Pulsed cooperative backward emissions from non-degenerate atomic transitions in sodium

PDF Version Also Available for Download.

Description

Article describes study which examines backward cooperative emissions from a dense sodium atomic vapor.

Physical Description

9 p.

Creation Information

Thompson, Jonathan V.; Ballmann, Charles W.; Cai, Han; Yi, Zhenhuan; Rostovtsev, Yuri V.; Sokolov, Alexei V. et al. October 9, 2014.

Context

This article is part of the collection entitled: UNT Scholarly Works and was provided by the UNT College of Arts and Sciences to the UNT Digital Library, a digital repository hosted by the UNT Libraries. More information about this article can be viewed below.

Who

People and organizations associated with either the creation of this article or its content.

Authors

Publisher

Provided By

UNT College of Arts and Sciences

The UNT College of Arts and Sciences educates students in traditional liberal arts, performing arts, sciences, professional, and technical academic programs. In addition to its departments, the college includes academic centers, institutes, programs, and offices providing diverse courses of study.

Contact Us

What

Descriptive information to help identify this article. Follow the links below to find similar items on the Digital Library.

Degree Information

Description

Article describes study which examines backward cooperative emissions from a dense sodium atomic vapor.

Physical Description

9 p.

Notes

Abstract: We study backward cooperative emissions from a dense sodium atomic vapor. Ultrashort pulses produced from a conventional amplified femtosecond laser system with an optical parametric amplifier are used to excite sodium atoms resonantly on the two-photon 3S$_{1/2}$–4S$_{1/2}$ transition. Backward superfluorescent emissions (BSFEs), both on the 4S$_{1/2}$–3P$_{3/2}$ and 4S$_{1/2}$–3P$_{1/2}$ transitions, are observed. The picosecond temporal characteristics of the BSFE are observed using an ultrafast streak camera. The power laws for the dependencies of the average time delay and the intensity of the BSFEs on input power are analyzed in the sense of cooperative emission from nonidentical atomic species. As a result, an absolute (rather than relative) time delay and its fluctuations (free of any possible external noise) are determined experimentally. The possibility of a backward swept-gain superfluorescence as an artificial laser guide star in the sodium layer in the mesosphere is also discussed.

Source

  • New Journal of Physics, 16, IOP Science, October 2014

Language

Item Type

Identifier

Unique identifying numbers for this article in the Digital Library or other systems.

Publication Information

  • Publication Title: New Journal of Physics
  • Volume: 16
  • Pages: 9
  • Peer Reviewed: Yes

Collections

This article is part of the following collection of related materials.

UNT Scholarly Works

Materials from the UNT community's research, creative, and scholarly activities and UNT's Open Access Repository. Access to some items in this collection may be restricted.

What responsibilities do I have when using this article?

When

Dates and time periods associated with this article.

Creation Date

  • October 9, 2014

Accepted Date

  • August 20, 2014

Submitted Date

  • June 11, 2014

Added to The UNT Digital Library

  • Aug. 3, 2020, 3:07 p.m.

Description Last Updated

  • Sept. 22, 2020, 4:49 p.m.

Usage Statistics

When was this article last used?

Yesterday: 0
Past 30 days: 0
Total Uses: 3

Interact With This Article

Here are some suggestions for what to do next.

Start Reading

PDF Version Also Available for Download.

International Image Interoperability Framework

IIF Logo

We support the IIIF Presentation API

Thompson, Jonathan V.; Ballmann, Charles W.; Cai, Han; Yi, Zhenhuan; Rostovtsev, Yuri V.; Sokolov, Alexei V. et al. Pulsed cooperative backward emissions from non-degenerate atomic transitions in sodium, article, October 9, 2014; (https://digital.library.unt.edu/ark:/67531/metadc1705444/: accessed May 16, 2024), University of North Texas Libraries, UNT Digital Library, https://digital.library.unt.edu; crediting UNT College of Arts and Sciences.

Back to Top of Screen