Example of Laser and Particle Beams format
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Example of Laser and Particle Beams format Example of Laser and Particle Beams format Example of Laser and Particle Beams format Example of Laser and Particle Beams format Example of Laser and Particle Beams format Example of Laser and Particle Beams format
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Example of Laser and Particle Beams format Example of Laser and Particle Beams format Example of Laser and Particle Beams format Example of Laser and Particle Beams format Example of Laser and Particle Beams format Example of Laser and Particle Beams format
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This content is only for preview purposes. The original open access content can be found here.
open access Open Access

Laser and Particle Beams — Template for authors

Categories Rank Trend in last 3 yrs
Electrical and Electronic Engineering #355 of 693 down down by 97 ranks
Condensed Matter Physics #239 of 411 down down by 49 ranks
Atomic and Molecular Physics, and Optics #118 of 192 down down by 37 ranks
journal-quality-icon Journal quality:
Medium
calendar-icon Last 4 years overview: 249 Published Papers | 593 Citations
indexed-in-icon Indexed in: Scopus
last-updated-icon Last updated: 10/06/2020
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Related Journals

open access Open Access

Springer

Quality:  
High
CiteRatio: 6.6
SJR: 1.392
SNIP: 1.036
open access Open Access
recommended Recommended

Nature

Quality:  
High
CiteRatio: 58.2
SJR: 14.308
SNIP: 6.143
open access Open Access
recommended Recommended

Springer

Quality:  
High
CiteRatio: 14.4
SJR: 2.536
SNIP: 1.25

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.

1.065

11% from 2018

Impact factor for Laser and Particle Beams from 2016 - 2019
Year Value
2019 1.065
2018 1.194
2017 1.272
2016 1.42
graph view Graph view
table view Table view

2.4

9% from 2019

CiteRatio for Laser and Particle Beams from 2016 - 2020
Year Value
2020 2.4
2019 2.2
2018 2.4
2017 2.4
2016 2.5
graph view Graph view
table view Table view

insights Insights

  • Impact factor of this journal has decreased by 11% in last year.
  • This journal’s impact factor is in the top 10 percentile category.

insights Insights

  • CiteRatio of this journal has increased by 9% 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.

0.434

15% from 2019

SJR for Laser and Particle Beams from 2016 - 2020
Year Value
2020 0.434
2019 0.378
2018 0.415
2017 0.497
2016 0.541
graph view Graph view
table view Table view

0.755

1% from 2019

SNIP for Laser and Particle Beams from 2016 - 2020
Year Value
2020 0.755
2019 0.766
2018 0.866
2017 0.823
2016 0.805
graph view Graph view
table view Table view

insights Insights

  • SJR of this journal has increased by 15% in last years.
  • This journal’s SJR is in the top 10 percentile category.

insights Insights

  • SNIP of this journal has decreased by 1% in last years.
  • This journal’s SNIP is in the top 10 percentile category.

Laser and Particle Beams

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Cambridge University Press

Laser and Particle Beams

Laser and Particle Beams is an international journal which deals with basic physics issues of intense laser and particle beams, and the interaction of these beams with matter. Research on pulse power technology associated with beam generation is also of strong interest. Subjec...... Read More

Engineering

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Last updated on
10 Jun 2020
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ISSN
0263-0346
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Impact Factor
High - 1.319
i
Open Access
No
i
Sherpa RoMEO Archiving Policy
Green faq
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Endnote Style
Download Available
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Bibliography Name
unsrt
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Citation Type
Numbered
[25]
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Bibliography Example
G E Blonder, M Tinkham, and T M Klapwijk. Transition from metallic to tunneling regimes in superconducting microconstrictions: Excess current, charge imbalance, and supercurrent conversion. Phys. Rev. B, 25(7):4515–4532, 1982. 10.1103/PhysRevB.25.4515.

