Xiaomei Li
Max Planck Society
21 Papers
2 Citations
Xiaomei Li is an academic researcher from Max Planck Society. The author has contributed to research in topics: Drop (telecommunication) & Contact angle. The author has an hindex of 3, co-authored 5 publications. Previous affiliations of Xiaomei Li include University of Electronic Science and Technology of China.
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Papers
Contact angle hysteresis
Hans-Jürgen Butt,Jie Li,Kaloian Koynov,Benedikt B. Straub,Chirag Hinduja,Ilia Roismann,Rüdiger Berger,Xiaomei Li,Doris Vollmer,Werner Steffen,Michael Kappl +10 more
TL;DR: In this article , the authors review the current understanding of contact angle hysteresis with a focus on water as the liquid and describe appropriate methods to measure the contact angle, discuss the causes of contact angles, and describe the preparation of surfaces with low contact angles.
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One-Step Synthesis of a Durable and Liquid-Repellent Poly(dimethylsiloxane) Coating
TL;DR: A one-step grafting-from approach is reported for poly(dimethylsiloxane) (PDMS) brushes on surfaces through spontaneous polymerization of dichlorodimethylsilane fulfilling all requirements to solve the long-term degradation issues of coatings for heat-transfer surfaces.
Spontaneous charging affects the motion of sliding drops
Xiaomei Li,Pravash Bista,Amy Z. Stetten,Henning Bonart,Maximilian T. Schür,Steffen Hardt,Francisco Bodziony,Holger Marschall,Alexander Saal,Xu Deng,Rüdiger Berger,Stefan A. L. Weber,Hans-Jürgen Butt +12 more
TL;DR: In this paper , the authors found that drop motion on low-permittivity substrates is substantially influenced by electrostatic forces and that electrostatics must be taken into consideration for the description of the motion of water, aqueous electrolytes and ethylene glycol on hydrophobic surfaces.
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Salvinia-like slippery surface with stable and mobile water/air contact line.
Xiaomei Li,Jinlong Yang,Kaixuan Lv,Periklis Papadopoulos,Jing Sun,Dehui Wang,Yanhua Zhao,Longquan Chen,Dapeng Wang,Zuankai Wang,Xu Deng +10 more
TL;DR: This work designs a Salvinia-like slippery surface (SSS) consisting of protrusions with slippery heads and demonstrates that compared to a control surface, the SSS exhibits increased stability against pressure and impact, and enhanced lateral mobility of water drops as well as reduced hydrodynamic drag.
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Designing Transparent Micro/Nano Re-Entrant-Coordinated Superamphiphobic Surfaces with Ultralow Solid/Liquid Adhesion.
TL;DR: A rationally designed model of the superamphiphobic surface possessing re-entrant curvature on both nano and micro scales uniformly, each maintaining their capabilities may provide useful guidelines for fabrication and enable potential applications ranging from self-cleaning materials to optical devices, such as solar panels, wind screens, and goggles.
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