PHYSAPS

The Physics of Active Particle Suspensions

 Coordinatore THE UNIVERSITY OF EDINBURGH 

Spiacenti, non ci sono informazioni su questo coordinatore. Contattare Fabio per maggiori infomrazioni, grazie.

 Nazionalità Coordinatore United Kingdom [UK]
 Totale costo 2˙491˙601 €
 EC contributo 2˙491˙601 €
 Programma FP7-IDEAS-ERC
Specific programme: "Ideas" implementing the Seventh Framework Programme of the European Community for research, technological development and demonstration activities (2007 to 2013)
 Code Call ERC-2013-ADG
 Funding Scheme ERC-AG
 Anno di inizio 2014
 Periodo (anno-mese-giorno) 2014-02-01   -   2019-01-31

 Partecipanti

# participant  country  role  EC contrib. [€] 
1    THE UNIVERSITY OF EDINBURGH

 Organization address address: OLD COLLEGE, SOUTH BRIDGE
city: EDINBURGH
postcode: EH8 9YL

contact info
Titolo: Ms.
Nome: Angela
Cognome: Noble
Email: send email
Telefono: 441317000000
Fax: 441317000000

UK (EDINBURGH) hostInstitution 2˙491˙601.00
2    THE UNIVERSITY OF EDINBURGH

 Organization address address: OLD COLLEGE, SOUTH BRIDGE
city: EDINBURGH
postcode: EH8 9YL

contact info
Titolo: Prof.
Nome: Wilson Che Kei
Cognome: Poon
Email: send email
Telefono: 441317000000
Fax: 441317000000

UK (EDINBURGH) hostInstitution 2˙491˙601.00

Mappa


 Word cloud

Esplora la "nuvola delle parole (Word Cloud) per avere un'idea di massima del progetto.

droplets    absence    external    phenomena    equilibrium    macroscopic    suspensions    passive    active    liquid    particles    microscopic    experiments    protein    suspension    dynamics    model   

 Obiettivo del progetto (Objective)

'‘Active matter’ is matter that is intrinsically out of equilibrium. In particular, an ‘active suspension’ is made up of self-propelled particles or droplets dispersed in a liquid. Active matter is not in thermal equilibrium even in the absence of external driving, and display fascinating properties. Thus, e.g., a so- lution of the filament-forming protein actin and the ‘molecular motor’ protein myosin can ‘burn’ ATP as fuel to produce a gel that flows in the absence of any external pressure gradient; while a suspension of swimming bacteria can have a viscosity that is lower than that of the suspending liquid. There is yet no gener- ally accepted statistical mechanics of active matter, where the absence of detailed balance means that small differences in microscopic dynamics can in principle lead to very different macroscopic behaviour. Moreover, there is no a priori reason to believe that a reduced description in terms of just a few macroscopic parameters (such as effective temperature and density) is possible. I propose a systematic pro- gramme of experiments to discover when and how microscopic dynamics affect the macroscopic behaviour of active suspensions, whether any of their behaviour has analogues in suspensions of passive particles and droplets, and how activity can be described using coarse-grained variables. To ensure that the experiments can be tightly coupled to theory and simulations, I will use well-characterised, model systems of active particles. Developing model systems is therefore a subsidiary, but crucial, goal of my programme. Some of these systems will be designed to be as similar as possible in their passive properties, but quite distinct in terms of their microscopic dynamics – a ‘luxury’ that is typically only available to theo- rists and simulators. Experimenting with such model systems should reveal what phenomena are generic to activity, and what phenomena are specific to particular kinds of microscopic dynamics.'

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