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The article presents a milli-fluidic device and electronic extrusion system for fabricating alginate/carbon nanotube microfibers using calcium chloride as a crosslink agent. The device was designed, simulated, and prototyped, and successfully applied the mixture of alginate and carbon nanotube to generate microfibers in different concentrations and stepper motor speeds. The flow extrusion pump was used to pump fluid flow to the milli-fluidic device and crosslink calcium chloride to form sodium alginate-CNT microfibers. The microfibers were fabricated and characterized using techniques like FE-SEM, FTIR, Raman Spectroscopy, and XRD. The results showed the material's amorphous crystallinity and the composite nature of the fibbers, consisting of alginate as the matrix and CNTs as the reinforcing, conductive filler. The invented technology successfully generated microfibers with sizes ranging from 60 to 100 μm and I-V measurements were tested. The study demonstrates the potential of the developed system for fabricating conductive microfibers with properties relevant to nerve tissue engineering. However, further biological validation is required to confirm their suitability for nerve repair applications. The findings have significant implications for the design of scaffolds in regenerative nerve therapies. These findings support the potential of the fabricated microfibers as conductive scaffolds for nerve tissue engineering, although further biological validation is required.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC12274617 | PMC |
http://dx.doi.org/10.1038/s41598-025-12075-7 | DOI Listing |
Macromol Rapid Commun
September 2025
Key Laboratory of Bio-based Material Science and Technology of Ministry of Education, Northeast Forestry University, Harbin, P. R. China.
Rapid advancement of flexible electronics has generated a demand for sustainable materials. Cellulose, a renewable biopolymer, exhibits exceptional mechanical strength, customizable properties, biodegradability, and biocompatibility. These attributes are largely due to its hierarchical nanostructures and modifiable surface chemistry.
View Article and Find Full Text PDFACS Nano
September 2025
Department of Electrical and Computer Engineering, Sungkyunkwan University, Suwon 16419, Republic of Korea.
Vagus nerve stimulation (VNS) is a promising therapy for neurological and inflammatory disorders across multiple organ systems. However, conventional rigid interfaces fail to accommodate dynamic mechanical environments, leading to mechanical mismatches, tissue irritation, and unstable long-term interfaces. Although soft neural interfaces address these limitations, maintaining mechanical durability and stable electrical performance remains challenging.
View Article and Find Full Text PDFJ Invest Dermatol
September 2025
Department of Dermatology, Northwestern University Feinberg School of Medicine, Chicago, Illinois, USA; Sibel Health, Chicago, Illinois, USA; Querrey Simpson Institute for Bioelectronics, Northwestern University, Evanston, Illinois, USA. Electronic address:
The integration of wearable medical devices and digital health technologies (DHTs) in health care has grown significantly during the past 2 decades, particularly in dermatology, in which objective measurement of symptoms such as itch remains challenging. This review examines the evolution of DHTs in dermatology, focusing on the validation frameworks necessary for their implementation in clinical trials and research. We discuss the key stages of validation: hardware validation to ensure device reliability, analytical validation to transform raw sensor data into meaningful metrics, and clinical validation to demonstrate utility in specific patient populations.
View Article and Find Full Text PDFNano Lett
September 2025
Key Laboratory of Micro & Nano Photonic Structures, Department of Optical Science and Engineering, College of Future Information Technology, Fudan University, Shanghai 200433, China.
The separation and propagation of spin are vital to understanding spin-orbit coupling (SOC) in quantum systems. Exciton-polaritons, hybrid light-matter quasiparticles, offer a promising platform for investigating SOC in quantum fluids. By utilization of the optical anisotropy of materials, Rashba-Dresselhaus SOC (RDSOC) can be generated, enabling robust polariton spin transport.
View Article and Find Full Text PDFNanoscale
September 2025
College of Materials Science and Engineering, Sichuan University, Chengdu 610065, China.
With the progress of study, MoS has been proven to show excellent properties in electronics and optoelectronics, which promotes the fabrication of future novel integrated circuits and photodetectors. However, highly uniform wafer-scale growth is still in its early stage, especially regarding how to control the precursor and its distribution. Herein, we propose a new method, spraying the Mo precursor, which is proven to fabricate highly uniform 2-inch monolayer MoS wafers.
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