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BEGIN:VEVENT
DTSTAMP:20261006T113807Z
DTSTART;VALUE=DATE-TIME:20261109T130000
DTEND;VALUE=DATE-TIME:20261109T140000
SUMMARY:WCPM\, Halim Kusumaatmaja\, Edinburgh
TZID:Europe/London
UID:20261109-8ac672c4a0c1ee7a01a0c3c69a4d0ce3@warwick.ac.uk
CREATED:20260925T133540Z
DESCRIPTION:Networking Lunch: The Pit Stop\, room next to IMC 004\, WMG: 
 12:30pm - 1pm Title: Title: Complex Droplet Dynamics on Nature-Inspired 
 Liquid Repellent Surfaces Abstract: Wetting of surfaces by liquids is co
 mmonly observed in everyday life and is of paramount importance for many
  natural and engineering processes. In many cases\, it is beneficial to 
 design surfaces that repel liquids: these surfaces can suppress icing an
 d surface fouling\, they reduce drag and friction\, and contaminants can
  be removed easily. Interestingly\, nature provides several conceptually
  distinct inspirations to design liquid repellent surfaces. Many natural
  surfaces such as lotus leaves and duck feathers are rough. The roughnes
 s amplifies the surface hydrophobicity leading to superhydrophobic prope
 rties with very large contact angles. In contrast\, on pitcher plants\, 
 a layer of liquid imbibes the surface corrugations\, providing a smooth 
 liquid surface that substantially reduces friction. In this talk\, I wil
 l discuss recent works by my group and our collaborators to understand c
 omplex droplet dynamics on structured\, nature-inspired liquid repellent
  surfaces. In particular\, I will focus on three phenomena. First\, I wi
 ll elucidate salient mechanisms of how particles can be captured and rem
 oved by liquid droplets\, which is key for designing self-cleaning surfa
 ces. Second\, I will discuss how droplet icing can be suppressed on supe
 rhydrophobic surfaces. Third\, I will discuss the possibility to develop
  patterned liquid surfaces and the distinctive features of droplet dynam
 ics on such surfaces\, including how they give rise to new wetting state
 s and contact line pinning mechanisms. Bio: Professor Halim Kusumaatmaja
  is the Jason Reese Chair of Multiscale Fluid Mechanics at the Universit
 y of Edinburgh and leads the Simulations of Soft Matter\, Biophysics & F
 luid Dynamics research group. His research lies at the interface of phys
 ics\, engineering\, applied mathematics\, chemistry\, and biology\, usin
 g theory and advanced computational simulations to understand complex fl
 uid and soft matter systems. Professor Kusumaatmaja's work spans multisc
 ale fluid mechanics\, soft matter physics\, and biophysics\, with partic
 ular interests in wetting phenomena\, liquid-repellent surfaces\, membra
 ne biophysics\, liquid-liquid phase separation\, microfluidics\, and com
 putational fluid dynamics. His group develops and applies simulation tec
 hniques\, including lattice Boltzmann methods\, to investigate the behav
 iour of complex materials and biological systems. Before joining the Uni
 versity of Edinburgh\, he held academic positions at Durham University a
 nd completed postdoctoral research at the Max Planck Institute of Colloi
 ds and Interfaces and the University of Cambridge. He obtained his PhD i
 n Theoretical Physics from the University of Oxford and is widely recogn
 ised for his contributions to computational fluid mechanics and soft mat
 ter science. Research interests: multiscale fluid mechanics\, soft matte
 r physics\, biophysics\, wetting and wettability\, liquid-repellent surf
 aces\, microfluidics\, biomolecular condensates\, membrane biophysics\, 
 and lattice Boltzmann simulations.
LOCATION:
CATEGORIES:WCPM
LAST-MODIFIED:20260925T133540Z
ORGANIZER;CN=Jin Kang:
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