Nanopapers formed by stiff and strong native cellulose nanofibrils are emerging as mechanically robust and sustainable materials to replace high-performance plastics or as flexible, transparent and “green” substrates for organic electronics. The mechanical properties endowed by nanofibrils crucially depend on mastering structure formation processes and on understanding interfibrillar interactions as well as deformation mechanisms in bulk. Herein, we show how different dispersion states of cellulose nanofibrils, that is, unlike tendencies to interfibrillar aggregation, and different relative humidities influence the mechanical properties of nanopapers. The materials undergo a humidity-induced transition from a predominantly linear elastic be...
Paper is a material that has been used for thousands of years. It is made from natural and renewable...
The cellulose nanofibril aggregate is a fundamental hierarchical structure in many man-made cellulos...
Hygroscopic nature of cellulose is one of the most difficult limiting factors to overcome in utiliza...
Cellulose nanofibrils (CNFs) are considered next generation, renewable reinforcements for sustainabl...
The creep behavior of nanocellulose films and aerogels are studied in a dynamic moisture environment...
Nanoparticles are very interesting components. Due to their very large specific surface area they po...
Cellulose nanopaper is a strong lightweight material made from renewable resources with a wide range...
The demand for renewable load-carrying materials is increasing with increasing environmental awarene...
Nanoscaled cellulosic materials have an inherent tendency to form films upon drying. These films hav...
Many nanoscale biopolymer building blocks with defect-free molecular structure and exceptional mecha...
Abstract: Cellulose nanopapers provide diverse, strong and lightweight templates prepared entirely f...
Atomistic modelling of cellulose has widely been investigated for years using molecular dynamics sim...
Cellulose is the most abundant polymeric source on earth, and it has been used for centuries in diff...
Cellulose nanofibrils (CNFs) are considered next generation, renewable reinforcements for sustainabl...
Cellulose is a pervasive polymer, displaying hierarchical lengthscales and exceptional strength and ...
Paper is a material that has been used for thousands of years. It is made from natural and renewable...
The cellulose nanofibril aggregate is a fundamental hierarchical structure in many man-made cellulos...
Hygroscopic nature of cellulose is one of the most difficult limiting factors to overcome in utiliza...
Cellulose nanofibrils (CNFs) are considered next generation, renewable reinforcements for sustainabl...
The creep behavior of nanocellulose films and aerogels are studied in a dynamic moisture environment...
Nanoparticles are very interesting components. Due to their very large specific surface area they po...
Cellulose nanopaper is a strong lightweight material made from renewable resources with a wide range...
The demand for renewable load-carrying materials is increasing with increasing environmental awarene...
Nanoscaled cellulosic materials have an inherent tendency to form films upon drying. These films hav...
Many nanoscale biopolymer building blocks with defect-free molecular structure and exceptional mecha...
Abstract: Cellulose nanopapers provide diverse, strong and lightweight templates prepared entirely f...
Atomistic modelling of cellulose has widely been investigated for years using molecular dynamics sim...
Cellulose is the most abundant polymeric source on earth, and it has been used for centuries in diff...
Cellulose nanofibrils (CNFs) are considered next generation, renewable reinforcements for sustainabl...
Cellulose is a pervasive polymer, displaying hierarchical lengthscales and exceptional strength and ...
Paper is a material that has been used for thousands of years. It is made from natural and renewable...
The cellulose nanofibril aggregate is a fundamental hierarchical structure in many man-made cellulos...
Hygroscopic nature of cellulose is one of the most difficult limiting factors to overcome in utiliza...