Ultrasonic cavitation: An effective cleaner and greener intensification technology in the extraction and surface modification of nanocellulose

[Display omitted] •Acoustic wave induces microstreaming, bubble oscillation, microjetting, and shockwave.•Ultrasound assists in improving nanocellulose properties and production efficiency.•Effects of ultrasonic parameters on nanocellulose extraction and surface modification.•Barriers to ultrasound...

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Veröffentlicht in:Ultrasonics sonochemistry 2022-11, Vol.90, p.106176-106176, Article 106176
Hauptverfasser: Hoo, Do Yee, Low, Zhen Li, Low, Darren Yi Sern, Tang, Siah Ying, Manickam, Sivakumar, Tan, Khang Wei, Ban, Zhen Hong
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Sprache:eng
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Zusammenfassung:[Display omitted] •Acoustic wave induces microstreaming, bubble oscillation, microjetting, and shockwave.•Ultrasound assists in improving nanocellulose properties and production efficiency.•Effects of ultrasonic parameters on nanocellulose extraction and surface modification.•Barriers to ultrasound application and avenues for future developments. With rising consumer demand for natural products, a greener and cleaner technology, i.e., ultrasound-assisted extraction, has received immense attention given its effective and rapid isolation for nanocellulose compared to conventional methods. Nevertheless, the application of ultrasound on a commercial scale is limited due to the challenges associated with process optimization, high energy requirement, difficulty in equipment design and process scale-up, safety and regulatory issues. This review aims to narrow the research gap by placing the current research activities into perspectives and highlighting the diversified applications, significant roles, and potentials of ultrasound to ease future developments. In recent years, enhancements have been reported with ultrasound assistance, including a reduction in extraction duration, minimization of the reliance on harmful chemicals, and, most importantly, improved yield and properties of nanocellulose. An extensive review of the strengths and weaknesses of ultrasound-assisted treatments has also been considered. Essentially, the cavitation phenomena enhance the extraction efficiency through an increased mass transfer rate between the substrate and solvent due to the implosion of microbubbles. Optimization of process parameters such as ultrasonic intensity, duration, and frequency have indicated their significance for improved efficiency.
ISSN:1350-4177
1873-2828
DOI:10.1016/j.ultsonch.2022.106176