Example of Optical and Quantum Electronics format
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open access Open Access

Optical and Quantum Electronics — Template for authors

Publisher: Springer
Categories Rank Trend in last 3 yrs
Electrical and Electronic Engineering #264 of 693 up up by 50 ranks
Atomic and Molecular Physics, and Optics #80 of 192 up up by 23 ranks
Electronic, Optical and Magnetic Materials #107 of 246 up up by 24 ranks
journal-quality-icon Journal quality:
Good
calendar-icon Last 4 years overview: 1781 Published Papers | 6282 Citations
indexed-in-icon Indexed in: Scopus
last-updated-icon Last updated: 05/07/2020
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Related Journals

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Journal Performance & Insights

Impact Factor

CiteRatio

Determines the importance of a journal by taking a measure of frequency with which the average article in a journal has been cited in a particular year.

A measure of average citations received per peer-reviewed paper published in the journal.

1.842

19% from 2018

Impact factor for Optical and Quantum Electronics from 2016 - 2019
Year Value
2019 1.842
2018 1.547
2017 1.168
2016 1.055
graph view Graph view
table view Table view

3.5

13% from 2019

CiteRatio for Optical and Quantum Electronics from 2016 - 2020
Year Value
2020 3.5
2019 3.1
2018 2.5
2017 1.8
2016 1.4
graph view Graph view
table view Table view

insights Insights

  • Impact factor of this journal has increased by 19% in last year.
  • This journal’s impact factor is in the top 10 percentile category.

insights Insights

  • CiteRatio of this journal has increased by 13% in last years.
  • This journal’s CiteRatio is in the top 10 percentile category.

SCImago Journal Rank (SJR)

Source Normalized Impact per Paper (SNIP)

Measures weighted citations received by the journal. Citation weighting depends on the categories and prestige of the citing journal.

Measures actual citations received relative to citations expected for the journal's category.

0.396

7% from 2019

SJR for Optical and Quantum Electronics from 2016 - 2020
Year Value
2020 0.396
2019 0.37
2018 0.355
2017 0.353
2016 0.317
graph view Graph view
table view Table view

0.796

10% from 2019

SNIP for Optical and Quantum Electronics from 2016 - 2020
Year Value
2020 0.796
2019 0.722
2018 0.659
2017 0.63
2016 0.62
graph view Graph view
table view Table view

insights Insights

  • SJR of this journal has increased by 7% in last years.
  • This journal’s SJR is in the top 10 percentile category.

insights Insights

  • SNIP of this journal has increased by 10% in last years.
  • This journal’s SNIP is in the top 10 percentile category.

Optical and Quantum Electronics

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Springer

Optical and Quantum Electronics

Optical and Quantum Electronics provides an international forum for the publication of original research papers, tutorial reviews and letters in such fields as optical physics, optical engineering and optoelectronics. Special issues are published on topics of current interest....... Read More

Engineering

i
Last updated on
04 Jul 2020
i
ISSN
0306-8919
i
Impact Factor
Medium - 0.629
i
Acceptance Rate
Not provided
i
Frequency
Not provided
i
Open Access
No
i
Sherpa RoMEO Archiving Policy
Green faq
i
Plagiarism Check
Available via Turnitin
i
Endnote Style
Download Available
i
Bibliography Name
SPBASIC
i
Citation Type
Author Year
(Blonder et al, 1982)
i
Bibliography Example
Beenakker CWJ (2006) Specular andreev reflection in graphene. Phys Rev Lett 97(6):067,007, URL 10.1103/PhysRevLett.97.067007

Top papers written in this journal

Journal Article DOI: 10.1007/BF02113964
Silica waveguides on silicon and their application to integrated-optic components

Abstract:

A marriage of optical fibre fabrication technology and LSI microfabrication technology gave birth to fibre-matched silica waveguides on silicon: thick glass layers of high-silica-content glass are deposited on silicon by flame hydrolysis, a method originally developed for fibre preform fabrication. Silica channel waveguides a... A marriage of optical fibre fabrication technology and LSI microfabrication technology gave birth to fibre-matched silica waveguides on silicon: thick glass layers of high-silica-content glass are deposited on silicon by flame hydrolysis, a method originally developed for fibre preform fabrication. Silica channel waveguides are then formed by photolithographic pattern definition processes followed by reactive ion etching. This ‘high silica (HiS) technology’ offers the possibility of integrating a number of passive functions on a single silicon chip, as well as the possibility of the hybrid integration of both active and passive devices on silicon. This paper reviews the NTT HiS technology and its application to integrated-optic components such as optical beam splitters, optical switches, wavelength-division multi/demultiplexers and optical frequency-division multi/demultiplexers. The clear and simple waveguide structures produced by the HiS technology make it possible to design and fabricate these components with high precision and excellent reproducibility. read more read less

