Nanoporous Carbide-derived Carbon with Tunable Pore Size
Overview
Authors
Affiliations
Porous solids are of great technological importance due to their ability to interact with gases and liquids not only at the surface, but throughout their bulk. Although large pores can be produced and well controlled in a variety of materials, nanopores in the range of 2 nm and below (micropores, according to IUPAC classification) are usually achieved only in carbons or zeolites. To date, major efforts in the field of porous materials have been directed towards control of the size, shape and uniformity of the pores. Here we demonstrate that porosity of carbide-derived carbons (CDCs) can be tuned with subångström accuracy in a wide range by controlling the chlorination temperature. CDC produced from Ti3SiC2 has a narrower pore-size distribution than single-wall carbon nanotubes or activated carbons; its pore-size distribution is comparable to that of zeolites. CDCs are produced at temperatures from 200-1,200 degrees C as a powder, a coating, a membrane or parts with near-final shapes, with or without mesopores. They can find applications in molecular sieves, gas storage, catalysts, adsorbents, battery electrodes, supercapacitors, water/air filters and medical devices.
In situ Fe-doped thin carbon wires via AC high voltage arc discharge.
Jankowski K, Jasiuk I, Uznanski P, Szybowicz M, Ostafin A, Brzozowski R Sci Rep. 2024; 14(1):29528.
PMID: 39604568 PMC: 11603175. DOI: 10.1038/s41598-024-81096-5.
Nanomaterial Texture-Based Machine Learning of Ciprofloxacin Adsorption on Nanoporous Carbon.
Kaarik M, Krjukova N, Maran U, Oja M, Piir G, Leis J Int J Mol Sci. 2024; 25(21).
PMID: 39519248 PMC: 11546269. DOI: 10.3390/ijms252111696.
Raman Spectroscopy Measurements Support Disorder-Driven Capacitance in Nanoporous Carbons.
Liu X, Choi J, Xu Z, Grey C, Fleischmann S, Forse A J Am Chem Soc. 2024; 146(45):30748-30752.
PMID: 39486400 PMC: 11565708. DOI: 10.1021/jacs.4c10214.
Abdou Ahmed Abdou Elsehsah K, Ahmad Noorden Z, Mat Saman N Heliyon. 2024; 10(17):e37071.
PMID: 39286138 PMC: 11403540. DOI: 10.1016/j.heliyon.2024.e37071.
In Vitro Tribocorrosion Evaluation of Carbide-derived Carbon (CDC) for Hip Implants.
Sun Y, Kinnerk K, Mirshed T, McNallan M, Mathew M Adv Appl Ceram. 2023; 122(3-4):236-249.
PMID: 38108047 PMC: 10723791. DOI: 10.1080/17436753.2023.2241251.