School of Chemistry and Chemical Engineering, Guangxi University, Nanning 530004, China.
School of Chemistry and Chemical Engineering, Guangxi University, Nanning 530004, China; Key Laboratory of New Low-carbon Green Chemical Technology, Education Department of Guangxi Zhuang Autonomous Region, Nanning 530004, China.
Bioresour Technol. 2023 Nov;387:129600. doi: 10.1016/j.biortech.2023.129600. Epub 2023 Aug 1.
This study aimed to produce bio-based levulinic acid (LA) via direct and efficient conversion of cellulose catalyzed by a sustainable solid acid. A carbon foam (CF)-supported aluminotungstic acid (HAlW/CF) catalyst with Brønsted-Lewis dual-acidic sites was creatively engineered by a hydrothermal impregnation method. The activity of the HAlW/CF catalyst was determined via the hydrolysis and conversion of cellulose to prepare LA in aqueous system. The cooperative effect of Brønsted and Lewis acids in HAlW/CF resulted in high cellulose conversion (89.4%) and LA yield (60.9%) at 180 °C for 4 h, which were greater than the combined catalytic efficiencies of single HAlW and CF under the same conditions. The HAlW/CF catalyst in block form exhibited superior catalytic activity, facile separation from reaction system, and favorable reusability. This work offers novel perspectives for the development of recyclable dual-acidic catalysts to achieve one-pot catalytic conversion of biomass to value-added chemicals.
本研究旨在通过可持续固体酸的催化作用,直接有效地将纤维素转化为生物基的乙酰丙酸(LA)。通过水热浸渍法创造性地设计了一种具有 Brønsted-Lewis 双酸性位的碳泡沫(CF)负载的磷钨铝酸(HAlW/CF)催化剂。通过水解和转化纤维素在水相体系中制备 LA 来测定 HAlW/CF 催化剂的活性。在 180°C 下反应 4 小时,HAlW/CF 中的 Brønsted 和 Lewis 酸的协同作用导致纤维素转化率(89.4%)和 LA 收率(60.9%)较高,高于相同条件下单一 HAlW 和 CF 的组合催化效率。块状 HAlW/CF 催化剂表现出较高的催化活性,易于从反应体系中分离,且具有良好的可重复使用性。这项工作为开发可回收的双酸性催化剂以实现生物质到增值化学品的一锅法催化转化提供了新的思路。