Top papers written in this journal

open accessOpen access Journal Article DOI: 10.1017/S0263034606060459
GeV laser ion acceleration from ultrathin targets: The laser break-out afterburner
Lin Yin1, Brian J. Albright1, Bjorn Hegelich1, Juan C. Fernández1
01 Jun 2006 - Laser and Particle Beams

Abstract:

A new laser-driven ion acceleration mechanism has been identified using particle-in-cell (PIC) simulations. This mechanism allows ion acceleration to GeV energies at vastly reduced laser intensities compared with earlier acceleration schemes. The new mechanism, dubbed “Laser Break-out Afterburner” (BOA), enables the accelerat... A new laser-driven ion acceleration mechanism has been identified using particle-in-cell (PIC) simulations. This mechanism allows ion acceleration to GeV energies at vastly reduced laser intensities compared with earlier acceleration schemes. The new mechanism, dubbed “Laser Break-out Afterburner” (BOA), enables the acceleration of carbon ions to greater than 2 GeV energy at a laser intensity of only 1021 W/cm2, an intensity that has been realized in existing laser systems. Other techniques for achieving these energies in the literature rely upon intensities of 1024 W/cm2 or above, i.e., 2–3 orders of magnitude higher than any laser intensity that has been demonstrated to date. Also, the BOA mechanism attains higher energy and efficiency than target normal sheath acceleration (TNSA), where the scaling laws predict carbon energies of 50 MeV/u for identical laser conditions. In the early stages of the BOA, the carbon ions accelerate as a quasi-monoenergetic bunch with median energy higher than that realized recently experimentally. read more read less
View PDF
303 Citations
open accessOpen access Journal Article DOI: 10.1017/S0263034607000687
Multi-phase equation of state for aluminum
Igor V. Lomonosov1
01 Dec 2007 - Laser and Particle Beams

Abstract:

Results of theoretical calculations and experimental measurements of the equation of state (EOS) at extreme conditions are discussed and applied to aluminum. It is pointed out that the available high pressure and temperature information covers a broad range of the phase diagram, but only irregularly and, as a rule, is not the... Results of theoretical calculations and experimental measurements of the equation of state (EOS) at extreme conditions are discussed and applied to aluminum. It is pointed out that the available high pressure and temperature information covers a broad range of the phase diagram, but only irregularly and, as a rule, is not thermodynamically complete; its generalization can be done only in the form of a thermodynamically complete EOS. A multi-phase EOS model is presented, accounting for solid, liquid, gas, and plasma states, as well as two-phase regions of melting and evaporation. The thermodynamic properties of aluminum and its phase diagram are calculated with the use of this model. Theoretical calculations of thermodynamic properties of the solid, liquid, and plasma phases, and of the critical point, are compared with results of static and dynamic experiments. The analysis deals with thermodynamic properties of solid aluminum at T = 0 and 298 K from different band-structure theories, static compression experiments in diamond anvil cells, and the information obtained in isentropic-compression and shock-wave experiments. Thermodynamic data in the liquid state, resulting from traditional thermophysical measurements, “exploding wire” experiments, and evaluations of the critical point are presented. Numerous shock-wave experiments for aluminum have been done to measure shock adiabats of crystal and porous samples, release isentropes, and sound speed in shocked metal. These data are analyzed in a self-consistent manner together with all other available data at high pressure.The model's results are shown for the principal shock adiabat, the high-pressure melting and evaporation regions and the critical point of aluminum. New experimental and theoretical data helped to improve the description of the high-pressure, high-temperature aluminum liquid. The present EOS describes with high accuracy and reliability the complete set of available information. read more read less
156 Citations
open accessOpen access Journal Article DOI: 10.1017/S0263034600009733
ORION: Clearing near-Earth space debris using a 20-kW, 530-nm, Earth-based, repetitively pulsed laser
01 Mar 1996 - Laser and Particle Beams

Abstract:

