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Explore light-matter interactions in condensed matter physics using density-functional theory. Investigate giant bulk photovoltaic effect in WS2 nanotubes and optoelectronic manifestation of orbital angular momentum in helical Se chains.
Explore resonant fractional conductance in 1D Wigner chains, focusing on quantum point contacts, fractionally charged solitons, and conductance patterns in spinless and spinful cases.
Explore symmetry breaking in quantum matter, focusing on charge order in kagome systems. Analyze transport properties of CsV3Sb5 and uncover insights into flux order and bond order interactions.
Explore electronic liquid crystal phases in correlated topological semimetals through direct visualization techniques, uncovering novel phenomena and their implications for strongly correlated electron systems.
Explore alpha-RuCl3's structure and magnetic properties, focusing on Kitaev interactions and quantum spin liquid states. Gain insights into recent experimental findings using high-quality samples.
Explore the fascinating world of ferromagnetic solitons, their mechanics, and potential applications in information storage and processing. Discover surprising behaviors and connections to other areas of mechanics.
Explore cavity magnonics with domain walls in ferromagnetic wires, uncovering quantum states, entanglement, and detection methods for potential computing applications.
Explore novel spintronic devices using skyrmions for energy-efficient memory and non-conventional computing. Learn about topological stability, efficient manipulation, and applications in stochastic and reservoir computing.
Explore topological quantum dimers emerging from Kitaev spin liquid bilayer through anyon condensation transition. Gain insights into quantum spin liquids and their potential for quantum science and technology.
Explore a scalable quantum computing implementation using mobile domain walls on magnetic racetracks, with long-lived qubits and noise-resistant operations.
Explore twisted van der Waals magnets' potential for hosting topological spin textures. Discover magnetic skyrmions and vortex-type merons through twist engineering in easy-axis and easy-plane systems.
Explore scale invariance and self-similarity in quantum systems, focusing on universal dynamics in atomic condensates and their classification based on symmetry and topological defects.
Explore isolated fractional skyrmions in magnetic quantum gases, focusing on their unique properties, formation through spin-current instability, and comparison to traditional skyrmions and merons.
Explore 2D coherent spectroscopy as a tool for distinguishing between magnetic models in 1D spin chains, focusing on its advantages over conventional 1D optical spectroscopy for investigating fractionalized excitations.
Explore a breakthrough in Si-integrable nanolasers with continuous-wave operation and on-demand gain-printing, addressing challenges in optical integration for compact, efficient light sources.
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