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Nanoscale Thermodynamics



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Autore: Kjelstrup Signe Visualizza persona
Titolo: Nanoscale Thermodynamics Visualizza cluster
Pubblicazione: Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2021
Descrizione fisica: 1 electronic resource (168 p.)
Soggetto topico: Technology: general issues
Soggetto non controllato: nanothermodynamics
porous systems
molecular simulation
differential pressure
integral pressure
pressure
confinement
equilibrium
thermodynamic
small-system
hills-thermodynamics
pore
nanopore
interface
Kirkwood-Buff integrals
surface effects
molecular dynamics
activated carbon
high-pressure methane adsorption
thermodynamics of adsorption systems
small system method
thermodynamics of small systems
hydration shell thermodynamics
finite size correction
adsorption
thin film
size-dependent
thermodynamics
spreading pressure
entropy of adsorption
polymers
single-molecule stretching
thermodynamics at strong coupling
temperature-dependent energy levels
Hill's thermodynamics of small systems
porous media
statistical mechanics
ideal gas
nanoparticles
Persona (resp. second.): KjelstrupSigne
Sommario/riassunto: This Special Issue concerns the development of a theory for energy conversion on the nanoscale, namely, nanothermodynamics. The theory has been applied to porous media, small surfaces, clusters or fluids under confinement. The number of unsolved issues in these contexts is numerous and the present efforts are only painting part of the broader picture. We attempt to answer the following: How far down in scale does the Gibbs equation apply? Which theory can replace it beyond the thermodynamic limit? It is well known that confinement changes the equation of state of a fluid, but how does confinement change the equilibrium conditions themselves? This Special Issue explores some of the roads that were opened up for us by Hill with the idea of nanothermodynamics. The experimental progress in nanotechnology is advancing rapidly. It is our ambition with this book to inspire an increased effort in the development of suitable theoretical tools and methods to help further progress in nanoscience. All ten contributions to this Special Issue can be seen as efforts to support, enhance and validate the theoretical foundation of Hill.
Titolo autorizzato: Nanoscale Thermodynamics  Visualizza cluster
Formato: Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione: Inglese
Record Nr.: 9910557344803321
Lo trovi qui: Univ. Federico II
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