When a large piece of space debris forced a change of flight plan for arecent U.S. Space Shuttle mission, the concept that we are trashing space as well as Earth finally attained broad public awareness. Almost a million pieces of debris have been generated by 35 years of spaceflight, and now threaten long-term space missions.... When a large piece of space debris forced a change of flight plan for arecent U.S. Space Shuttle mission, the concept that we are trashing space as well as Earth finally attained broad public awareness. Almost a million pieces of debris have been generated by 35 years of spaceflight, and now threaten long-term space missions. The most economical solution to this problem is to cause space debris items to reenter and burn up in the atmosphere. For safe handling of large objects, it is desired to do this on a precomputed trajectory. Due to the number, speed, and spacial distribution of the objects, a highly agile source of mechanical impulse, as well as a quantum leap in detection capability are required. For reasons we will discuss, we believe that the best means of accomplishing these goals is the system we propose here, which uses a ground-based laser system and active beam phase error correcting beam director to provide the impulse, together with a new, computer-intensive, very high-resolution optical detection system to locate objects as small as 1 cm at 500-km range. Illumination of the objects by the repetitively pulsed laser produces a laser-ablation jet that gives the impulse to de-orbit the object. A laser of just 20-kW average power and state-of-the-art detection capabilities could clear near-Earth space below 100-km altitude of all space debris larger than 1 cm but less massive than 100 kg in about 4 years, and all debris in the threatening 1–20-cm size range in about 2 years of continuous operation. The ORION laser would be sited near the Equator at a high altitude location (e.g., the Uhuru site on Kilimanjaro), minimizing turbulence correction, conversion by stimulated Raman scattering, and absorption of the 530-nm wavelength laser beam. ORION is a special case of Laser Impulse Space Propulsion (LISP), studied extensively by Los Alamos and others over the past 4 years. read more read less
View PDF
143 Citations
open accessOpen access Journal Article DOI: 10.1017/S0263034607070073
New aspects for fusion energy using inertial confinement
Heinrich Hora1
01 Mar 2007 - Laser and Particle Beams

Abstract:

Magnetic confinement fusion (MCF) based on neutral particle beam irradiation reached the highest gains with JET and is discussed in relation to the ITER project for a possible re-orientation with respect to the ignition process. Ignition plays a similar role for inertial confinement fusion (ICF). After a short review about sp... Magnetic confinement fusion (MCF) based on neutral particle beam irradiation reached the highest gains with JET and is discussed in relation to the ITER project for a possible re-orientation with respect to the ignition process. Ignition plays a similar role for inertial confinement fusion (ICF). After a short review about specific ICF developments, the fast igniter development offered a re-consideration of igniting DT fuel at modest or low compression. The observation of extreme anomalies (Sauerbrey 1996, Zhang et al., 1998 and Badziak et al., 1999) at interaction of picosecond (ps) laser pulses above TW power could be explained as a skin layer mechanism based on earlier computations (Hora et al., 2002) with nonlinear (ponderomotive) force acceleration. The resulting very high ion current density space charge neutral plasma blocks interacting as pistons to ignite DT may lead to a new scheme of laser fusion with low cost energy generation. read more read less
126 Citations
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Laser and Particle Beams format uses unsrt citation style.

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Frequently asked questions

1. Can I write Laser and Particle Beams in LaTeX?

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

2. Do you follow the Laser and Particle Beams guidelines?

Yes, the template is compliant with the Laser and Particle Beams 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 Laser and Particle Beams?

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 Laser and Particle Beams citation style.

4. Can I use the Laser and Particle Beams 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 Laser and Particle Beams.

5. Can I use a manuscript in Laser and Particle Beams 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 Laser and Particle Beams that you can download at the end.

6. How long does it usually take you to format my papers in Laser and Particle Beams?

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

7. Where can I find the template for the Laser and Particle Beams?

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 Laser and Particle Beams'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 Laser and Particle Beams'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. Laser and Particle Beams an online tool or is there a desktop version?

SciSpace's Laser and Particle Beams 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 Laser and Particle Beams?

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 Laser and Particle Beams?”

11. What is the output that I would get after using Laser and Particle Beams?

After writing your paper autoformatting in Laser and Particle Beams, you can download it in multiple formats, viz., PDF, Docx, and LaTeX.

12. Is Laser and Particle Beams'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 Laser and Particle Beams?

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 Laser and Particle Beams. 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 Laser and Particle Beams?

The 5 most common citation types in order of usage for Laser and Particle Beams 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 Laser and Particle Beams?

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 Laser and Particle Beams's guidelines and download the same in Word, PDF and LaTeX formats? Give us a try!.

16. Can I download Laser and Particle Beams 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 Laser and Particle Beams Endnote style according to Elsevier guidelines.

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