- Home
- Search Results
- Page 1 of 1
Search for: All records
-
Total Resources3
- Resource Type
-
0000000003000000
- More
- Availability
-
21
- Author / Contributor
- Filter by Author / Creator
-
-
Deng, Hui (3)
-
Paik, Eunice (3)
-
Zhang, Long (2)
-
Alfrey, Adam (1)
-
Burg, G. William (1)
-
Chou, Yu-Hsun (1)
-
Fai_Mak, Kin (1)
-
Forrest, Stephen (1)
-
Gogna, Rahul (1)
-
Horng, Jason (1)
-
Hu, Jiaqi (1)
-
Kim, Kyounghwan (1)
-
Li, Qiuyang (1)
-
Liu, Bin (1)
-
Lu, Yang (1)
-
Lydick, Nathanial (1)
-
Shan, Jie (1)
-
Sun, Haiping (1)
-
Tutuc, Emanuel (1)
-
Wang, Ruoyu (1)
-
- Filter by Editor
-
-
& Spizer, S. M. (0)
-
& . Spizer, S. (0)
-
& Ahn, J. (0)
-
& Bateiha, S. (0)
-
& Bosch, N. (0)
-
& Brennan K. (0)
-
& Brennan, K. (0)
-
& Chen, B. (0)
-
& Chen, Bodong (0)
-
& Drown, S. (0)
-
& Ferretti, F. (0)
-
& Higgins, A. (0)
-
& J. Peters (0)
-
& Kali, Y. (0)
-
& Ruiz-Arias, P.M. (0)
-
& S. Spitzer (0)
-
& Sahin. I. (0)
-
& Spitzer, S. (0)
-
& Spitzer, S.M. (0)
-
(submitted - in Review for IEEE ICASSP-2024) (0)
-
-
Have feedback or suggestions for a way to improve these results?
!
Note: When clicking on a Digital Object Identifier (DOI) number, you will be taken to an external site maintained by the publisher.
Some full text articles may not yet be available without a charge during the embargo (administrative interval).
What is a DOI Number?
Some links on this page may take you to non-federal websites. Their policies may differ from this site.
-
Since the discovery of two-dimensional transition metal dichalcogenide monolayers as direct bandgap semiconductors with pronounced room-temperature exciton transitions, research on excitons and polaritons in these materials has exploded worldwide. Here, we give an introductory tutorial on the basic properties of excitons and polaritons in these materials, emphasizing how they are different from those in conventional semiconductors, and discuss some of the most exciting new phenomena reported.more » « lessFree, publicly-accessible full text available December 4, 2025
-
Li, Qiuyang; Alfrey, Adam; Hu, Jiaqi; Lydick, Nathanial; Paik, Eunice; Liu, Bin; Sun, Haiping; Lu, Yang; Wang, Ruoyu; Forrest, Stephen; et al (, Nature Communications)Abstract The unique optical properties of transition metal dichalcogenide (TMD) monolayers have attracted significant attention for both photonics applications and fundamental studies of low-dimensional systems. TMD monolayers of high optical quality, however, have been limited to micron-sized flakes produced by low-throughput and labour-intensive processes, whereas large-area films are often affected by surface defects and large inhomogeneity. Here we report a rapid and reliable method to synthesize macroscopic-scale TMD monolayers of uniform, high optical quality. Using 1-dodecanol encapsulation combined with gold-tape-assisted exfoliation, we obtain monolayers with lateral size > 1 mm, exhibiting exciton energy, linewidth, and quantum yield uniform over the whole area and close to those of high-quality micron-sized flakes. We tentatively associate the role of the two molecular encapsulating layers as isolating the TMD from the substrate and passivating the chalcogen vacancies, respectively. We demonstrate the utility of our encapsulated monolayers by scalable integration with an array of photonic crystal cavities, creating polariton arrays with enhanced light-matter coupling strength. This work provides a pathway to achieving high-quality two-dimensional materials over large areas, enabling research and technology development beyond individual micron-sized devices.more » « less
-
Zhang, Long; Gogna, Rahul; Burg, G. William; Horng, Jason; Paik, Eunice; Chou, Yu-Hsun; Kim, Kyounghwan; Tutuc, Emanuel; Deng, Hui (, Physical Review B)
An official website of the United States government
