File Download

There are no files associated with this item.

  Links for fulltext
     (May Require Subscription)
Supplementary

Article: Structurally Deformed MoS2 for Electrochemically Stable, Thermally Resistant, and Highly Efficient Hydrogen Evolution Reaction

TitleStructurally Deformed MoS<inf>2</inf> for Electrochemically Stable, Thermally Resistant, and Highly Efficient Hydrogen Evolution Reaction
Authors
Keywordsmolybdenum disulfide
hydrogen evolution reactions
bioinspired dimensional transitions
Issue Date2017
Citation
Advanced Materials, 2017, v. 29, n. 44, article no. 1703863 How to Cite?
AbstractThe emerging molybdenum disulfide (MoS ) offers intriguing possibilities for realizing a transformative new catalyst for driving the hydrogen evolution reaction (HER). However, the trade-off between catalytic activity and long-term stability represents a formidable challenge and has not been extensively addressed. This study reports that metastable and temperature-sensitive chemically exfoliated MoS (ce-MoS ) can be made into electrochemically stable (5000 cycles), and thermally robust (300 °C) while maintaining synthetic scalability and excellent catalytic activity through physical-transformation into 3D structurally deformed nanostructures. The dimensional transition enabled by a high throughput electrohydrodynamic process provides highly accessible, and electrochemically active surface area and facilitates efficient transport across various interfaces. Meanwhile, the hierarchically strained morphology is found to improve electronic coupling between active sites and current collecting substrates without the need for selective engineering the electronically heterogeneous interfaces. Specifically, the synergistic combination of high strain load stemmed from capillarity-induced-self-crumpling and sulfur (S) vacancies intrinsic to chemical exfoliation enables simultaneous modulation of active site density and intrinsic HER activity regardless of continuous operation or elevated temperature. These results provide new insights into how catalytic activity, electrochemical-, and thermal stability can be concurrently enhanced through the physical transformation that is reminiscent of nature, in which properties of biological materials emerge from evolved dimensional transitions. 2 2 2
Persistent Identifierhttp://hdl.handle.net/10722/298234
ISSN
2023 Impact Factor: 27.4
2023 SCImago Journal Rankings: 9.191
ISI Accession Number ID

 

DC FieldValueLanguage
dc.contributor.authorChen, Yen Chang-
dc.contributor.authorLu, Ang Yu-
dc.contributor.authorLu, Ping-
dc.contributor.authorYang, Xiulin-
dc.contributor.authorJiang, Chang Ming-
dc.contributor.authorMariano, Marina-
dc.contributor.authorKaehr, Bryan-
dc.contributor.authorLin, Oliver-
dc.contributor.authorTaylor, André-
dc.contributor.authorSharp, Ian D.-
dc.contributor.authorLi, Lain Jong-
dc.contributor.authorChou, Stanley S.-
dc.contributor.authorTung, Vincent-
dc.date.accessioned2021-04-08T03:07:58Z-
dc.date.available2021-04-08T03:07:58Z-
dc.date.issued2017-
dc.identifier.citationAdvanced Materials, 2017, v. 29, n. 44, article no. 1703863-
dc.identifier.issn0935-9648-
dc.identifier.urihttp://hdl.handle.net/10722/298234-
dc.description.abstractThe emerging molybdenum disulfide (MoS ) offers intriguing possibilities for realizing a transformative new catalyst for driving the hydrogen evolution reaction (HER). However, the trade-off between catalytic activity and long-term stability represents a formidable challenge and has not been extensively addressed. This study reports that metastable and temperature-sensitive chemically exfoliated MoS (ce-MoS ) can be made into electrochemically stable (5000 cycles), and thermally robust (300 °C) while maintaining synthetic scalability and excellent catalytic activity through physical-transformation into 3D structurally deformed nanostructures. The dimensional transition enabled by a high throughput electrohydrodynamic process provides highly accessible, and electrochemically active surface area and facilitates efficient transport across various interfaces. Meanwhile, the hierarchically strained morphology is found to improve electronic coupling between active sites and current collecting substrates without the need for selective engineering the electronically heterogeneous interfaces. Specifically, the synergistic combination of high strain load stemmed from capillarity-induced-self-crumpling and sulfur (S) vacancies intrinsic to chemical exfoliation enables simultaneous modulation of active site density and intrinsic HER activity regardless of continuous operation or elevated temperature. These results provide new insights into how catalytic activity, electrochemical-, and thermal stability can be concurrently enhanced through the physical transformation that is reminiscent of nature, in which properties of biological materials emerge from evolved dimensional transitions. 2 2 2-
dc.languageeng-
dc.relation.ispartofAdvanced Materials-
dc.subjectmolybdenum disulfide-
dc.subjecthydrogen evolution reactions-
dc.subjectbioinspired dimensional transitions-
dc.titleStructurally Deformed MoS<inf>2</inf> for Electrochemically Stable, Thermally Resistant, and Highly Efficient Hydrogen Evolution Reaction-
dc.typeArticle-
dc.description.naturelink_to_subscribed_fulltext-
dc.identifier.doi10.1002/adma.201703863-
dc.identifier.pmid29024072-
dc.identifier.scopuseid_2-s2.0-85031322558-
dc.identifier.volume29-
dc.identifier.issue44-
dc.identifier.spagearticle no. 1703863-
dc.identifier.epagearticle no. 1703863-
dc.identifier.eissn1521-4095-
dc.identifier.isiWOS:000415905200019-
dc.identifier.issnl0935-9648-

Export via OAI-PMH Interface in XML Formats


OR


Export to Other Non-XML Formats