2D transition metal carbide Ti 3 C 2 T x (T stands for surface termination), the most widely studied MXene, has shown outstanding electrochemical properties and promise for a number of bulk applications. However, electronic properties of individual MXene flakes, which are important for understanding the potential of these materials, remain largely unexplored. Herein, a…
Advanced Electronic Materials Template
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About the Advanced Electronic Materials format
Advanced Electronic Materials is a peer-reviewed journal published by Wiley, covering Advanced Memory and Neural Computing, Conducting polymers and applications, Advanced Sensor and Energy Harvesting Materials.
| 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." Advanced Electronic Materials 12 (3): 45–58.
Formats any DOI in Advanced Electronic Materials style. No sign-up. |
| Publishes research in | Advanced Memory and Neural Computing Conducting polymers and applications Advanced Sensor and Energy Harvesting Materials Organic Electronics and Photovoltaics 2D Materials and Applications |
| ISSN | 2199-160X |
| Citation impact (2-yr) | 4.68 |
| h-index | 125 |
| i10-index | 2,481 |
| Total citations | 119,633 |
| Article processing charge | $3,100 |
| Open access | Yes |
| 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 Advanced Electronic Materials per year
Citation impact of Advanced Electronic Materials by publication year
Citations each year’s papers have accumulated so far — the most recent years are still building up.
Most-cited papers in Advanced Electronic Materials
Abstract Ultrawide‐bandgap (UWBG) semiconductors, with bandgaps significantly wider than the 3.4 eV of GaN, represent an exciting and challenging new area of research in semiconductor materials, physics, devices, and applications. Because many figures‐of‐merit for device performance scale nonlinearly with bandgap, these semiconductors have long been known to have compelling potential advantages over their narrower‐bandgap cousins…
The rapid development of novel organic technologies has led to significant applications of the organic electronic devices such as light‐emitting diodes, solar cells, and field‐effect transistors. There is a great need for conducting polymers with high conductivity and transparency to act as the charge transport layer or electrical interconnect in organic devices. Poly(3,4‐ethylenedioxythiophene): poly(styrenesulfonic acid)…
MXenes, a new class of 2D transition metal carbides and carbonitrides, show great promise in supercapacitors, Li‐ion batteries, fuel cells, and sensor applications. A unique combination of their metallic conductivity, hydrophilic surface, and excellent mechanical properties renders them attractive for transparent conductive electrode application. Here, a simple, scalable method is proposed to fabricate transparent conductive…
Abstract Bismuth telluride is the working material for most Peltier cooling devices and thermoelectric generators. This is because Bi 2 Te 3 (or more precisely its alloys with Sb 2 Te 3 for p‐type and Bi 2 Se 3 for n‐type material) has the highest thermoelectric figure of merit, zT , of any material around…