Rendering SiO2/Si Surfaces Omniphobic by Carving Gas-Entrapping Microtextures Comprising Reentrant and Doubly Reentrant Cavities or Pillars
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Scientific Article | Este trabalho apresenta protocolos de microfabricação para alcançar cavidades e pilares com perfis reentrantes e duplamente reentrantes

Rendering SiO2/Si Surfaces Omniphobic by Carving Gas-Entrapping Microtextures Comprising Reentrant and Doubly Reentrant Cavities or Pillars

Mitigating cavitation erosion using biomimetic gas-entrapping microtextured surfaces (GEMS)

Gradient wettability induced by deterministically patterned nanostructures

Rendering SiO2/Si Surfaces Omniphobic by Carving Gas-Entrapping Microtextures Comprising Reentrant and Doubly Reentrant Cavities or Pillars

Rendering SiO2/Si Surfaces Omniphobic by Carving Gas-Entrapping Microtextures Comprising Reentrant and Doubly Reentrant Cavities or Pillars

Multifaceted design optimization for superomniphobic surfaces. - Abstract - Europe PMC

Rendering SiO2/Si Surfaces Omniphobic by Carving Gas-Entrapping Microtextures Comprising Reentrant and Doubly Reentrant Cavities or Pillars

One-Step Fabrication of Flexible Bioinspired Superomniphobic Surfaces

Gradient wettability induced by deterministically patterned nanostructures

Realizing surface amphiphobicity using 3D printing techniques: A critical move towards manufacturing low-cost reentrant geometries - ScienceDirect

Rendering SiO2/Si Surfaces Omniphobic by Carving Gas-Entrapping Microtextures Comprising Reentrant and Doubly Reentrant Cavities or Pillars
One-Step Fabrication of Flexible Bioinspired Superomniphobic Surfaces

Sankara Narayana Moorthi ARUNACHALAM, Post-doc, Doctor of Philosophy, King Abdullah University of Science and Technology, Jeddah, KAUST, Department of Mechanical Engineering
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