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Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format
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Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format Example of Journal of Nanophotonics format
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open access Open Access

Journal of Nanophotonics — Template for authors

Publisher: SPIE
Categories Rank Trend in last 3 yrs
Condensed Matter Physics #215 of 411 down down by 13 ranks
Electronic, Optical and Magnetic Materials #137 of 246 down down by 22 ranks
journal-quality-icon Journal quality:
Medium
calendar-icon Last 4 years overview: 346 Published Papers | 938 Citations
indexed-in-icon Indexed in: Scopus
last-updated-icon Last updated: 17/07/2020
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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.

1.415

1% from 2018

Impact factor for Journal of Nanophotonics from 2016 - 2019
Year Value
2019 1.415
2018 1.429
2017 1.06
2016 1.325
graph view Graph view
table view Table view

2.7

CiteRatio for Journal of Nanophotonics from 2016 - 2020
Year Value
2020 2.7
2019 2.7
2018 2.3
2017 2.2
2016 2.0
graph view Graph view
table view Table view

insights Insights

  • Impact factor of this journal has decreased by 1% in last year.
  • This journal’s impact factor is in the top 10 percentile category.

insights Insights

  • 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.

0.323

19% from 2019

SJR for Journal of Nanophotonics from 2016 - 2020
Year Value
2020 0.323
2019 0.399
2018 0.397
2017 0.438
2016 0.518
graph view Graph view
table view Table view

0.481

21% from 2019

SNIP for Journal of Nanophotonics from 2016 - 2020
Year Value
2020 0.481
2019 0.609
2018 0.572
2017 0.586
2016 0.632
graph view Graph view
table view Table view

insights Insights

  • SJR of this journal has decreased by 19% in last years.
  • This journal’s SJR is in the top 10 percentile category.

insights Insights

  • SNIP of this journal has decreased by 21% in last years.
  • This journal’s SNIP is in the top 10 percentile category.

Journal of Nanophotonics

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SPIE

Journal of Nanophotonics

The Journal of Nanophotonics (JNP) is an electronic journal focusing on the fabrication and application of nanostructures that facilitate the generation, propagation, manipulation, and detection of light from the infrared to the ultraviolet regimes. The scope extends to theory...... Read More

Electronic, Optical and Magnetic Materials

Condensed Matter Physics

Materials Science

i
Last updated on
17 Jul 2020
i
ISSN
1934-2608
i
Impact Factor
Medium - 0.728
i
Open Access
No
i
Sherpa RoMEO Archiving Policy
Green faq
i
Endnote Style
Download Available
i
Bibliography Name
spiebib
i
Citation Type
Numbered (Superscripted)
25
i
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).

Top papers written in this journal

open accessOpen access Journal Article DOI: 10.1117/1.JNP.9.093791
Review of mid-infrared plasmonic materials
Y. Zhong1, Shyamala Devi Malagari1, Travis Hamilton1, Daniel Wasserman1
01 Jan 2015 - Journal of Nanophotonics

Abstract:

The field of plasmonics has the potential to enable unique applications in the mid-infrared (IR) wavelength range. However, as is the case regardless of wavelength, the choice of plasmonic material has significant implications for the ultimate utility of any plasmonic device or structure. In this manuscript, we review the wid... The field of plasmonics has the potential to enable unique applications in the mid-infrared (IR) wavelength range. However, as is the case regardless of wavelength, the choice of plasmonic material has significant implications for the ultimate utility of any plasmonic device or structure. In this manuscript, we review the wide range of available plasmonic and phononic materials for mid-IR wavelengths, looking in particular at transition metal nitrides, transparent conducting oxides, silicides, doped semiconductors, and even newer plasmonic materials such as graphene. We also include in our survey materials with strong mid-IR phonon resonances, such as GaN, GaP, SiC, and the perovskite SrTiO 3 , all of which can support plasmon-like modes over limited wavelength ranges. We will discuss the suitability of each of these plasmonic and phononic materials, as well as the more traditional noble metals for a range of structures and applications and will discuss the potential and limitations of alternative plasmonic materials at these IR wavelengths. read more read less
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235 Citations
open accessOpen access Journal Article DOI: 10.1117/1.3562980
Green Nanotechnology: Solutions for Sustainability and Energy in the Built Environment, by G. B. Smith and C. G. Granqvist
Akhlesh Lakhtakia1
01 Jan 2011 - Journal of Nanophotonics

Abstract:

Green Nanotechnology: Introduction and Invitation What Is Nanotechnology? What Is Green Nanotechnology? Some Basic Issues in Nanoscience Nanoscience, Dimensionality, and Thin Films Outdoing Nature in Exploiting Complexity Energy Supply and Demand Energy and Development References In Harmony with the Environment: Nature's Ener... Green Nanotechnology: Introduction and Invitation What Is Nanotechnology? What Is Green Nanotechnology? Some Basic Issues in Nanoscience Nanoscience, Dimensionality, and Thin Films Outdoing Nature in Exploiting Complexity Energy Supply and Demand Energy and Development References In Harmony with the Environment: Nature's Energy Flows and Desired Materials Properties Global Energy Flows Radiation in Our Ambience: An Overview Interaction Between Radiation and Materials Beam and Diffuse Radiation Hemispherical Absorptance Solar and Daylighting Performance Parameters Thermal Radiation and Spectral Properties of the Atmosphere Dynamical Environmental Properties Materials for Optimized Use of the Spectral, Directional, and Dynamical Properties of Solar Energy and Sky Radiation Thermal and Density Gradients in the Atmosphere and Oceans Performance of Energy Systems: Thermodynamics and Value References Optical Materials Science for Green Nanotechnology: The Basics Light and Nanostructures Spectral Properties of Uniform Materials Plasmonic Materials in General Materials for Electron-Based Plasmonics: Mirrors for Visible and Infrared Light Ionic-Based Materials with Narrow-Band Infrared Properties Generic Classes of Spectrally Selective Materials Thin Films for Controlling Spectral Properties and Local Light Intensities Nanoparticle Optics Optical Homogenization of Nanocomposites Surface Plasmon Resonances in Films, Particles, and "Rectennas" Temporary "Storage" of Light at Resonances and in Evanescent Fields References Visual Indoors-Outdoors Contact and Daylighting: Windows General Introduction Spectral Selectivity: The Potential in Energy Efficiency Spectral Selectivity of Noble-Metal-Based Films Spectral Selectivity of Oxide-Semiconductor-Based Films Spectral Selectivity: Novel Developments for Films and Foils Optimized Angular Properties: The Energy Efficiency That Is Possible Angular Selectivity of Films with Inclined Columnar Nanostructures Chromogenics: The Energy Efficiency That Is Possible Photochromics Thermochromics Electrochromics References Electric Lighting and Daylighting: Luminaires Lighting: Past, Present, and Future Daylighting Technology: The "Cool" Option Dielectric Mirrors Based on Nanostructure Luminescent Solar Concentrators for Daylighting and Solar Power Light Diffusing Transmitting Materials Advanced Electronic Lighting Concepts References Heat and Electricity: Solar Collectors and Solar Cells Solar Thermal Materials and Devices Photovoltaic Materials and Devices References Coolness: High-Albedo Surfaces and Sky Cooling Devices Two Cooling Strategies City Heating, Global Cooling, and Summer Blackouts High-Albedo Paints for Cool Buildings Sky Cooling to Subambient Temperatures Water Condensation Using Sky Cooling A Role for Cooling and Waste Heat in Electric Power Generation Electronic Cooling and Nanotechnology Whither Cooling? References Supporting Nanotechnologies: Air Sensing and Cleaning, Thermal Insulation and Electrical Storage Air Quality and Air Sensing Photocatalysis for Cleaning Thermal Insulation with Nanomaterials Green Energy Storage References Conclusions: Nanotechnologies for a Sustainable Future Energy and the Future New Technologies and Growing Uptake of Proven Technologies Towards a "Nanoworld" References Appendix 1: Thin Film Deposition Appendix 2: Abbreviations, Acronyms, and Symbols Index read more read less
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179 Citations
open accessOpen access Journal Article DOI: 10.1117/1.3609266
Optical properties of nanostructured materials: a review
François Flory1, François Flory2, Ludovic Escoubas1, Gérard Berginc
01 Jan 2011 - Journal of Nanophotonics

Abstract:

Depending on the size of the smallest feature, the interaction of light with structured materials can be very different. This fundamental problem is treated by different theories. If first order theories are sufficient to describe the scattering from low roughness surfaces, second order or even higher order theories must be u... Depending on the size of the smallest feature, the interaction of light with structured materials can be very different. This fundamental problem is treated by different theories. If first order theories are sufficient to describe the scattering from low roughness surfaces, second order or even higher order theories must be used for high roughness surfaces. Random surface structures can then be designed to distribute the light in different propagation directions. For complex structures such as black silicon, which reflects very little light, the theory needs further development. When the material is periodically structured, we speak about photonic crystals or metamaterials. Different theoretical approaches have been developed and experimental tech- niquesarerapidlyprogressing.However,someworkstillremainstounderstandthefullpotential of this field. When the material is structured in dimension much smaller than the wavelength, the notion of complex refractive index must be revisited. Plasmon resonance can be excited by a progressing wave on metallic nanoparticles inducing a shaping of the absorption band and of the dispersion of the extinction coefficient. This addresses the problem of the permittivity of such metallic nanoparticles. The coupling between several metallic nanoparticles induces a field enhancement in the surrounding media, which can increase phenomena like scattering, absorption, luminescence, or Raman scattering. For semiconductor nanoparticles, electron con- finement also induces a modulated absorption spectra. The refractive index is then modified. The bandgap of the material is changed because of the discretization of the electron energy, which can be controlled by the nanometers size particles. Such quantum dots behave like atoms and become luminescent. The lifetime of the electron in the excited states are much larger than in continuous energy bands. Electrons in coupled quantum dots behave as they do in molecules. Manyapplicationsshouldbeforthcominginthenearfutureinthisfieldofresearch. C � 2011Society read more read less
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162 Citations
Journal Article DOI: 10.1117/1.3111826
Photoluminescence from silicon nanostructures: The mutual role of quantum confinement and surface chemistry
Amir Sa'ar1
01 Jan 2009 - Journal of Nanophotonics

