Sustainable Synthesis of Single-Phase Ba3MgSi2O8 Nanoparticles Using Sporopollenin for Fructose Syrup Production: DFT and Quantitative NMR Insights on Glucose Isomerization

IF 7.1 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY ACS Sustainable Chemistry & Engineering Pub Date : 2024-12-12 DOI:10.1021/acssuschemeng.4c07670
Raina Sharma, Tamilmani Selvaraj, Arun Kumar Solanki, Jithin John Varghese, Govindasamy Jayamurugan
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Abstract

Producing high fructose syrup (HFS) is essential for both the platform chemicals and food industries. While enzyme-based methods are commonly used, their limited availability has led to growing interest in alkali metal catalysts. However, a complete understanding of these catalysts’ mechanism is still needed. Traditional alkaline earth metal oxides suffer stability issues due to metal leaching from solid surfaces. While Ba3MgSi2O8 (BMS) is well-studied for its phosphor nature, its use as a Lewis base catalyst has not been explored. We present a novel method for the synthesis of BMS nanoparticles and demonstrate its application as a Lewis base for glucose to fructose (GLU-FRU) isomerization. In contrast to the conventional high-temperature solid-state grinding (1225 °C) of BaCO3, MgO, and SiO2, we synthesized crystalline single-phase BMS nanoparticles from BaCl2 and hydrous magnesium silicates encapsulated in sporopollenin (BMS-ES2), utilizing a coprecipitation method at 400 °C. We attained a remarkable 62% glucose conversion rate, resulting in 56% fructose yield with 90.3% selectivity at 90 °C in 60 min at 25% glucose loading in H2O, marking the highest reported values among catalysts containing alkaline earth metals in water. Further investigation using NMR and DFT revealed a proton exchange mechanism favoring Ba(OH)2 due to water dissociation at Ba sites over Mg sites. The catalyst displayed excellent reusability, with a minimal 2–4% yield decrease per cycle over five cycles. These results not only provide insights into sustainable synthesis methods for Ba3MgSi2O8 but also illuminate its catalytic properties for base-catalyzed reactions and the proton exchange mechanism involved in GLU-FRU isomerization. Ba3MgSi2O8 nanoparticles are sustainably synthesized from biomass waste and catalyze gram scale GLU-FRU conversion in water with excellent selectivity and reusability.

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利用孢粉素可持续合成用于果糖糖浆生产的单相Ba3MgSi2O8纳米颗粒:葡萄糖异构化的DFT和定量核磁共振观察
生产高果糖糖浆(HFS)对平台化学品和食品工业都是必不可少的。虽然基于酶的方法是常用的,但其有限的可用性导致人们对碱金属催化剂的兴趣日益浓厚。然而,对这些催化剂的机理的全面了解仍然是必要的。传统碱土金属氧化物由于金属从固体表面浸出而遭受稳定性问题。虽然Ba3MgSi2O8 (BMS)因其荧光粉性质而被广泛研究,但其作为路易斯碱催化剂的用途尚未被探索。我们提出了一种合成BMS纳米颗粒的新方法,并证明了它作为葡萄糖到果糖(glufru)异构化的路易斯碱的应用。与传统高温固相研磨法(1225℃)制备BaCO3、MgO和SiO2不同,我们采用共沉淀法在400℃下将baco2和水合硅酸镁包裹在孢子孢粉(BMS- es2)中,合成了晶体单相BMS纳米颗粒。我们获得了62%的葡萄糖转化率,在90°C, 60分钟,25%葡萄糖负载的条件下,果糖收率为56%,选择性为90.3%,这是在含有碱土金属的水中催化剂中报道的最高值。进一步的NMR和DFT研究表明,由于水在Ba位点而不是Mg位点的解离,质子交换机制有利于Ba(OH)2。该催化剂表现出优异的可重复使用性,在5个循环中,每次循环的产率下降最小为2-4%。这些结果不仅为Ba3MgSi2O8的可持续合成方法提供了见解,而且阐明了其在碱催化反应中的催化性能以及参与GLU-FRU异构化的质子交换机制。利用生物质废弃物可持续合成Ba3MgSi2O8纳米粒子,并催化水中克级GLU-FRU转化,具有优异的选择性和可重复使用性。
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来源期刊
ACS Sustainable Chemistry & Engineering
ACS Sustainable Chemistry & Engineering CHEMISTRY, MULTIDISCIPLINARY-ENGINEERING, CHEMICAL
CiteScore
13.80
自引率
4.80%
发文量
1470
审稿时长
1.7 months
期刊介绍: ACS Sustainable Chemistry & Engineering is a prestigious weekly peer-reviewed scientific journal published by the American Chemical Society. Dedicated to advancing the principles of green chemistry and green engineering, it covers a wide array of research topics including green chemistry, green engineering, biomass, alternative energy, and life cycle assessment. The journal welcomes submissions in various formats, including Letters, Articles, Features, and Perspectives (Reviews), that address the challenges of sustainability in the chemical enterprise and contribute to the advancement of sustainable practices. Join us in shaping the future of sustainable chemistry and engineering.
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