Seminars

PMMH’s weekly seminar is held every Friday at 11 am (map)

Contact :
Stéphane Perrard
Etienne Reyssat
Virgile Thiévenaz
responsables-seminaires (arobase) pmmh.espci.fr

PMMH
BARRE CASSAN
BAT A 1ER ETAGE CASE 18
7 QUAI SAINT BERNARD
75005 PARIS
France

Tel : (33) 1 40 79 45 22


Séminaire PMMH - Alba Marcellan (SIMM, ESPCI)

Vendredi 25 mai 2018 de 11h00 à 12h00 - Salle réunion PMMH 1

Some strategies for hydrogel toughening, from polymer adsorption onto NPs to responsive toughening by phase-separation

Based on gel's remarkable features of absorption, storage or release of water (or solvent), gels have become essential in engineering applications like superabsorbent, soilless agriculture or tissue engineering and regeneration. Gels could also be key players for the design of flexible actuators, valves or sensors. However, their generally weak mechanical performances combined with the inherent difficulties of manufacturing and assembling them still limit applications. By using concepts of polymer physics, here we present some strategies we have explored to design tough “hybrid” networks that combine covalent (permanent) cross-links and physical (reversible) interactions. Polymer adsorption onto silica nanoparticles [1-4] can be a remarkably simple and efficient means for the mechanical toughening (in bulk or adhesion) of gels. More recently, a novel mode of fracture toughening by crack bifurcation has been highlighted in phase-separated hydrogels, by exploring the coil-to-globule transition [5]. Usually, the phase transition of covalently cross-linked gels entails a drastic volume-change that makes it difficult to reveal the role of phase transition on the mechanical toughening independently of the polymer concentration effect. To clear up this ambiguity, we designed original gel topologies that phase-separate at constant macroscopic volume and quite high level of hydration, independently of the phase-separation process. Polymer network combines a conventional network with thermo-responsive domains which act as reinforcing fibers operating at a targeted temperature : purely organic responsive nanocomposite gels. Beyond the achieved high values of fracture energy ( kJ m-2) for relatively high hydration level, the fracture patterns have highlighted an unreported toughening mechanism for gels demonstrating a systematic crack bifurcation.

References
1. Carlsson, Rose, Hourdet, Marcellan, Soft Matter (2010)
2. Rose, Dizeux, Narita, Hourdet, Marcellan, Macromolecules (2013)
3. Gennisson, Marcellan, Dizeux, Tanter, IEEE Trans. Ultrasonics Ferroelec. & Freq. Control (2014)
4. Rose, Prevoteau, Elziere, Hourdet, Marcellan, Leibler, Nature (2014)
5. Guo, Sanson, Hourdet, Marcellan, Advanced Materials (2016)

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Seminars  (4)

  • Séminaire PMMH - Francesca Borghi Università degli Studi di Milano
    Vendredi 20 juin de 11h00 à 12h00 - Salle réunion PMMH 1
    REPROGRAMMABLE HARDWARE FOR DATA PROCESSING AT THE EDGE : A NEW COMPUTING PARADIGM BASED ON NEUROMORPHIC SYSTEMS
    The brain's ability to perform efficient and fault-tolerant data processing is strongly related with its peculiar interconnected adaptive architecture, based on redundant neural circuits interacting at different scales. By emulating the brain's processing and learning mechanisms, computing technologies strive to (…)
  • Séminaire PMMH - Francesca Borghi Università degli Studi di Milano
    Vendredi 20 juin de 11h00 à 12h00 - Salle réunion PMMH 1
    REPROGRAMMABLE HARDWARE FOR DATA PROCESSING AT THE EDGE : A NEW COMPUTING PARADIGM BASED ON NEUROMORPHIC SYSTEMS
    The brain's ability to perform efficient and fault-tolerant data processing is strongly related with its peculiar interconnected adaptive architecture, based on redundant neural circuits interacting at different scales. By emulating the brain's processing and learning mechanisms, computing technologies strive to (…)
  • Séminaire PMMH - Salvatore Federico (University of Calgary, Canada)
    Vendredi 4 juillet de 11h00 à 12h00 - Salle réunion PMMH 1
    Continuum Mechanics of Hydrated Fibre-Reinforced Soft Tissues
    Biological tissues can be represented as bi-phasic continua, with a porous solid phase saturated by an interstitial fluid and reinforced by collagen fibers. This lecture will give an overview of the modelling techniques for fibre-reinforced porous composite materials with statistical orientation of the fibers. Both (…)
  • Séminaire PMMH - Salvatore Federico (University of Calgary, Canada)
    Vendredi 4 juillet de 11h00 à 12h00 - Salle réunion PMMH 1
    Continuum Mechanics of Hydrated Fibre-Reinforced Soft Tissues
    Biological tissues can be represented as bi-phasic continua, with a porous solid phase saturated by an interstitial fluid and reinforced by collagen fibers. This lecture will give an overview of the modelling techniques for fibre-reinforced porous composite materials with statistical orientation of the fibers. Both (…)

Information for the speakers

The audience is composed of people with rather heterogeneous backgrounds including specialists in solids, fluids, granular flows, statistical physics... so the idea is to keep your talk understandable by people not necessarily working in your field... The seminar time slot runs from 11am to noon so the best is to make the talk last around 45 minutes to leave some time for discussion.

Link to cofee seminar (internal, every Thursday)


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Practical information

Laboratoire : 01 40 79 45 22
Directeur : Ramiro GODOY DIANA
Codirecteur : Laurent DUCHEMIN
Administratrice : Frédérique AUGER (01 40 79 45 22)
Gestionnaire : Claudette BAREZ (01 40 79 58 53)
Courriel : dir (arobase) pmmh.espci.fr