Praikaew Wanichaya, Chuseang Jirawat, Prameswari Jedy, Ratchahat Sakhon, Chaiwat Weerawut, Koo-Amornpattana Wanida, Assabumrungrat Suttichai, Lin Yu-Chuan, Srifa Atthapon
Department of Chemical Engineering, Faculty of Engineering, Mahidol University, Nakhon Pathom, 73170, Thailand.
Department of Chemical Engineering, National Cheng Kung University, Tainan, 70101, Taiwan.
Chempluschem. 2024 Sep;89(9):e202400075. doi: 10.1002/cplu.202400075. Epub 2024 Jul 25.
Catalytic thermochemical conversion offers a sustainable method to upgrade oil-based feedstocks into highly valuable biofuel, aligning with the modern biorefinery concept. Herein, a series of IrRe/SAPO-11 catalysts with different Ir to Re molar ratios compared to reference Ir/SAPO-11 and Re/SAPO-11 catalysts was prepared using a wetness impregnation method. These catalysts were used for the direct production of sustainable aviation fuels (SAFs) via efficient hydrodeoxygenation and hydroisomerization of triglycerides. The catalyst screening confirmed that the optimum IrRe/SAPO-11 catalyst, with an equivalent Ir to Re molar ratio, exhibited the highest hydrodeoxygenation activity under milder operation conditions than the conditions used in previous studies. Increasing the reaction temperature up to 330 °C enhanced the formation of iso-alkanes in the liquid product, achieving a freezing point of -31.4 °C without additional cold flow improvers. Furthermore, a long-term stability experiment demonstrated that the developed Ir-Re system exhibited exceptional performance over 150 h. This excellent catalytic activity and stability of the bifunctional IrRe/SAPO-11 catalyst was owing to its suitable interface between metallic and oxide sites, mixed mesoporous structures, reduced catalyst size, and increased Lewis acid ratio, as confirmed by our comprehensive characterizations.
催化热化学转化提供了一种可持续的方法,可将油基原料升级为高价值生物燃料,这与现代生物精炼概念相一致。在此,采用湿浸渍法制备了一系列不同铱铼摩尔比的IrRe/SAPO-11催化剂,并与参比Ir/SAPO-11和Re/SAPO-11催化剂进行了比较。这些催化剂用于通过甘油三酯的高效加氢脱氧和加氢异构化直接生产可持续航空燃料(SAF)。催化剂筛选证实,具有等效铱铼摩尔比的最佳IrRe/SAPO-11催化剂在比先前研究中使用的条件更温和的操作条件下表现出最高的加氢脱氧活性。将反应温度提高到330°C可增强液体产物中异烷烃的形成,在不添加额外冷流改进剂的情况下实现了-31.4°C的冰点。此外,长期稳定性实验表明,所开发的铱-铼体系在150小时内表现出优异的性能。我们的综合表征证实,双功能IrRe/SAPO-11催化剂的这种优异催化活性和稳定性归因于其金属和氧化物位点之间合适的界面、混合介孔结构、减小的催化剂尺寸以及增加的路易斯酸比例。