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Solution blow spinning mass production of mullite nanofiber from environment friendly aqueous Al–Si solutions.

Authors :
Jin, Xinpeng
Li, Jiugang
Zhang, Chi
Liu, Keshuai
He, Chong
Li, Wenbin
Source :
Progress in Natural Science. Oct2023, Vol. 33 Issue 5, p691-700. 10p.
Publication Year :
2023

Abstract

Achieving large-scale production of high-performance mullite ceramic nanofibers posed a formidable challenge. Herein, an air heating-solution blow spinning technique was designed for the mass fabrication of mullite nanofibers at high speeds, ranging from 6 to 60 ​ml/h. Spinnable aqueous Al–Si solution systems, employing various aluminum sources, were systematically investigated. The optimization of the solution blow spinning apparatus involved the incorporation of a hot air blow device capable of dispensing streams of hot, dry air. Comprehensive investigations were conducted to examine the impact of variables such as spinning solution viscosity, spinning rate, and spinning distance on the resulting mullite fiber diameter and morphology. Following sintering at 1200 ​°C, mullite fiber cotton was successfully synthesized, exhibiting diameters spanning from 500 ​nm to 5 ​μm. These mullite nanofiber cotton demonstrated exceptional attributes, including robust temperature stability (up to 1300 ​°C), remarkable thermal insulation properties and superior filtration efficiency. • Various aqueous Al–Si precursors were designed for the solution blow spinning process. • An air heating device was introduced to improve the efficiency (6–60 ​ml/h) of aqueous mullite fiber. • Mullite fibers with diameters ranged from 500 ​nm to 5 ​μm were prepared. • SBS spined Mullite fiber exhibits commendable thermal insulating attributes and temperature stability up to 1300 ​°C. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10020071
Volume :
33
Issue :
5
Database :
Academic Search Index
Journal :
Progress in Natural Science
Publication Type :
Academic Journal
Accession number :
175136606
Full Text :
https://doi.org/10.1016/j.pnsc.2023.12.006