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cristiano.demichele@uniroma1.it
Cristiano De Michele
Professore Associato
Struttura:
DIPARTIMENTO DI FISICA
E-mail:
cristiano.demichele@uniroma1.it
Pagina istituzionale corsi di laurea
Curriculum Sapienza
Publications
Title
Published on
Year
Free energy of conformational isomers: The case of gapped DNA duplexes
THE EUROPEAN PHYSICAL JOURNAL. E, SOFT MATTER
2019
Exploiting limited valence patchy particles to understand autocatalytic kinetics
NATURE COMMUNICATIONS
2018
Elastic Constants of Chromonic Liquid Crystals
MACROMOLECULES
2018
Speeding up Monte Carlo simulation of patchy hard cylinders
THE EUROPEAN PHYSICAL JOURNAL. E, SOFT MATTER
2018
Nematic liquid crystals of bifunctional patchy spheres
THE EUROPEAN PHYSICAL JOURNAL. E, SOFT MATTER
2018
Amyloid Fibrils Length Controls Shape and Structure of Nematic and Cholesteric Tactoids
ACS NANO
2018
Hierarchical Propagation of Chirality through Reversible Polymerization: The Cholesteric Phase of DNA Oligomers
ACS MACRO LETTERS
2016
Simulation and Theory of Antibody Binding to Crowded Antigen-Covered Surfaces
PLOS COMPUTATIONAL BIOLOGY
2016
Anomalous dynamics of intruders in a crowded environment of mobile obstacles
NATURE COMMUNICATIONS
2016
Smectic phase in suspensions of gapped DNA duplexes
NATURE COMMUNICATIONS
2016
Unusual Dynamics of Concentration Fluctuations in Solutions of Weakly Attractive Globular Proteins
THE JOURNAL OF PHYSICAL CHEMISTRY LETTERS
2015
Nematic phase characterisation of the self-assembling sphere-cylinders based on the theoretically calculated RDFs
THE EUROPEAN PHYSICAL JOURNAL. E, SOFT MATTER
2015
Modelling the rheology of anisotropic particles adsorbed on a two-dimensional fluid interface
SOFT MATTER
2015
Non-universal Voronoi cell shapes in amorphous ellipsoid packs
EUROPHYSICS LETTERS
2015
Self-assembly of mesogenic bent-core DNA nanoduplexes
SOFT MATTER
2015
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ERC
PE3_13
KET
Advanced materials
Big data & computing
Interessi di ricerca
Progetti di Ricerca
Nanofabrication of Novel Liquid Crystals via DNA Self-Assembly
Chiral Self-Assembly-Driven Liquid Crystals: Thermodynamic and Elastic Properties
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