Electrical conductivity and magnetic bistability in metal–organic frameworks and coordination polymers: charge transport and spin crossover at the nanoscale
Электропроводность и магнитная бистабильность в металлоорганических каркасах и координационных полимерах: перенос заряда и спиновый кроссовер на наноуровне
2020-01-01
SCID: 54.1/xvgtst9e
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coordination polymerselectrical conductivitymagnetic bistabilitymetal–organic frameworksspin crossover
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Abstract (AI)
Materials scientists are currently shifting from purely inorganic, organic and silicon-based materials towards hybrid organic-inorganic materials to develop increasingly complex and powerful electronic devices. In this context, it is undeniable that conductive metal-organic frameworks (MOFs) and bistable coordination polymers (CPs) are carving a niche for themselves in the electronics world. The tunability and processability of these materials alongside the combination of electrical conductivity with porosity or spin transition offers unprecedented technological opportunities for their integration into functional devices. This review aims to summarise the chemical strategies that have guided the design of this type of materials and the identified opportunities for further development. We also examine the strategies to process them as thin films and stress the importance of analysing the effects of nanostructuration on their physical properties that might be crucial for device performance. Finally, we showcase relevant examples of functional devices that have received increasing attention from researchers and highlight the opportunities available for more sophisticated applications that could take full advantage of the combination of electrical conductivity and magnetic bistability.
Key Findings
1
Chemical design strategies provide tunable conductivity and magnetic bistability in hybrid organic–inorganic frameworks and coordination polymers.
2
Conductive metal–organic frameworks and bistable coordination polymers combine electrical conductivity with porosity or spin transitions, enabling multifunctional electronic materials.
3
Functional devices based on conductive MOFs and magnetic bistable coordination polymers have been demonstrated, with opportunities for more sophisticated applications.
4
Processing these materials into thin films is important for device integration, while nanostructuration can critically alter their physical properties and performance.
5
The review identifies material design, thin-film processing, and nanoscale-property analysis as priorities for advancing these systems toward practical electronics.
Research Object
Conductive metal–organic frameworks (MOFs) and bistable coordination polymers (CPs), including their thin-film and nanostructured forms
Research Subject
Chemical design, nanoscale charge transport, electrical conductivity, spin crossover, magnetic bistability, and device-relevant physical properties
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2020-01-01
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