Title : SnS2-SnS pn hetero-junction bonded on graphene with boosted charge transfer for lithium storage.

Pub. Date : 2021 Dec 16

PMID : 34853845






6 Functional Relationships(s)
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Protein Name
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1 SnS2-SnS pn hetero-junction bonded on graphene with boosted charge transfer for lithium storage. Lithium sodium voltage-gated channel alpha subunit 11 Homo sapiens
2 Despite the advantage of high capacity, practical implementation of the tin disulfide (SnS2) anode for lithium-ion batteries is still plagued by the inferior rate performance due to its low intrinsic electronic conductivity and mediocre ion transport in the bulk. Lithium sodium voltage-gated channel alpha subunit 11 Homo sapiens
3 Because of the typical n-type and p-type semiconductor characteristics of SnS2 and SnS, respectively, the formed pn junction at the SnS2/SnS interface will induce a built-in electric field, which can significantly accelerate lithium-ion transport through the SnS2/SnS interface. Lithium sodium voltage-gated channel alpha subunit 11 Homo sapiens
4 Because of the typical n-type and p-type semiconductor characteristics of SnS2 and SnS, respectively, the formed pn junction at the SnS2/SnS interface will induce a built-in electric field, which can significantly accelerate lithium-ion transport through the SnS2/SnS interface. Lithium sodium voltage-gated channel alpha subunit 11 Homo sapiens
5 Because of the typical n-type and p-type semiconductor characteristics of SnS2 and SnS, respectively, the formed pn junction at the SnS2/SnS interface will induce a built-in electric field, which can significantly accelerate lithium-ion transport through the SnS2/SnS interface. Lithium sodium voltage-gated channel alpha subunit 11 Homo sapiens
6 The ultrafine SnS2 and SnS nano-domains with superlong pn junction interfacial length construct an accelerated lithium-ion diffusion network, while the conductive rGO nanosheets provide a high-speed electron conduction pathway. Lithium sodium voltage-gated channel alpha subunit 11 Homo sapiens