Topics:

Silicon photonics (64%)64% related to the paper, Hybrid silicon laser (64%)64% related to the paper, Waveguide (optics) (58%)58% related to the paper, Silicon (57%)57% related to the paper, Microfabrication (54%)54% related to the paper
529 Citations
Journal Article DOI: 10.1007/BF00708339
A theoretical analysis of scattering loss from planar optical waveguides
F. P. Payne1, J. P. R. Lacey1

Abstract:

We derive analytical expressions for the scattering loss in planar optical waveguides whose surface roughness can be described by an exponential or Gaussian autocorrelation function. Our results show, for the first time, the explicit dependence of the loss coefficient on all the waveguide parameters. In addition, we show that... We derive analytical expressions for the scattering loss in planar optical waveguides whose surface roughness can be described by an exponential or Gaussian autocorrelation function. Our results show, for the first time, the explicit dependence of the loss coefficient on all the waveguide parameters. In addition, we show that for any waveguide there is a simple upper limit for the scattering loss. read more read less

Topics:

Waveguide (optics) (60%)60% related to the paper, Transmission loss (52%)52% related to the paper
497 Citations
Journal Article DOI: 10.1007/BF00698538
χ(2) cascading phenomena and their applications to all-optical signal processing, mode-locking, pulse compression and solitons
George I. Stegeman1, David J. Hagan1, Lluis Torner

Abstract:

Cascading is the process by which the exchange of energy between optical beams interacting via second order nonlinearities (χ(2)) leads to various effects such as nonlinear phase shifts, the generation of new beams, all-optical transistor action, the formation of soliton-like (solitary) waves, etc. Here we review the fundamen... Cascading is the process by which the exchange of energy between optical beams interacting via second order nonlinearities (χ(2)) leads to various effects such as nonlinear phase shifts, the generation of new beams, all-optical transistor action, the formation of soliton-like (solitary) waves, etc. Here we review the fundamentals of the processes and discuss experimental verification of the effects and various related applications. read more read less

Topics:

Pulse compression (52%)52% related to the paper, Second-harmonic generation (51%)51% related to the paper, Mode-locking (51%)51% related to the paper
494 Citations
open accessOpen access Journal Article DOI: 10.1007/BF00326477
Laser shock processing : a review of the physics and applications
P. Peyre1, R. Fabbro1

Abstract:

Developed since the beginning of the 1970s in the United States (Battelle, Columbus), laser shock processing (LSP) is being extensively studied in France in order to improve the mechanical properties of metallic surfaces of dense or porous materials. This paper reviews the considerable data on LSP which has been obtained in r... Developed since the beginning of the 1970s in the United States (Battelle, Columbus), laser shock processing (LSP) is being extensively studied in France in order to improve the mechanical properties of metallic surfaces of dense or porous materials. This paper reviews the considerable data on LSP which has been obtained in recent years and provides an exhaustive account of current trends concerning the physics, the mechanics and the applications involved. After presenting some general and specific data regarding the physical principles of laser shock (laser system, plasma physics, pressure generation, physical limits) and mechanical effects induced (experimental and theoretical) on different materials, the efficiency of the process is illustrated through two potential industrial applications linked with modifications of surface states: fatigue and wear resistance of metals. Experience with LSP applications shows that, because it uses safe surface geometries and provides greater affected depths, LSP is about to emerge as a real alternative to classical treatments. read more read less
393 Citations
Journal Article DOI: 10.1007/BF01588597
Laser beams with phase singularities
Norman R. Heckenberg1, R. McDuff1, C. P. Smith1, Halina Rubinsztein-Dunlop1, Margaret Wegener1

Abstract:

Phase singularities in an optical field appear as isolated dark spots and can be generated in active laser cavities or by computer generated holograms. Detection and categorization of these singularities can easily be achieved either by interferometry or Fourier transform pattern recognition using a computer generated hologram. Phase singularities in an optical field appear as isolated dark spots and can be generated in active laser cavities or by computer generated holograms. Detection and categorization of these singularities can easily be achieved either by interferometry or Fourier transform pattern recognition using a computer generated hologram. read more read less

Topics:

Holography (54%)54% related to the paper, Interferometry (51%)51% related to the paper, Laser (51%)51% related to the paper, Fourier transform (51%)51% related to the paper
358 Citations
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Optical and Quantum Electronics format uses SPBASIC citation style.

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Frequently asked questions

1. Can I write Optical and Quantum Electronics in LaTeX?

Absolutely not! Our tool has been designed to help you focus on writing. You can write your entire paper as per the Optical and Quantum Electronics guidelines and auto format it.

