Electronic circular dichroism is an important optical phenomenon offering insights into chiral molecular materials. On the other hand, metal-organic frameworks (MOFs) are a novel group of crystalline porous thin-film materials that provide tailor-made chemical and physical properties by carefully selecting their building units. Combining these two aspects of contemporary material research and integrating chiral molecules into MOFs promises devices with unprecedented functionality. However, considering the nearly unlimited degrees of freedom concerning the choice of materials and the geometrical details of the possibly structured films, we urgently need to complement advanced experimental methods with equally strong modeling techniques. Most...
Metal-organic frameworks (MOFs) are crystalline porous materials, in which the pores represent most ...
This work reports on the electrochemical behaviour of Fe and Zn based metal-organic framework (MOF) ...
Chiral metamaterials are artificial structures that can achieve much stronger optical activities tha...
Electronic circular dichroism is an important optical phenomenon offering insights into chiral molec...
Metal-organic frameworks (MOFs), with their crystalline nanoporous three-dimensional structures, hav...
International audienceThe recently reported process of chiral induction in a metal–organic framework...
Metal-organic frameworks stand at the frontiers of molecular electronic research because they combin...
Multi-photon absorption (MPA) is among the most prominent nonlinear optical (NLO) effects and has ap...
Chiral nanoporous solids are a fascinating class of materials, allowing efficient enantiomer separat...
The general approach for fabricating solid-state materials showing circularly polarized luminescence...
Special Issue : Molecular simulation of framework materialsInternational audienceThe purpose of this...
In an age where next-generation all-optical circuitry and optical data storage are at the forefront ...
Chiral metal halide perovskites have emerged as promising optoelectronic materials for the emission ...
The isolation of 2D-materials is already a success for graphene, graphene oxide, boron nitride and a...
This dissertation aims to address several challenges in the chemistry of metal-organic frameworks (M...
Metal-organic frameworks (MOFs) are crystalline porous materials, in which the pores represent most ...
This work reports on the electrochemical behaviour of Fe and Zn based metal-organic framework (MOF) ...
Chiral metamaterials are artificial structures that can achieve much stronger optical activities tha...
Electronic circular dichroism is an important optical phenomenon offering insights into chiral molec...
Metal-organic frameworks (MOFs), with their crystalline nanoporous three-dimensional structures, hav...
International audienceThe recently reported process of chiral induction in a metal–organic framework...
Metal-organic frameworks stand at the frontiers of molecular electronic research because they combin...
Multi-photon absorption (MPA) is among the most prominent nonlinear optical (NLO) effects and has ap...
Chiral nanoporous solids are a fascinating class of materials, allowing efficient enantiomer separat...
The general approach for fabricating solid-state materials showing circularly polarized luminescence...
Special Issue : Molecular simulation of framework materialsInternational audienceThe purpose of this...
In an age where next-generation all-optical circuitry and optical data storage are at the forefront ...
Chiral metal halide perovskites have emerged as promising optoelectronic materials for the emission ...
The isolation of 2D-materials is already a success for graphene, graphene oxide, boron nitride and a...
This dissertation aims to address several challenges in the chemistry of metal-organic frameworks (M...
Metal-organic frameworks (MOFs) are crystalline porous materials, in which the pores represent most ...
This work reports on the electrochemical behaviour of Fe and Zn based metal-organic framework (MOF) ...
Chiral metamaterials are artificial structures that can achieve much stronger optical activities tha...