4.6 Article

On-Demand Regulation of Lignocellulosic Nanofibrils Based on Rapid Fractionation Using Acid Hydrotrope: Kinetic Study and Characterization

Journal

ACS SUSTAINABLE CHEMISTRY & ENGINEERING
Volume 8, Issue 25, Pages 9569-9577

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acssuschemeng.0c02968

Keywords

p-Toluenesulfonic acid hydrolysis; Delignification; Lignocellulosic nanofibrils (LCNF); Kinetic study; Combined delignification factor

Funding

  1. Foundation of State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology [KF201917]
  2. State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology,
  3. National College Students Innovation and Entrepreneurship Training Program [201910298155H]
  4. Shandong Academy of Sciences

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Lignocellulosic nanofibrils (LCNF) has caused great interest from researchers due to the benefits of high output, low operation cost, and weak environmental impact. The existence of lignin in LCNF can be applied to regulate the hydrophilicity and polarity, thereby endowing LCNF with unique properties. Consequently, it is crucial to tailor the production of LCNF with desirable characteristics for various applications. This work demonstrated the feasibility of on-demand regulation of lignocellulosic nanofibrils based on rapid fractionation using p-toluenesulfonic acid (p-TsOH) hydrolysis. Acid concentration of 20-80 wt %, hydrolysis temperature of 50-80 degrees C, and reaction duration of 20-120 min were employed to control the characteristic of reaction products. Different degrees of delignification and xylan dissolution over the entire reaction space were obtained and related to combined delignification factor (CDF) and combined hydrolysis factor (CHF), respectively. It was also found that the mean fibril height of LCNF were significantly affected by CDF and CHF, independent of each reaction process variables. Detailed characterization revealed that the resultant LCNF presented wide range of fibril height (10.6-86.4 nm) and excellent thermal stability (maximal weight loss temperature of approximately 360 degrees C). Overall, this work provides useful and fundamental knowledge for achieving LCNF with tailored characteristics, all of which are essential to many promising applications.

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