2. Do you follow the Optical and Quantum Electronics guidelines?

Yes, the template is compliant with the Optical and Quantum Electronics guidelines. Our experts at SciSpace ensure that. If there are any changes to the journal's guidelines, we'll change our algorithm accordingly.

3. Can I cite my article in multiple styles in Optical and Quantum Electronics?

Of course! We support all the top citation styles, such as APA style, MLA style, Vancouver style, Harvard style, and Chicago style. For example, when you write your paper and hit autoformat, our system will automatically update your article as per the Optical and Quantum Electronics citation style.

4. Can I use the Optical and Quantum Electronics templates for free?

Sign up for our free trial, and you'll be able to use all our features for seven days. You'll see how helpful they are and how inexpensive they are compared to other options, Especially for Optical and Quantum Electronics.

5. Can I use a manuscript in Optical and Quantum Electronics that I have written in MS Word?

Yes. You can choose the right template, copy-paste the contents from the word document, and click on auto-format. Once you're done, you'll have a publish-ready paper Optical and Quantum Electronics that you can download at the end.

6. How long does it usually take you to format my papers in Optical and Quantum Electronics?

It only takes a matter of seconds to edit your manuscript. Besides that, our intuitive editor saves you from writing and formatting it in Optical and Quantum Electronics.

7. Where can I find the template for the Optical and Quantum Electronics?

It is possible to find the Word template for any journal on Google. However, why use a template when you can write your entire manuscript on SciSpace , auto format it as per Optical and Quantum Electronics's guidelines and download the same in Word, PDF and LaTeX formats? Give us a try!.

8. Can I reformat my paper to fit the Optical and Quantum Electronics's guidelines?

Of course! You can do this using our intuitive editor. It's very easy. If you need help, our support team is always ready to assist you.

9. Optical and Quantum Electronics an online tool or is there a desktop version?

SciSpace's Optical and Quantum Electronics is currently available as an online tool. We're developing a desktop version, too. You can request (or upvote) any features that you think would be helpful for you and other researchers in the "feature request" section of your account once you've signed up with us.

10. I cannot find my template in your gallery. Can you create it for me like Optical and Quantum Electronics?

Sure. You can request any template and we'll have it setup within a few days. You can find the request box in Journal Gallery on the right side bar under the heading, "Couldn't find the format you were looking for like Optical and Quantum Electronics?”

11. What is the output that I would get after using Optical and Quantum Electronics?

After writing your paper autoformatting in Optical and Quantum Electronics, you can download it in multiple formats, viz., PDF, Docx, and LaTeX.

12. Is Optical and Quantum Electronics's impact factor high enough that I should try publishing my article there?

To be honest, the answer is no. The impact factor is one of the many elements that determine the quality of a journal. Few of these factors include review board, rejection rates, frequency of inclusion in indexes, and Eigenfactor. You need to assess all these factors before you make your final call.

13. What is Sherpa RoMEO Archiving Policy for Optical and Quantum Electronics?

SHERPA/RoMEO Database

We extracted this data from Sherpa Romeo to help researchers understand the access level of this journal in accordance with the Sherpa Romeo Archiving Policy for Optical and Quantum Electronics. The table below indicates the level of access a journal has as per Sherpa Romeo's archiving policy.

RoMEO Colour Archiving policy
Green Can archive pre-print and post-print or publisher's version/PDF
Blue Can archive post-print (ie final draft post-refereeing) or publisher's version/PDF
Yellow Can archive pre-print (ie pre-refereeing)
White Archiving not formally supported
FYI:
  1. Pre-prints as being the version of the paper before peer review and
  2. Post-prints as being the version of the paper after peer-review, with revisions having been made.

14. What are the most common citation types In Optical and Quantum Electronics?

The 5 most common citation types in order of usage for Optical and Quantum Electronics are:.

S. No. Citation Style Type
1. Author Year
2. Numbered
3. Numbered (Superscripted)
4. Author Year (Cited Pages)
5. Footnote

15. How do I submit my article to the Optical and Quantum Electronics?

It is possible to find the Word template for any journal on Google. However, why use a template when you can write your entire manuscript on SciSpace , auto format it as per Optical and Quantum Electronics's guidelines and download the same in Word, PDF and LaTeX formats? Give us a try!.

16. Can I download Optical and Quantum Electronics in Endnote format?

Yes, SciSpace provides this functionality. After signing up, you would need to import your existing references from Word or Bib file to SciSpace. Then SciSpace would allow you to download your references in Optical and Quantum Electronics Endnote style according to Elsevier guidelines.

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I spent hours with MS word for reformatting. It was frustrating - plain and simple. With SciSpace, I can draft my manuscripts and once it is finished I can just submit. In case, I have to submit to another journal it is really just a button click instead of an afternoon of reformatting.

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