Abstract Graphene, emerging as a true 2‐dimensional material, has received increasing attention due to its unique physicochemical properties (high surface area, excellent conductivity, high mechanical strength, and ease of functionalization and mass production). This article selectively reviews recent advances in graphene‐based electrochemical sensors and biosensors. In particular, graphene for direct electrochemistry of enzyme, its electrocatalytic…
Electroanalysis Template
Write in a clean editor, then format for Electroanalysis 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 Electroanalysis format
Electroanalysis is a peer-reviewed journal published by Wiley, covering Electrochemical Analysis and Applications, Electrochemical sensors and biosensors, Analytical Chemistry and Sensors.
| 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." Electroanalysis 12 (3): 45–58.
Formats any DOI in Electroanalysis style. No sign-up. |
| Publishes research in | Electrochemical Analysis and Applications Electrochemical sensors and biosensors Analytical Chemistry and Sensors Conducting polymers and applications Advanced biosensing and bioanalysis techniques |
| ISSN | 1040-0397 |
| Citation impact (2-yr) | 2.26 |
| h-index | 154 |
| i10-index | 6,523 |
| Total citations | 263,783 |
| Article processing charge | $3,450 |
| Top institutions publishing here | Centre National de la Recherche Scientifique |
| Journal website | onlinelibrary.wiley.com |
| You get | A submission-ready PDF and the editable LaTeX source — ready to submit. |
Papers published in Electroanalysis per year
Citation impact of Electroanalysis by publication year
Citations each year’s papers have accumulated so far — the most recent years are still building up.
Most-cited papers in Electroanalysis
Abstract This review addresses recent advances in carbon‐nanotubes (CNT) based electrochemical biosensors. The unique chemical and physical properties of CNT have paved the way to new and improved sensing devices, in general, and electrochemical biosensors, in particular. CNT‐based electrochemical transducers offer substantial improvements in the performance of amperometric enzyme electrodes, immunosensors and nucleic‐acid sensing devices.…
Abstract Impedance spectroscopy is a rapidly developing electrochemical technique for the characterization of biomaterial‐functionalized electrodes and biocatalytic transformations at electrode surfaces, and specifically for the transduction of biosensing events at electrodes or field‐effect transistor devices. The immobilization of biomaterials, e.g., enzymes, antigens/antibodies or DNA on electrodes or semiconductor surfaces alters the capacitance and interfacial electron…
Abstract The unique chemical and physical properties of nanoparticles make them extremely suitable for designing new and improved sensing devices, especially electrochemical sensors and biosensors. Many kinds of nanoparticles, such as metal, oxide and semiconductor nanoparticles have been used for constructing electrochemical sensors and biosensors, and these nanoparticles play different roles in different sensing systems.…
Impedance biosensors are a class of electrical biosensors that show promise for point-of-care and other applications due to low cost, ease of miniaturization, and label-free operation. Unlabeled DNA and protein targets can be detected by monitoring changes in surface impedance when a target molecule binds to an immobilized probe. The affinity capture step leads to…