Sunlight‐driven photocatalytic water splitting to generate hydrogen (H 2 ) is a promising approach for utilizing solar energy. Herein, direct Z‐scheme Fe 2 O 3 /g‐C 3 N 4 photocatalysts are rationally fabricated for H 2 evolution under visible light. The graphitic carbon nitride (g‐C 3 N 4 ) nanosheets obtained by solvent exfoliation of…
Solar RRL Template
Write in a clean editor, then format for Solar RRL 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 Solar RRL format
Solar RRL is a peer-reviewed journal published by Wiley, covering Perovskite Materials and Applications, Conducting polymers and applications, Quantum Dots Synthesis And Properties.
| Publisher | Wiley |
|---|---|
| Reference style | Author–year (Chicago) Author–year — (Smith, 2023) in the text Smith, Ada, Ben Jones, and Cara Lee. 2023. "A Representative Article Title." Solar RRL 12 (3): 45–58.
Formats any DOI in Solar RRL style. No sign-up. |
| Publishes research in | Perovskite Materials and Applications Conducting polymers and applications Quantum Dots Synthesis And Properties Chalcogenide Semiconductor Thin Films Organic Electronics and Photovoltaics |
| ISSN | 2367-198X |
| Citation impact (2-yr) | 4.16 |
| h-index | 99 |
| i10-index | 2,048 |
| Total citations | 77,940 |
| Article processing charge | $4,020 |
| Top institutions publishing here | Chinese Academy of Sciences |
| Journal website | onlinelibrary.wiley.com |
| You get | A submission-ready PDF and the editable LaTeX source — ready to submit. |
Papers published in Solar RRL per year
Citation impact of Solar RRL by publication year
Citations each year’s papers have accumulated so far — the most recent years are still building up.
Most-cited papers in Solar RRL
Photocatalysis, which converts natural solar energy into chemical energy, has emerged as one of the most appealing technologies in the past decades. However, photocatalytic performances are limited by the poor absorption of visible light, charge‐carrier recombination during migration, and a high energy barrier for activating reactants. Oxygen vacancies in semiconductive metal oxides are reported to…
Hygroscopicity risk and organic–inorganic hybrid perovskites easy decomposition in solar cells limit their usefulness. Apart from the hybrid organic–inorganic perovskites, inorganic perovskite solar cells display a better stability toward moisture, light soaking, and thermal stressing. However, most inorganic perovskites are inappropriate for single junction or tandem solar cells due to their large bandgaps (>1.8 eV),…
The commercial manufacturing of perovskite solar modules (PSM) suffers from stability concerns and scalability issues. We demonstrate a hole‐conductor‐free printable solar module embodiment, which employs a triple layer of mesoporous TiO 2 /ZrO 2 /carbon as scaffold, and is infiltrated by a mixed cation lead halide perovskite (5‐AVA) x (MA) 1−x PbI 3 as a…
Various photocatalysts have been developed for photocatalytic water splitting—one of the most important processes that produces dihydrogen as clean energy for fuel cells. The successful achievements for this application are based mainly on transition metal oxides and some metal sulfides/nitrides. Recently, metal–organic frameworks (MOFs), a class of hybrid functional materials comprising organic backbone tethered infinitively…