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Soft matter roadmap

Authors :
Barrat, Jean-Louis
Del Gado, Emanuela
Egelhaaf, Stefan U.
Mao, Xiaoming
Dijkstra, Marjolein
Pine, David J.
Kumar, Sanat K.
Bishop, Kyle
Gang, Oleg
Obermeyer, Allie
Papadakis, Christine M.
Tsitsilianis, Constantinos
Smalyukh, Ivan I.
Hourlier-Fargette, Aurelie
Andrieux, Sebastien
Drenckhan, Wiebke
Wagner, Norman
Murphy, Ryan P.
Weeks, Eric R.
Cerbino, Roberto
Han, Yilong
Cipelletti, Luca
Ramos, Laurence
Poon, Wilson C. K.
Richards, James A.
Cohen, Itai
Furst, Eric M.
Nelson, Alshakim
Craig, Stephen L.
Ganapathy, Rajesh
Sood, Ajay Kumar
Sciortino, Francesco
Mungan, Muhittin
Sastry, Srikanth
Scheibner, Colin
Fruchart, Michel
Vitelli, Vincenzo
Ridout, S. A.
Stern, M.
Tah, I
Zhang, G.
Liu, Andrea J.
Osuji, Chinedum O.
Xu, Yuan
Shewan, Heather M.
Stokes, Jason R.
Merkel, Matthias
Ronceray, Pierre
Rupprecht, Jean-Francois
Matsarskaia, Olga
Schreiber, Frank
Roosen-Runge, Felix
Aubin-Tam, Marie-Eve
Koenderink, Gijsje H.
Espinosa-Marzal, Rosa M.
Yus, Joaquin
Kwon, Jiheon
Barrat, Jean-Louis
Del Gado, Emanuela
Egelhaaf, Stefan U.
Mao, Xiaoming
Dijkstra, Marjolein
Pine, David J.
Kumar, Sanat K.
Bishop, Kyle
Gang, Oleg
Obermeyer, Allie
Papadakis, Christine M.
Tsitsilianis, Constantinos
Smalyukh, Ivan I.
Hourlier-Fargette, Aurelie
Andrieux, Sebastien
Drenckhan, Wiebke
Wagner, Norman
Murphy, Ryan P.
Weeks, Eric R.
Cerbino, Roberto
Han, Yilong
Cipelletti, Luca
Ramos, Laurence
Poon, Wilson C. K.
Richards, James A.
Cohen, Itai
Furst, Eric M.
Nelson, Alshakim
Craig, Stephen L.
Ganapathy, Rajesh
Sood, Ajay Kumar
Sciortino, Francesco
Mungan, Muhittin
Sastry, Srikanth
Scheibner, Colin
Fruchart, Michel
Vitelli, Vincenzo
Ridout, S. A.
Stern, M.
Tah, I
Zhang, G.
Liu, Andrea J.
Osuji, Chinedum O.
Xu, Yuan
Shewan, Heather M.
Stokes, Jason R.
Merkel, Matthias
Ronceray, Pierre
Rupprecht, Jean-Francois
Matsarskaia, Olga
Schreiber, Frank
Roosen-Runge, Felix
Aubin-Tam, Marie-Eve
Koenderink, Gijsje H.
Espinosa-Marzal, Rosa M.
Yus, Joaquin
Kwon, Jiheon
Publication Year :
2024

Abstract

Soft materials are usually defined as materials made of mesoscopic entities, often self-organised, sensitive to thermal fluctuations and to weak perturbations. Archetypal examples are colloids, polymers, amphiphiles, liquid crystals, foams. The importance of soft materials in everyday commodity products, as well as in technological applications, is enormous, and controlling or improving their properties is the focus of many efforts. From a fundamental perspective, the possibility of manipulating soft material properties, by tuning interactions between constituents and by applying external perturbations, gives rise to an almost unlimited variety in physical properties. Together with the relative ease to observe and characterise them, this renders soft matter systems powerful model systems to investigate statistical physics phenomena, many of them relevant as well to hard condensed matter systems. Understanding the emerging properties from mesoscale constituents still poses enormous challenges, which have stimulated a wealth of new experimental approaches, including the synthesis of new systems with, e.g. tailored self-assembling properties, or novel experimental techniques in imaging, scattering or rheology. Theoretical and numerical methods, and coarse-grained models, have become central to predict physical properties of soft materials, while computational approaches that also use machine learning tools are playing a progressively major role in many investigations. This Roadmap intends to give a broad overview of recent and possible future activities in the field of soft materials, with experts covering various developments and challenges in material synthesis and characterisation, instrumental, simulation and theoretical methods as well as general concepts.

Details

Database :
OAIster
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1428112511
Document Type :
Electronic Resource
Full Text :
https://doi.org/10.1088.2515-7639.ad06cc