechnic University, Hong Kong, Hong Kong, 999077, HONG KONG.
In this review paper, we begin by introducing the fundamental concepts of superconductivity, laying the groundwork for understanding its principles and applications. We then delve into the scientific advantages of one-dimensional (1D) superconductors over three-dimensional (3D) superconductors, highlighting the main significant enhancement in the upper critical field, which can increase by two orders of magnitude. This feature is crucial for advancing the technological performance of superconducting high-field magnets.
View Article and Find Full Text PDFNat Commun
August 2025
RIKEN Center for Quantum Computing (RQC), 2-1 Hirosawa, RIKEN Wako-shi, Saitama, Japan.
Unidirectional topological behavior, engendered by imposing topological operations winding around an exceptional point, is sensitive to dark modes, which allow deactivating topological operations, resulting in a complete blockade of both mode conversion and phonon transfer between dark and bright modes. Here we demonstrate how to beat this challenge and achieve a versatile yet unique nonreciprocal topological phonon transfer and blockade via dark-mode engineering. This happens by harnessing the power of synthetic magnetism, leading to an extraordinary transition between the dark-mode nonbreaking and breaking regimes, in a precise and controlled manner.
View Article and Find Full Text PDFPhys Rev Lett
August 2025
National University of Singapore, Department of Electrical and Computer Engineering, Singapore 117583, Singapore.
Topological invariants have been utilized profoundly to classify the geometric features of electronic, photonic, and phononic structures. However, no invariant has ever been conceptualized to classify the functional properties of diverse thermal structures. Here, we formulate a heat diffusion invariant to reveal the explicit correlation between thermal functionality and diffusivity.
View Article and Find Full Text PDFJ Acoust Soc Am
August 2025
School of Artificial Intelligence, Chongqing Technology and Business University, Chongqing 400067, China.
The topological phase of phononic crystals has garnered significant attention in the design of systems for confining and manipulating acoustic waves due to the robustness of topological states within bandgaps. In this work, we propose a kagome tight-binding model phononic crystal that utilizes the resonant effect coupling between cavities for airborne sound. The topological phase transition within high-order resonant bandgaps is achieved by tuning the coupling strength with the nontrivial phase characterized by a shrunken lattice.
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