Reversible formation of coordination bonds in Sn-based metal-organic frameworks for high-performance lithium storage
Обратимое образование координационных связей в металлоорганических каркасах на основе Sn для высокоэффективного накопления лития
2021-05-25
SCID: 54.1/4h8x8yaa
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Sn-based metal-organic frameworksX-ray absorption fine structurecoordination bondsisoreticular ligand expansionlithium storage
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Abstract (AI)
Abstract Sn-based compounds with buffer matrixes possessing high theoretical capacity, low working voltage, and alleviation of the volume expansion of Sn are ideal materials for lithium storage. However, it is challenging to confine well-dispersed Sn within a lithium active matrix because low-melting-point Sn tends to agglomerate. Here, we apply a metal-organic framework (MOF) chemistry between Sn-nodes and lithium active ligands to create two Sn-based MOFs comprising Sn 2 (dobdc) and Sn 2 (dobpdc) with extended ligands from H 4 dobdc (2,5-dioxido-1,4-benzenedicarboxylate acid) to H 4 dobpdc (4,4’-dioxidobiphenyl-3,3’-dicarboxylate acid) with molecule-level homodispersion of Sn in organic matrixes for lithium storage. The enhanced utilization of active sites and reaction kinetics are achieved by the isoreticular expansion of the organic linkers. The reversible formation of coordination bonds during lithium storage processes is revealed by X-ray absorption fine structure characterization, providing an in-depth understanding of the lithium storage mechanism in coordination compounds.
Key Findings
1
Isoreticular expansion of the organic linkers enhances active-site utilization and lithium-storage reaction kinetics.
2
The MOF structures achieve molecule-level homodispersion of Sn within organic matrices, addressing the agglomeration of low-melting-point Sn.
3
Two Sn-based metal-organic frameworks, Sn₂(dobdc) and Sn₂(dobpdc), were synthesized by coordinating Sn nodes with lithium-active organic ligands.
4
X-ray absorption fine-structure characterization reveals reversible formation of coordination bonds during lithium storage, clarifying the storage mechanism in coordination compounds.
Research Object
Sn-based metal-organic frameworks (Sn2(dobdc) and Sn2(dobpdc)) used for lithium storage
Research Subject
Lithium-storage performance and mechanism, including active-site utilization, reaction kinetics, and reversible coordination-bond formation in the Sn-based MOFs
Publication Details
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2021-05-25
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