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Generalized self-assembly of scalable two-dimensional transition metal oxide nanosheets

Overview of attention for article published in Nature Communications, May 2014
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Title
Generalized self-assembly of scalable two-dimensional transition metal oxide nanosheets
Published in
Nature Communications, May 2014
DOI 10.1038/ncomms4813
Pubmed ID
Authors

Ziqi Sun, Ting Liao, Yuhai Dou, Soo Min Hwang, Min-Sik Park, Lei Jiang, Jung Ho Kim, Shi Xue Dou

Abstract

Two-dimensional (2D) transition metal oxide systems present exotic electronic properties and high specific surface areas, and also demonstrate promising applications ranging from electronics to energy storage. Yet, in contrast to other types of nanostructures, the question as to whether we could assemble 2D nanomaterials with an atomic thickness from molecules in a general way, which may give them some interesting properties such as those of graphene, still remains unresolved. Herein, we report a generalized and fundamental approach to molecular self-assembly synthesis of ultrathin 2D nanosheets of transition metal oxides by rationally employing lamellar reverse micelles. It is worth emphasizing that the synthesized crystallized ultrathin transition metal oxide nanosheets possess confined thickness, high specific surface area and chemically reactive facets, so that they could have promising applications in nanostructured electronics, photonics, sensors, and energy conversion and storage devices.

Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 548 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
United States 3 <1%
China 2 <1%
Belgium 1 <1%
Sweden 1 <1%
Spain 1 <1%
India 1 <1%
Unknown 539 98%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 140 26%
Student > Master 82 15%
Researcher 64 12%
Student > Doctoral Student 38 7%
Student > Bachelor 31 6%
Other 62 11%
Unknown 131 24%
Readers by discipline Count As %
Materials Science 125 23%
Chemistry 110 20%
Engineering 50 9%
Physics and Astronomy 42 8%
Chemical Engineering 27 5%
Other 33 6%
Unknown 161 29%