Wiley

Advanced Optical Materials Template

Write in a clean editor, then format for Advanced Optical Materials in one click — DocuGuru applies the official Wiley template with author–year references and exports a submission-ready PDF plus the editable LaTeX source. Free to start.

About the Advanced Optical Materials format

Advanced Optical Materials is a peer-reviewed journal published by Wiley, covering Perovskite Materials and Applications, Luminescence and Fluorescent Materials, Metamaterials and Metasurfaces Applications.

PublisherWiley
Reference styleAuthor–year (Chicago)
Author–year — (Smith, 2023) in the text
Smith, Ada, Ben Jones, and Cara Lee. 2023. "A Representative Article Title." Advanced Optical Materials 12 (3): 45–58.

Formats any DOI in Advanced Optical Materials style. No sign-up.

Publishes research inPerovskite Materials and Applications Luminescence and Fluorescent Materials Metamaterials and Metasurfaces Applications Organic Light-Emitting Diodes Research Plasmonic and Surface Plasmon Research
ISSN2195-1071
Citation impact (2-yr)5.36
h-index193
i10-index5,634
Total citations294,808
Article processing charge$4,430
Top institutions publishing hereChinese Academy of Sciences
Journal websiteonlinelibrary.wiley.com
You getA submission-ready PDF and the editable LaTeX source — ready to submit.

Papers published in Advanced Optical Materials per year

256
2014
310
2015
356
2016
460
2017
626
2018
719
2019
754
2020
905
2021
1.1K
2022
1.3K
2023
1.3K
2024
1.5K
2025

Citation impact of Advanced Optical Materials by publication year

11.4K
2014
19.5K
2015
19K
2016
22.2K
2017
37.7K
2018
39K
2019
31.4K
2020
32.6K
2021
26.9K
2022
23.2K
2023
12.8K
2024
4.7K
2025

Citations each year’s papers have accumulated so far — the most recent years are still building up.

Most-cited papers in Advanced Optical Materials

High‐Efficiency Dielectric Huygens’ Surfaces

Manuel Decker, Isabelle Staude, Matthias Falkner et al. · 1 Feb 2015

Optical metasurfaces have developed as a breakthrough concept for advanced wave‐front engineering enabled by subwavelength resonant nanostructures. However, reflection and/or absorption losses as well as low polarization‐conversion efficiencies pose a fundamental obstacle for achieving high transmission efficiencies that are required for practical applications. Here, for the first time to our knowledge, highly efficient all‐dielectric metasurfaces…

1,311 citations Cite SaveGo to paper →
Lanthanide‐Based Thermometers: At the Cutting‐Edge of Luminescence Thermometry

Carlos D. S. Brites, Sangeetha Balabhadra, Luís D. Carlos · 5 Dec 2018

Abstract Present technological demands in disparate areas, such as microfluidics and nanofluidics, microelectronics and nanoelectronics, photonics and biomedicine, among others, have reached to a development such that conventional contact thermal probes are not accomplished anymore to perform accurate measurements with submicrometric spatial resolution. The development of novel noncontact thermal probes is, then, mandatory, contributing to…

1,146 citations Cite SaveGo to paper →
Recent R&D Trends in Inorganic Single‐Crystal Scintillator Materials for Radiation Detection

M. Nikl, Akira Yoshikawa · 25 Feb 2015

In this review, the major achievements and research and development (R&D) trends from the last decade in the field of single crystal scintillator materials are described. Two material families are included, namely, those of halide and oxide compounds. In most cases, the host crystals are doped with Ce 3+ , Pr 3+ or Eu 2+…

Recent Advances in Materials with Room‐Temperature Phosphorescence: Photophysics for Triplet Exciton Stabilization

Shuzo Hirata · 12 Jun 2017

Room‐temperature phosphorescence (RTP), which has a much longer emission lifetime than fluorescence, often enables unique material characteristics and fabrication of state‐of‐the‐art optoelectronic devices that cannot be realized using conventional fluorescent materials. The triplet exciton characteristics related to the appearance of efficient RTP also often provide intrinsic intra‐ and inter‐molecular physical information about the materials. This…

Recent Progress on Circularly Polarized Luminescent Materials for Organic Optoelectronic Devices

Jianmei Han, Song Guo, Hu Jie Lu et al. · 3 Jul 2018

Abstract Due to the characteristics of optical rotation, selective emission of polarized light, and circular dichroism, circularly polarized luminescent materials have aroused extensive attentions, and they have exhibited wide optoelectronic applications, such as optical data storage, liquid crystal display, and backlights in 3D displays. Here, the research progress of circularly polarized luminescent materials for organic…

Advanced Optical Materials template — frequently asked questions

How do I write a paper in the Advanced Optical Materials format?
In DocuGuru you write your manuscript in a normal editor — no LaTeX setup required — and select the Advanced Optical Materials template. When you export, DocuGuru compiles the paper into the official Wiley format and hands you a submission-ready PDF along with the editable LaTeX source.
What reference style does Advanced Optical Materials use?
Advanced Optical Materials uses Author–year (Chicago) references, shown as author–year markers such as (Smith, 2023) in the text. DocuGuru formats every in-text citation and the reference list in this exact style automatically. A reference appears like this: Smith, Ada, Ben Jones, and Cara Lee. 2023. "A Representative Article Title." Advanced Optical Materials 12 (3): 45–58.
Do I need to know LaTeX to submit to Advanced Optical Materials?
No. DocuGuru generates the USG LaTeX class and compiles the PDF for you in the background, so you get a Wiley-ready Advanced Optical Materials document without writing any LaTeX. If you do want it, the LaTeX source is included in the export.
Can I import an existing draft into the Advanced Optical Materials template?
Yes. Paste or upload your current manuscript — Word, LaTeX, Markdown, or plain text — and DocuGuru reflows it into the Advanced Optical Materials format with correct headings, figures, tables, and author–year citations.
Who publishes Advanced Optical Materials?
Advanced Optical Materials is a multidisciplinary journal published by Wiley. DocuGuru's Advanced Optical Materials template matches Wiley's official submission format.
Can I export a submission-ready Advanced Optical Materials PDF?
Yes — DocuGuru produces a PDF built with the official Advanced Optical Materials template (the USG class) that is ready to submit to Wiley, together with the matching LaTeX source files.
How much does the Advanced Optical Materials template cost?
You can start writing in the Advanced Optical Materials template for free. Exporting the final submission-ready Advanced Optical Materials PDF and LaTeX source is part of DocuGuru's paid plans — see the app for current pricing.
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