Compared to conventional computational screening studies that are limited by the size of database, inverse design has a great potential to facilitate identifying new materials with optimal properties. In this work, we integrate machine learning with genetic algorithm to computationally design metal–organic frameworks (MOFs) for hydrogen storage applications at cryogenic conditions. As such, we identified 6277 MOFs that exceed the current record (37.2 g/L of NPF-200) at operating conditions between 5 and 100 bar at 77 K. MOFs, whose working capacities exceed 40.0 g/L (system-based 2025 DOE target) were also identified, where the highest working capacity obtained from this work was 41.6 g/L, which is higher than any other hypothetical MOFs re...
Metal-organic frameworks (MOFs) are actively being explored as potential adsorbed natural gas storag...
The ability to rapidly screen material performance in the vast space of high entropy alloys is of cr...
The Materials Genome is in action: the molecular codes for millions of materials have been sequenced...
In recent years, machine learning (ML) has grown exponentially within the field of structure propert...
Summary: The H2 capacities of a diverse set of 918,734 metal-organic frameworks (MOFs) sourced from ...
Because of their high surface areas, crystallinity, and tunable properties, metal–organic frameworks...
By combining metal nodes and organic linkers, an infinite number of metal organic frameworks (MOFs) ...
Metal–organic frameworks (MOFs) are actively being explored as potential adsorbed natural gas storag...
Metal–organic frameworks (MOFs) are porous materials constructed from modular molecular building blo...
Metal–organic frameworks (MOFs) are one category of emerging porous materials, which are promising c...
[EN] Computational screening throughout a database containing similar to 138000 metal-organic framew...
Metal–organic frameworks (MOFs) present a combinatorial design challenge. The structural building bl...
Development of new materials via experiments alone is costly and can take years, if not decades, to ...
A genetic algorithm that efficiently optimizes a desired physical or functional property in metal-or...
The Materials Genome is in action: the molecular codes for millions of materials have been sequenced...
Metal-organic frameworks (MOFs) are actively being explored as potential adsorbed natural gas storag...
The ability to rapidly screen material performance in the vast space of high entropy alloys is of cr...
The Materials Genome is in action: the molecular codes for millions of materials have been sequenced...
In recent years, machine learning (ML) has grown exponentially within the field of structure propert...
Summary: The H2 capacities of a diverse set of 918,734 metal-organic frameworks (MOFs) sourced from ...
Because of their high surface areas, crystallinity, and tunable properties, metal–organic frameworks...
By combining metal nodes and organic linkers, an infinite number of metal organic frameworks (MOFs) ...
Metal–organic frameworks (MOFs) are actively being explored as potential adsorbed natural gas storag...
Metal–organic frameworks (MOFs) are porous materials constructed from modular molecular building blo...
Metal–organic frameworks (MOFs) are one category of emerging porous materials, which are promising c...
[EN] Computational screening throughout a database containing similar to 138000 metal-organic framew...
Metal–organic frameworks (MOFs) present a combinatorial design challenge. The structural building bl...
Development of new materials via experiments alone is costly and can take years, if not decades, to ...
A genetic algorithm that efficiently optimizes a desired physical or functional property in metal-or...
The Materials Genome is in action: the molecular codes for millions of materials have been sequenced...
Metal-organic frameworks (MOFs) are actively being explored as potential adsorbed natural gas storag...
The ability to rapidly screen material performance in the vast space of high entropy alloys is of cr...
The Materials Genome is in action: the molecular codes for millions of materials have been sequenced...