Abstract:

Recent developments in the field of silicon nanostructures, particularly those properties and phenomena that are related to the photoluminescence (PL) from silicon nanostructures, have attracted much attention lately. A major source of controversy and disagreement among researchers is the underlying mechanism behind the PL. T... Recent developments in the field of silicon nanostructures, particularly those properties and phenomena that are related to the photoluminescence (PL) from silicon nanostructures, have attracted much attention lately. A major source of controversy and disagreement among researchers is the underlying mechanism behind the PL. Two classes of models, i.e., the quantum confinement model that assigns the PL to quantum size effects in the nanocrystalline silicon core of the nanostructures and the surface chemistry model that assign the PL to surface phenomena at the interface between the crystalline core and the host matrix that wrap the nanostructures, are the most notable ones. In recent years, alternative structures to porous silicon, which allow synthesizing high quality silicon nanostructures with better control of their dimensionality, shape and size distribution, have emerged. In particular, fabrication techniques of silicon nanocrystals embedded in silicon-dioxide (SiO2) matrices have reached a level where consistent investigation of surface and quantum size phenomena can be performed. Recent experimental results and theories suggest that none of the above models alone can explain the entire spectrum of optical phenomena in silicon nanostructures. Instead, a refined model that takes into account the mutual role of quantum confinement and surface chemistry in shaping the optical properties of these nanostructures should be considered. read more read less
127 Citations
open accessOpen access Journal Article DOI: 10.1117/1.3543822
Thin-film growth dynamics with shadowing and re-emission effects
Tansel Karabacak1
01 Jan 2011 - Journal of Nanophotonics

Abstract:

Growth dynamics of thin-films involves both shadowing and re-emission effects. Shadowing can originate from obliquely incident atoms being preferentially deposited on hills of the surface, which leads to a long range geometrical effect, as well as from an atomic shadowing process that can occur even during normal angle deposi... Growth dynamics of thin-films involves both shadowing and re-emission effects. Shadowing can originate from obliquely incident atoms being preferentially deposited on hills of the surface, which leads to a long range geometrical effect, as well as from an atomic shadowing process that can occur even during normal angle deposition. Re-emission effect is a result of nonsticking atoms, which can bounce off from hills and deposit on valleys of the surface. In the case of an energetic incident flux, re-emission can also originate from a resputtering process that includes a surface atom being knocked off by an incident ion/atom followed by redeposition to another surface point. Due to their long-range nonlocal nature, both the shadowing effect (which tries to roughen the surface) and re-emission effect (which has a smoothening effect) have been shown to be more dominant over local effects such as surface diffusion, and have been proven to be critical processes in accurately determining the dynamic evolution of surface roughness. Recent Monte Carlo simulation methods that involve shadowing, re-emission, surface diffusion, and noise effects successfully predicted many experimentally relevant surface roughness evolution results reported in the literature. For example, root-mean-square surface roughness (ω) of Monte Carlo simulated thin-films have evolved with time t according to a power law behavior ω ∼ t β , with β values ranging from about 0 to 1 for a growth with strong re-emission effects (i.e., low sticking coefficients) and a growth with dominant shadowing effects (i.e., with high sticking coefficients), respectively. Potential future thin-film growth modeling studies are also discussed. These include advanced simulation approaches that can incorporate atomistic details of physical and chemical processes and a recently developed network growth model that can potentially capture some universal aspects of thin-film growth dynamics independent of the details of growth process. C 2011 read more read less
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122 Citations
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Absolutely not! Our tool has been designed to help you focus on writing. You can write your entire paper as per the Journal of Nanophotonics guidelines and auto format it.

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3. Can I cite my article in multiple styles in Journal of Nanophotonics?

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 Journal of Nanophotonics citation style.

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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 Journal of Nanophotonics.

5. Can I use a manuscript in Journal of Nanophotonics 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 Journal of Nanophotonics that you can download at the end.

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After writing your paper autoformatting in Journal of Nanophotonics, you can download it in multiple formats, viz., PDF, Docx, and LaTeX.

12. Is Journal of Nanophotonics'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 Journal of Nanophotonics?

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 Journal of Nanophotonics. 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 Journal of Nanophotonics?

The 5 most common citation types in order of usage for Journal of Nanophotonics 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 Journal of Nanophotonics?

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16. Can I download Journal of Nanophotonics 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 Journal of Nanophotonics Endnote style according to Elsevier guidelines.

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