Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

One of the important issues in tissue engineering has been the development of 3D scaffolds, which guide cells to grow functional tissues and allow the diffusion of nutrients, metabolites, and soluble factors. Factors governing scaffold design include considerations of pore size and morphology, mechanical properties versus porosity, surface properties, and appropriate biodegradability. Three-dimensional structures with low density, high surface area and porosity can be utilized effectively in the tissue engineering. Recently two-nozzle electrospinning was used for fabricate polymeric and ceramic bulky layers with specific formulation. Fabrication of 3D carbon nanofiber with this method was investigated in this assay with FESEM, TGA-DTA, FTIR and XRD. Polyacrylonitrile was used as precursor. The collector speed was changed (15, 30, 60, 150, 300 and 450 rpm) to result in oriented 3D carbon nanofiber after stepwise thermal process under neutral gas atmosphere. The effect of the mechanical force applied by the collector rotation not only can arranged carbon fiber mat but also can change the crystallinity of the carbon structure. The viability and growth capability of cells on nanofibers towards the lowest cytotoxicity of them proved by MTT test. The growth characteristic of neural and mouse bone marrow mesenchymal stem cells cultured in the webs showed the good adhesion with the blown web relative to a normal electrospun mat. The electrospun nanofibers mat had good tensile properties and high porosity and provides a favorable environment for neural cell attachment and proliferation comparable to other scaffolds. The cell viability and cell growth capability in prepared nanofibers were assessed.

Download full-text PDF

Source
http://dx.doi.org/10.1007/s10561-022-10053-1DOI Listing

Publication Analysis

Top Keywords

carbon nanofiber
12
oriented carbon
8
tissue engineering
8
growth capability
8
carbon
5
fabrication oriented
4
nanofiber two-nuzzle
4
two-nuzzle electrospinning
4
cell
4
electrospinning cell
4

Similar Publications

Cellulose-based aerogels modulate fragrance adsorption and controlled release by carbonization/in-situ aromatization.

Carbohydr Polym

November 2025

Flavors and Fragrance Engineering & Technology Research Center of Henan Province, College of Tobacco Science, Henan Agricultural University, Zhengzhou 450000, China. Electronic address:

Fragrances are indispensable additives in consumer products including foods, cosmetics, and tobacco products. However, their inherent instability leads to rapid quality degradation and performance loss, driving the urgent need for controlled-release systems to stabilize fragrance performance. In this work, cellulose nanofibers (CNF) were used to prepare CNF aerogel-like gels (CA) and carbonized CNF aerogels (C-CA) through freeze-drying and high-temperature carbonization.

View Article and Find Full Text PDF

Nanocellulose-assisted construction of conductive gradient hydrogel for remote actuated and self-sensing soft actuator.

Carbohydr Polym

November 2025

Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, International Innovation Center for Forest Chemicals and Materials, Joint International Research Lab of Lignocellulosic Functional Materials, College of Materials Science and Engineering, Nanjing Forestry University, N

Hydrogel actuators show tremendous promise for applications in soft robots and artificial muscles. Nevertheless, developing a stretchable hydrogel actuator combining remote actuation and real-time signal feedback remains a challenge. Herein, a light-responsive hydrogel actuator with self-sensing function is fabricated by employing a localized immersion strategy to incorporate polyacrylamide (PAM) hydrogel network into semi-interpenetrating carbon nanotube/2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPO)-oxidized cellulose nanofiber/poly(N-isopropylacrylamide) (CNT/TOCN/PNIPAM) hydrogel.

View Article and Find Full Text PDF

Engineering Ni-NO Coordination in Single-Atom Catalysts for Alkaline Hydrogen Evolution.

Inorg Chem

September 2025

The school of Chemistry and Chemical Engineering, State Key Laboratory of Power Transmission Equipment and System Security, Chongqing University, 174 Shazheng Street, Shapingba District, Chongqing City 400044, P. R. China.

The rational design of single-atom catalysts (SACs) with tailored coordination environments is essential for improving their electrocatalytic efficacy. This study employs a coordination engineering approach to immobilize atomically dispersed nickel atoms on nitrogen-doped carbon nanofibers (NCNFs), forming a novel Ni-NO/NCNFs catalyst. Unlike the traditional Ni-N coordination configuration, each nickel atom in this Ni-NO framework is stabilized within a rare and well-defined NO coordination environment.

View Article and Find Full Text PDF

A molecularly imprinted polymer (MIP)-based electrochemical sensor for the rapid detection of fentanyl is reported. The sensor was prepared by electrochemically grafting polydopamine on a carbon nanofiber-Pt nanoparticle composite-modified screen-printed electrode. Dopamine was identified as a suitable functional monomer via in-silico modeling and was electropolymerized via cyclic voltammetry in the presence of fentanyl to form the MIP sensor.

View Article and Find Full Text PDF

The development of sustainable materials for green energy storage systems has accelerated due to the growing demand for energy worldwide and environmental concerns. Because of their large surface area, electrical conductivity, and adjustable structure, mesoporous graphitic carbon-based materials show the most promise for electrochemical hydrogen storage (EHS). The electrochemical performance of these materials is further improved by integrating them with transition metal oxides.

View Article and Find Full Text PDF