Abstract Merging electronics with textiles has become an emerging trend since textiles hold magnificent wearing comfort and user-friendliness compared with conventional wearable bioelectronics. Smart textiles can be effectively integrated into our daily wearing to convert on-body biomechanical, biochemical, and body heat energy into electrical signals for long-term, real-time monitoring of physiological states, showing compelling medical…
Med-X Template
Write in a clean editor, then format for Med-X in one click — DocuGuru applies the official Springer Nature template with superscript references and exports a submission-ready PDF plus the editable LaTeX source. Free to start.
About the Med-X format
Med-X is a peer-reviewed journal published by Springer Nature, covering Advanced Sensor and Energy Harvesting Materials, Neuroscience and Neural Engineering, Cellular Mechanics and Interactions.
| Publisher | Springer Nature |
|---|---|
| Reference style | Superscript numbered (Nature) Superscript — small raised numerals in the text 1. Smith, A., Jones, B. & Lee, C. A representative article title. Med-X 12, 45–58 (2023).
Formats any DOI in Med-X style. No sign-up. |
| Publishes research in | Advanced Sensor and Energy Harvesting Materials Neuroscience and Neural Engineering Cellular Mechanics and Interactions 3D Printing in Biomedical Research RNA Interference and Gene Delivery |
| ISSN | 2731-8710 |
| Citation impact (2-yr) | 7.65 |
| h-index | 15 |
| i10-index | 26 |
| Total citations | 858 |
| Top institutions publishing here | Shanghai Jiao Tong University |
| You get | A submission-ready PDF and the editable LaTeX source — ready to submit. |
Papers published in Med-X per year
Citation impact of Med-X by publication year
Citations each year’s papers have accumulated so far — the most recent years are still building up.
Most-cited papers in Med-X
Abstract The development of wearable energy sto rage and harvesting devices is pivotal for advancing next-generation healthcare technologies, facilitating continuous and real-time health monitoring. Traditional wearable devices have been constricted by bulky and rigid batteries, limiting their practicality and comfort. However, recent advancements in materials science have enabled the creation of flexible, stretchable, and lightweight…
Abstract Optical imaging and spectroscopic modalities are of broad interest for in-vivo molecular imaging, fluorescence guided cancer surgery, minimally invasive diagnostic procedures, and wearable devices. However, considerable debate still exists as to how deeply visible and near-infrared (NIR) light could penetrate normal and diseased tissues under clinically relevant conditions. Here we report the use of…
The rapid advancement in personalized healthcare has driven the development of wearable biomedical devices for real-time biomarker monitoring and diagnosis. Traditional invasive blood-based diagnostics are painful and limited to sporadic health snapshots. To address these limitations, microneedle-based sensing platforms have emerged, utilizing interstitial fluid (ISF) as an alternative biofluid for continuous health monitoring in a…
Abstract Wireless biosensing has emerged as a critical technology due to its ability to provide real-time, continuous monitoring of physiological parameters without the constraints of wired connections. This review starts from the fundamental mechanisms of physical and chemical sensing in wireless biosensors, to the integration of advanced wireless technologies for energy harvesting and data communication,…