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Cuiling Meng

Publications and source records attributed to Cuiling Meng.

2 recordsLinked to original sources

Coarse-grained kinetic scale tightens thermodynamic spectral bounds of Markov cycles

Thermodynamic bounds on the spectrum of a Markov cycle depend on the cycle affinity and maximum escape rate, but they ignore how the local transition rates are distributed around the cycle. In this work, we show that a single additional cycle-wide kinetic quantity, the geometric means of forward and backward rates, yields a strictly stronger bound for every nonuniform cycle. By comparing each winding sector of the eigenmode with a product-matched uniform cycle, we bound oscillation frequencies, tighten the admissible spectral region, and show that only uniform cycles can saturate the Uhl-Seifert boundary. Our results show that retaining a coarse-grained kinetic scale can sharpen thermodynamic spectral bounds without requiring knowledge of the full generator. Our method also provides a complex-analytic framework which unifies generator-specific kinetic information with established affinity-winding bounds.

cond-mat.stat-mech

Emergent dimer-model topological order and quasi-particle excitations in liquid crystals: combinatorial vortex lattices

Liquid crystals have proven to provide a versatile experimental and theoretical platform for studying topological objects such as vortices, skyrmions, and hopfions. In parallel, in hard condensed matter physics, the concept of topological phases and topological order has been introduced in the context of spin liquids to investigate emergent phenomena like quantum Hall effects and high-temperature superconductivity. Here, we bridge these two seemingly disparate perspectives on topology in physics. Combining experiments and simulations, we show how topological defects in liquid crystals can be used as versatile building blocks to create complex, highly degenerate topological phases, which we refer to as 'Combinatorial Vortex Lattices' (CVLs). CVLs exhibit extensive residual entropy and support locally stable quasi-particle excitations in the form of charge-conserving topological monopoles, which can act as mobile information carriers and be linked via Dirac strings. CLVs can be rewritten and reconfigured on demand, endowed with various symmetries, and modified through laser-induced topological surgery - an essential capability for information storage and retrieval. We demonstrate experimentally the realization, stability, and precise optical manipulation of CVLs, thus opening new avenues for understanding and technologically exploiting higher-hierarchy topology in liquid crystals and other ordered media.

cond-mat.soft