Nassrullah Haya, Anis Shaheen Fatima, Lalia Boor Singh, Hashaikeh Raed
NYUAD Water Research Center, New York University Abu Dhabi, Abu Dhabi P.O. Box 129188, United Arab Emirates.
Chemical and Biomolecular Engineering Department, Tandon School of Engineering, New York University, Brooklyn, NY 11201, USA.
Materials (Basel). 2022 Mar 18;15(6):2258. doi: 10.3390/ma15062258.
Nanosized zeolite Y is used in various applications from catalysis in petroleum refining to nanofillers in water treatment membranes. Ball milling is a potential and fast technique to decrease the particle size of zeolite Y to the nano range. However, this technique is associated with a significant loss of crystallinity. Therefore, in this study, we investigate the effect of adding biodegradable and recyclable cellulose nanofibrils (CNFs) to zeolite Y in a wet ball milling approach. CNFs are added to shield the zeolite Y particles from harsh milling conditions due to their high surface area, mechanical strength, and water gel-like format. Different zeolite Y to CNFs ratios were studied and compared to optimize the ball milling process. The results showed that the optimal zeolite Y to CNFs ratio is 1:1 to produce a median particle size diameter of 100 nm and crystallinity index of 32%. The size reduction process provided accessibility to the zeolite pores and as a result increased their adsorption capacity. The adsorption capacity of ball-milled particles for methylene blue increased to 29.26 mg/g compared to 10.66 mg/g of the pristine Zeolite. These results demonstrate the potential of using CNF in protecting zeolite Y particles and possibly other micro particles during ball milling.
纳米级Y型沸石被应用于从石油炼制催化到水处理膜纳米填料等各种领域。球磨是一种将Y型沸石粒径减小至纳米范围的潜在且快速的技术。然而,该技术会导致显著的结晶度损失。因此,在本研究中,我们研究了在湿球磨过程中添加可生物降解和可回收的纤维素纳米纤维(CNF)对Y型沸石的影响。由于CNF具有高比表面积、机械强度和水凝胶状形态,添加它可保护Y型沸石颗粒免受恶劣球磨条件的影响。研究并比较了不同的Y型沸石与CNF比例,以优化球磨过程。结果表明,Y型沸石与CNF的最佳比例为1:1,可产生中值粒径为100 nm且结晶度指数为32%的产物。粒径减小过程使沸石孔更易接近,从而提高了它们的吸附能力。与原始沸石的10.66 mg/g相比,球磨颗粒对亚甲基蓝的吸附能力提高到了29.26 mg/g。这些结果证明了在球磨过程中使用CNF保护Y型沸石颗粒以及可能的其他微粒的潜力。