非线性系统
曲面(拓扑)
分形
互惠(文化人类学)
化学
拓扑(电路)
集体行为
联轴节(管道)
粘度
纳米技术
生物系统
纳米颗粒
激发
跟踪(教育)
纳米结构
纹理(宇宙学)
化学物理
铜
自组织
适应性行为
时间演化
调制(音乐)
流变学
复杂系统
分形维数
智能材料
作者
Jinjian Guo,Pan Chen,Yu Zhao,Kang Zhao,Jianlin Wang,Xuedong Bai,Wenlong Wang
摘要
Abstract In out-of-equilibrium systems, the absence of reciprocity can induce unconventional states, phase transitions, and rich emergent behaviors with broad scientific and technological relevance. Here, we demonstrate a far-from-equilibrium surface-growth system that surpasses conventional fractal complexity and leads to unprecedented pattern complexity with diverse collective topological nonlinear excitations. By harnessing the self-driven SiO2 nanoparticles (NPs) on high-temperature liquid copper featuring extreme surface tension, we show that the complex coupling of giant Marangoni-driven hydrodynamics and reaction-diffusion processes allows the formation of singular SiO2 adaptive collective topological surface structures (ACTS), along with their highly adaptive emergent variants and even deterministic chaos. We identify two multiscale topology-synergistic excitation modes enabled by “macro-order and micro-bifurcation” causal mapping and show that continuous modulation of NP density and layer viscosity autonomously switches between regimes, generating gradient-dependent assembled ACTS with unprecedented complexity and adaptivity. Our results provide new insights for understanding and controlling of complex nonlinear dynamics for a non-trivial texture in surface growth, paving the way for the design of next-generation active-matter-inspired adaptive interfacial materials with topological protection.
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